Immunodeficiency 28 is Mendelian susceptibility to mycobacterial disease (MSMD) caused by germline variants in IFNGR2, the second chain of the interferon-gamma receptor. Affected individuals are selectively vulnerable to weakly virulent mycobacteria - BCG vaccine strains and environmental mycobacteria - and about half are also susceptible to non-typhoidal Salmonella, while resistance to most other pathogens is preserved. That selectivity is the diagnostic signature of the disease and the reason routine immunological screening comes back normal. The mechanism is a single broken step in a well-mapped circuit. IFN-gamma engages two IFNGR1 chains to form a 2:2 intermediate, which then recruits two IFNGR2 chains into a hexameric signalling complex; only then are the receptor-associated Janus kinases brought close enough to trans-phosphorylate and activate STAT1. IFNGR2 variants block that recruitment, and the crystal structure of the complete complex shows exactly how for the MSMD-associated T168N substitution, which places a new N-linked glycan at the interface where IFNGR2 has to dock. Downstream, macrophages fail to receive the activating signal, cannot kill ingested mycobacteria, and cannot organise effective granulomas. The allelic series matters clinically because residual IFN-gamma signalling predicts outcome. Autosomal recessive complete deficiency is one of only a few MSMD etiologies that is fully penetrant and lethal before the third decade without transplantation; partial recessive forms are less severe but still fully penetrant; and a heterozygous frameshift causing haploinsufficiency gives an autosomal dominant form with incomplete penetrance. Recombinant IFN-gamma, the mainstay for other MSMD genotypes, has no target in complete deficiency, which leaves haematopoietic stem cell transplantation as the only curative option.
Ask a research question about Immunodeficiency 28. OpenScientist will conduct autonomous deep research using the Disorder Mechanisms Knowledge Base and PubMed literature (typically 10-30 minutes).
Do not include personal health information in your question. Questions and results are cached in your browser's local storage.
Conditions with similar clinical presentations that must be differentiated from Immunodeficiency 28:
name: Immunodeficiency 28
creation_date: "2026-09-15T00:00:00Z"
category: Mendelian
synonyms:
- IMD28
- IFN-gamma receptor 2 deficiency
- IFN-gammaR2 deficiency
- Mendelian susceptibility to mycobacterial disease due to IFNGR2 deficiency
- immunodeficiency 28, mycobacteriosis
disease_term:
preferred_term: immunodeficiency 28
term:
id: MONDO:0013953
label: immunodeficiency 28
parents:
- Mendelian Susceptibility to Mycobacterial Disease
- Inborn Error of Immunity
description: >-
Immunodeficiency 28 is Mendelian susceptibility to mycobacterial disease
(MSMD) caused by germline variants in IFNGR2, the second chain of the
interferon-gamma receptor. Affected individuals are selectively vulnerable to
weakly virulent mycobacteria - BCG vaccine strains and environmental
mycobacteria - and about half are also susceptible to non-typhoidal
Salmonella, while resistance to most other pathogens is preserved. That
selectivity is the diagnostic signature of the disease and the reason routine
immunological screening comes back normal.
The mechanism is a single broken step in a well-mapped circuit. IFN-gamma
engages two IFNGR1 chains to form a 2:2 intermediate, which then recruits two
IFNGR2 chains into a hexameric signalling complex; only then are the
receptor-associated Janus kinases brought close enough to trans-phosphorylate
and activate STAT1. IFNGR2 variants block that recruitment, and the crystal
structure of the complete complex shows exactly how for the MSMD-associated
T168N substitution, which places a new N-linked glycan at the interface where
IFNGR2 has to dock. Downstream, macrophages fail to receive the activating
signal, cannot kill ingested mycobacteria, and cannot organise effective
granulomas.
The allelic series matters clinically because residual IFN-gamma signalling
predicts outcome. Autosomal recessive complete deficiency is one of only a
few MSMD etiologies that is fully penetrant and lethal before the third
decade without transplantation; partial recessive forms are less severe but
still fully penetrant; and a heterozygous frameshift causing
haploinsufficiency gives an autosomal dominant form with incomplete
penetrance. Recombinant IFN-gamma, the mainstay for other MSMD genotypes, has
no target in complete deficiency, which leaves haematopoietic stem cell
transplantation as the only curative option.
classifications:
harrisons_chapter:
- classification_value: IMMUNE_RHEUMATOLOGIC
- classification_value: INFECTIOUS_DISEASES
iuis_category:
classification_value: innate immunity defect
mappings:
mondo_mappings:
- term:
id: MONDO:0013953
label: immunodeficiency 28
mapping_predicate: skos:exactMatch
mapping_source: MONDO
mapping_justification: Primary MONDO identifier for IFNGR2-related MSMD.
references:
- reference: PMID:32025907
title: "Mendelian susceptibility to mycobacterial disease: recent discoveries."
- reference: PMID:25453225
title: "Mendelian susceptibility to mycobacterial disease: genetic, immunological, and clinical features of inborn errors of IFN-γ immunity."
- reference: PMID:30814731
title: "Structure of the IFNγ receptor complex guides design of biased agonists."
pathophysiology:
- name: IFNGR2 Loss-of-Function Variant
biological_scale: MOLECULAR
description: >-
Germline IFNGR2 variants of several molecular classes converge on the same
consequence. Null alleles abolish surface receptor entirely; missense
alleles such as T168N introduce a new N-glycosylation site; splice-acceptor
variants delete residues from the extracellular fibronectin type III domain;
and variants of the initiation or second codon leave only the small amount
of protein that leaky downstream translation initiation produces. What
varies between them is residual signalling, and that is what sets severity.
gene:
preferred_term: IFNGR2
term:
id: hgnc:5440
label: IFNGR2
genetic_context:
gene:
preferred_term: IFNGR2
term:
id: hgnc:5440
label: IFNGR2
variant_origin: GERMLINE
functional_impact_category: LOSS_OF_FUNCTION
downstream:
- target: Failure of Hexameric IFN-gamma Receptor Assembly
causal_link_type: DIRECT
evidence:
- reference: PMID:30814731
reference_title: "Structure of the IFNγ receptor complex guides design of biased agonists."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: "The structure reveals the mechanism underlying deficits in IFNγ responsiveness in mycobacterial disease syndrome resulting from a T168N mutation in IFNγR2, which impairs assembly of the full signalling complex."
explanation: Structural demonstration that the MSMD-associated IFNGR2 variant acts by preventing assembly of the signalling complex, which is precisely this edge.
evidence:
- reference: PMID:31222290
reference_title: "A purely quantitative form of partial recessive IFN-γR2 deficiency caused by mutations of the initiation or second codon."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Germline bi-allelic mutations of IFNGR2 can underlie partial or complete forms of IFN-γ receptor 2 (IFN-γR2) deficiency."
explanation: Establishes germline biallelic IFNGR2 variants as the lesion, in both complete and partial forms.
- reference: PMID:31497017
reference_title: "A Novel Splice Site Mutation in IFNGR2 in Patients With Primary Immunodeficiency Exhibiting Susceptibility to Mycobacterial Diseases."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "This led to an in-frame deletion of three amino acids p.(Thr70-Ser72) located in a fibronectin type III (FN3) domain in the extracellular region of IFNGR2."
explanation: Worked example of a splice-acceptor variant producing an in-frame extracellular-domain deletion, one of the molecular classes this node describes.
- name: Failure of Hexameric IFN-gamma Receptor Assembly
biological_scale: MOLECULAR
description: >-
IFN-gamma is a homodimer that first engages two constitutively expressed
IFNGR1 chains. Only the preformed IFN-gamma-IFNGR1 complex presents the
composite surface that IFNGR2 binds, so the 2:2:2 hexamer assembles
strictly in that order. A defective or absent IFNGR2 chain leaves the
assembly stalled at the intermediate complex.
gene:
preferred_term: IFNGR2
term:
id: hgnc:5440
label: IFNGR2
downstream:
- target: Loss of STAT1 Signal Transduction
causal_link_type: DIRECT
evidence:
- reference: PMID:30814731
reference_title: "Structure of the IFNγ receptor complex guides design of biased agonists."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: "We expressed IFNγR1 on the surface of yeast cells and showed that IFNγR2 only binds to the preformed IFNγR1–IFNγ complex, but not IFNγ alone."
explanation: Establishes the ordered assembly this node describes - IFNGR2 recruitment depends on the preformed intermediate, so an IFNGR2 defect stalls the complex.
- name: Loss of STAT1 Signal Transduction
biological_scale: CELLULAR
description: >-
Without IFNGR2 in the complex, the receptor-associated kinases are never
brought into proximity, STAT1 is not phosphorylated, and the IFN-gamma
transcriptional programme is not induced. The block is selective for type II
interferon: STAT1 remains reachable through the type I interferon receptor,
which is why antiviral immunity is broadly preserved.
cell_types:
- preferred_term: Macrophage
term:
id: CL:0000235
label: macrophage
- preferred_term: Monocyte
term:
id: CL:0000576
label: monocyte
- preferred_term: Fibroblast
term:
id: CL:0000057
label: fibroblast
biological_processes:
- preferred_term: type II interferon-mediated signaling pathway
term:
id: GO:0060333
label: type II interferon-mediated signaling pathway
modifier: DECREASED
downstream:
- target: Defective Macrophage Activation
causal_link_type: DIRECT
evidence:
- reference: PMID:31222290
reference_title: "A purely quantitative form of partial recessive IFN-γR2 deficiency caused by mutations of the initiation or second codon."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: "SV40-fibroblasts of P1 and P2 responded weakly to IFN-γ, and Epstein Barr virus-transformed B cells had a barely detectable response to IFN-γ."
explanation: Functional assays in patient-derived cells showing impaired IFN-gamma responsiveness.
- name: Defective Macrophage Activation
biological_scale: CELLULAR
description: >-
IFN-gamma is the macrophage-activating factor, and its loss removes the
signal that licenses macrophages to kill intracellular mycobacteria. The
residual level of IFN-gamma activity, not the identity of the variant, is
what predicts how badly this step fails, which is why the IFNGR2 allelic
series maps so directly onto clinical severity.
cell_types:
- preferred_term: Macrophage
term:
id: CL:0000235
label: macrophage
biological_processes:
- preferred_term: macrophage activation
term:
id: GO:0042116
label: macrophage activation
modifier: DECREASED
- preferred_term: defense response to bacterium
term:
id: GO:0042742
label: defense response to bacterium
modifier: DECREASED
downstream:
- target: Uncontrolled Mycobacterial Replication and Failed Granuloma Containment
causal_link_type: DIRECT
evidence:
- reference: PMID:32025907
reference_title: "Mendelian susceptibility to mycobacterial disease: recent discoveries."
supports: SUPPORT
evidence_source: IN_VITRO
quote_role: BACKGROUND
snippet: "These findings confirmed that IFN-γ, first described in 1965 as a pH-sensitive leukocytic antiviral IFN, is actually the macrophage-activating factor (MAF), as shown in 1983 by Carl Nathan (43)."
explanation: Identifies macrophage activation as the function IFN-gamma serves, which is the function lost at this node.
- reference: PMID:32025907
reference_title: "Mendelian susceptibility to mycobacterial disease: recent discoveries."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
quote_role: REVIEW_SYNTHESIS
snippet: "Strikingly, the severity and penetrance of MSMD are inversely correlated with the residual levels of IFN-γ."
explanation: Supports the dose-dependence of this node on residual IFN-gamma signalling, which is the entry's organising principle for the allelic series.
- name: Uncontrolled Mycobacterial Replication and Failed Granuloma Containment
biological_scale: TISSUE
description: >-
Unactivated macrophages neither clear ingested mycobacteria nor organise
into the structured granulomas that would wall the infection off, so
infection disseminates. Granulomas in IFN-gamma receptor deficiency may be
absent, poorly formed or necrotic rather than mature.
cell_types:
- preferred_term: Macrophage
term:
id: CL:0000235
label: macrophage
downstream:
- target: Disseminated Mycobacterial Disease
causal_link_type: DIRECT
- target: BCG Vaccine Disease
causal_link_type: DIRECT
description: >-
BCG disease is this node's earliest expression rather than a separate
one. The vaccine strain is a weakly virulent mycobacterium, so a child
vaccinated at birth meets the defect before any environmental exposure -
which is why BCG disease is what brings the diagnosis to attention in
countries that vaccinate.
- target: Recurrent Salmonella Infection
causal_link_type: DIRECT
- target: Sustained IFN-gamma Production Without Receptor Response
causal_link_type: INDIRECT_KNOWN_INTERMEDIATES
description: >-
The uncleared mycobacterial burden is what keeps IFN-gamma production
going. Infected macrophages release IL-12, IL-12 acts on its receptor on
T and NK cells, and those cells secrete IFN-gamma - a circuit that is
intact in this disease and that the receptor block leaves running without
a consumer. The intermediate step is named and established; what no source
cited here measures is the size of that drive in IFNGR2-deficient patients
specifically, hence the indirect link type.
evidence:
- reference: PMID:25453225
reference_title: "Mendelian susceptibility to mycobacterial disease: genetic, immunological, and clinical features of inborn errors of IFN-γ immunity."
supports: SUPPORT
directness: INDIRECT
evidence_source: IN_VITRO
quote_role: BACKGROUND
snippet: "IL-12 binds to its receptors, IL-12Rβ1 and IL-12Rβ2, on T lymphocytes and NK cells and is a potent inducer of IFN-γ."
explanation: Names the intermediate - infection-driven IL-12 acting on T and NK cells is the induction step for IFN-gamma, which is the production arm this edge asserts stays intact.
evidence:
- reference: PMID:32025907
reference_title: "Mendelian susceptibility to mycobacterial disease: recent discoveries."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
quote_role: REVIEW_SYNTHESIS
snippet: "Mycobacterial illnesses may have a wide range of clinical manifestations, from localized to disseminated, and acute to chronic infections, and with immature or mature granulomas (3, 6, 7)."
explanation: Records the range of granuloma maturity and the localized-to-disseminated spectrum that this node produces.
- name: Sustained IFN-gamma Production Without Receptor Response
biological_scale: ORGANISM
description: >-
Persistent infection keeps driving IFN-gamma production by Th1 and NK
cells, but with the receptor blocked the cytokine has nowhere to act. The
result is high plasma IFN-gamma in the presence of a complete failure of
IFN-gamma immunity - a laboratory finding that reads as the opposite of the
defect it marks, and a useful diagnostic pointer for that reason.
cell_types:
- preferred_term: T-helper 1 cell
term:
id: CL:0000545
label: T-helper 1 cell
- preferred_term: Natural killer cell
term:
id: CL:0000623
label: natural killer cell
downstream:
- target: Elevated Plasma Interferon-Gamma
causal_link_type: DIRECT
evidence:
- reference: PMID:25135595
reference_title: "Mycobacterium simiae infection in two unrelated patients with different forms of inherited IFN-γR2 deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "both patients have high level of IFN-γ in plasma"
explanation: Documents the elevated plasma IFN-gamma that this node asserts, across several reported cases.
phenotypes:
- category: Infectious
name: Disseminated Mycobacterial Disease
description: >-
Disease caused by BCG vaccine substrains and environmental mycobacteria, in
an individual with otherwise normal resistance to infection. Reported
organisms in IFNGR2 deficiency include Mycobacterium avium complex,
M. abscessus and M. simiae; the last was first described in IFN-gammaR2
deficiency in two unrelated consanguineous kindreds.
phenotype_term:
preferred_term: Recurrent mycobacterial infections
term:
id: HP:0011274
label: Recurrent mycobacterial infections
onset:
onset_category: INFANTILE
notes: >-
Manifestations begin in the first years of life in the complete form.
Onset is later and penetrance incomplete in the partial and dominant
forms, so this category describes the severe end of the allelic series
rather than every genotype.
frequency: VERY_FREQUENT
sequelae:
- target: Lymphadenopathy
description: >-
Lymph nodes are a usual site of mycobacterial involvement, regional after
BCG vaccination and abdominal or generalised once disease disseminates.
- target: Hepatosplenomegaly
description: >-
Organomegaly accompanying disseminated infection.
- target: Osteomyelitis
description: >-
Multifocal bone involvement as one presentation of dissemination.
- target: Pulmonary Parenchymal Consolidation
description: >-
Lung parenchymal involvement radiologically indistinguishable from
tuberculosis.
evidence:
- reference: PMID:32025907
reference_title: "Mendelian susceptibility to mycobacterial disease: recent discoveries."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
quote_role: REVIEW_SYNTHESIS
snippet: "Affected patients are highly and selectively susceptible to weakly virulent mycobacteria, such as environmental mycobacteria and Bacillus Calmette-Guérin vaccines."
explanation: Defines the core infectious phenotype of MSMD, of which IFNGR2 deficiency is one etiology.
- reference: PMID:25135595
reference_title: "Mycobacterium simiae infection in two unrelated patients with different forms of inherited IFN-γR2 deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "The second patient was a girl with multiple disseminated mycobacterial infections, including infection with M. simiae."
explanation: A named IFNGR2-deficient patient with disseminated mycobacterial infection.
- category: Infectious
name: Recurrent Salmonella Infection
description: >-
About half of MSMD patients are also susceptible to non-typhoidal
Salmonella, with disease ranging from gastroenteritis to disseminated
infection.
phenotype_term:
preferred_term: Recurrent Salmonella infection
term:
id: HP:5210095
label: Recurrent Salmonella infection
frequency: FREQUENT
evidence:
- reference: PMID:32025907
reference_title: "Mendelian susceptibility to mycobacterial disease: recent discoveries."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
quote_role: REVIEW_SYNTHESIS
snippet: "About half of MSMD patients are also particularly susceptible to non-typhoidal Salmonella, and these patients therefore have a broad spectrum of clinical disease, ranging from gastroenteritis to septicemia and disseminated infection (6, 7, 12–17)."
explanation: Gives both the frequency and the clinical range of the Salmonella phenotype.
- category: Hematologic
name: Lymphadenopathy
description: >-
Involved lymph nodes are a common site of mycobacterial disease; in one
reported patient an abdominal nodal mass yielded both M. simiae and
non-typhoidal Salmonella on culture.
phenotype_term:
preferred_term: Lymphadenopathy
term:
id: HP:0002716
label: Lymphadenopathy
evidence:
- reference: PMID:25135595
reference_title: "Mycobacterium simiae infection in two unrelated patients with different forms of inherited IFN-γR2 deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "He underwent surgery, which revealed a mass of lymph nodes close to the ileo-cecal valve."
explanation: Direct case observation of nodal involvement in an IFNGR2-deficient patient.
- category: Hematologic
name: Hepatosplenomegaly
phenotype_term:
preferred_term: Hepatosplenomegaly
term:
id: HP:0001433
label: Hepatosplenomegaly
evidence:
- reference: PMID:25135595
reference_title: "Mycobacterium simiae infection in two unrelated patients with different forms of inherited IFN-γR2 deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "An enlarged spleen and liver were noted on physical examination, together with an enlargement of abdominal lymph nodes."
explanation: Case observation of hepatosplenomegaly in an IFNGR2-deficient patient.
- category: Musculoskeletal
name: Osteomyelitis
description: >-
Multifocal mycobacterial osteomyelitis was the presentation in one of two
siblings homozygous for a transmembrane-domain frameshift.
phenotype_term:
preferred_term: Osteomyelitis
term:
id: HP:0002754
label: Osteomyelitis
evidence:
- reference: PMID:15356149
reference_title: "A novel mutation in IFN-gamma receptor 2 with dominant negative activity: biological consequences of homozygous and heterozygous states."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "We identified two siblings homozygous for a single base pair deletion in the IFN-gammaR2 transmembrane domain (791delG) who presented with multifocal Mycobacterium abscessus osteomyelitis (patient 1) and disseminated CMV and Mycobacterium avium complex infection (patient 2), respectively."
explanation: Case description of multifocal mycobacterial osteomyelitis as the presenting phenotype.
- category: Infectious
name: BCG Vaccine Disease
description: >-
Disease caused by the live attenuated BCG vaccine itself, which in countries
that vaccinate at birth is often what brings the diagnosis to attention. The
reported IFNGR2 range runs from regional axillary lymphadenitis to fatal
disseminated disease in infancy.
phenotype_term:
preferred_term: BCG-associated disease
term:
id: HP:5210408
label: BCG-associated disease
evidence:
- reference: PMID:23161749
reference_title: "Haploinsufficiency at the human IFNGR2 locus contributes to mycobacterial disease."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "She was vaccinated by BCG injection into the left deltoid at birth and presented with enlarged and purulent homolateral axillary lymph nodes at the age of 2 months."
explanation: Regional BCG disease as the presenting event in an IFNGR2-deficient patient.
- reference: PMID:31497017
reference_title: "A Novel Splice Site Mutation in IFNGR2 in Patients With Primary Immunodeficiency Exhibiting Susceptibility to Mycobacterial Diseases."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "There was a history of death of two other siblings in the family after BCG vaccination."
explanation: The fatal end of the same phenotype in the same IFNGR2 kindred.
- category: Respiratory
name: Pulmonary Parenchymal Consolidation
description: >-
Lung involvement during disseminated disease, radiologically
indistinguishable from pulmonary tuberculosis, which is part of why the
diagnosis is commonly delayed while anti-tuberculous therapy is tried.
phenotype_term:
preferred_term: Pulmonary parenchymal consolidation
term:
id: HP:0002113
label: Pulmonary infiltrates
evidence:
- reference: PMID:32909233
reference_title: "Successful Hematopoietic Stem Cell Transplantation in a Patient with Complete IFN-γ Receptor 2 Deficiency: a Case Report and Literature Review."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "a parenchymal consolidation in the left upper lobe with diffuse lymphadenopathies suggestive of pulmonary tuberculosis"
explanation: Case observation of the pulmonary finding and of its resemblance to tuberculosis.
- category: Laboratory
name: Elevated Plasma Interferon-Gamma
description: >-
High circulating IFN-gamma despite absent IFN-gamma responsiveness. It is
the biochemical signature of a receptor-level block rather than a
production-level one.
phenotype_term:
preferred_term: Increased circulating interferon-gamma concentration
term:
id: HP:0030356
label: Increased circulating interferon-gamma concentration
evidence:
- reference: PMID:25135595
reference_title: "Mycobacterium simiae infection in two unrelated patients with different forms of inherited IFN-γR2 deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "both patients have high level of IFN-γ in plasma"
explanation: Reports the laboratory finding in two patients and refers to it as a recurring feature of the disorder.
has_subtypes:
- name: AR complete
display_name: Autosomal recessive complete IFN-gammaR2 deficiency
classification: molecular
description: >-
No detectable receptor function. This is the severe end: complete
penetrance, onset in the first years of life, and death before the third
decade without transplantation. Recombinant IFN-gamma cannot work, because
there is no residual response for it to amplify.
evidence:
- reference: PMID:32025907
reference_title: "Mendelian susceptibility to mycobacterial disease: recent discoveries."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
quote_role: REVIEW_SYNTHESIS
snippet: "Indeed, the only four genetic etiologies shown to date to be fully penetrant (i.e. Mendelian) in childhood and always lethal before the third decade of life in the absence of hematopoietic stem cell transplantation (HSCT) are complete IFN-γR1 and IFN-γR2 deficiencies (7)."
explanation: States the penetrance and prognosis that define this subtype.
- name: AR partial
display_name: Autosomal recessive partial IFN-gammaR2 deficiency
classification: molecular
description: >-
Residual signalling, by one of two routes: a dysfunctional receptor
displayed on the cell surface, or a normal receptor present in only small
amounts because translation initiates at a downstream non-AUG codon. The
two are not equivalent - the second gives lower residual signalling and a
more severe phenotype, which is the sharpest available demonstration that
signalling level rather than receptor class sets severity.
evidence:
- reference: PMID:31222290
reference_title: "A purely quantitative form of partial recessive IFN-γR2 deficiency caused by mutations of the initiation or second codon."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Residual levels of IFN-γ signaling were very low, accounting for the more severe clinical phenotype of these patients with residual expression levels of normally functional surface receptors than of patients with partial recessive IFN-γR2 deficiency due to surface-expressed dysfunctional receptors, whose residual levels of IFN-γ signaling were higher."
explanation: Directly contrasts the two partial-deficiency mechanisms and ties the severity difference to residual signalling.
- name: AD haploinsufficiency
display_name: Autosomal dominant IFN-gammaR2 deficiency (haploinsufficiency)
classification: molecular
description: >-
A single loss-of-function allele, not dominant-negative, giving mildly
impaired IFN-gamma responses that are nevertheless enough for MSMD in some
carriers. Penetrance is incomplete, and the impairment is more pronounced in
lymphoid than myeloid cells, tracking IFNGR2 expression levels.
evidence:
- reference: PMID:23161749
reference_title: "Haploinsufficiency at the human IFNGR2 locus contributes to mycobacterial disease."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "We show that the mutant allele is intrinsically loss-of-function and not dominant-negative, suggesting haploinsufficiency at the IFNGR2 locus."
explanation: Establishes the mechanism of the dominant form as haploinsufficiency rather than dominant-negative interference.
- reference: PMID:23161749
reference_title: "Haploinsufficiency at the human IFNGR2 locus contributes to mycobacterial disease."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "The clinical penetrance of AD IFN-γR2 deficiency is incomplete, possibly due, at least partly, to the variability of cellular responses to IFN-γ in these individuals."
explanation: Records the incomplete penetrance that distinguishes this subtype from the recessive forms.
diagnosis:
- name: IFN-gammaR2 cell-surface expression by flow cytometry
description: >-
Flow cytometry for IFN-gammaR2 on patient cells separates the expressing
from the non-expressing variants, and that split is diagnostically
load-bearing rather than descriptive: a non-functional receptor sitting at
normal density on the cell surface looks normal on this assay, so a normal
result does not exclude the disease and must be read alongside a functional
assay. In heterozygotes the same measurement is what demonstrates the
haploinsufficiency underlying the dominant form.
markers: IFN-gammaR2 (CD119 partner chain) surface density; IFN-gammaR1 as internal control
evidence:
- reference: PMID:23161749
reference_title: "Haploinsufficiency at the human IFNGR2 locus contributes to mycobacterial disease."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "We showed, by flow cytometry, that EBV-B cells from WT/E−individuals had significantly lower levels of IFN-γR2 expression at the cell surface than EBV-B cells from WT/WT controls"
explanation: The measurement itself, and the result that makes it informative in heterozygous carriers.
- reference: PMID:31497017
reference_title: "A Novel Splice Site Mutation in IFNGR2 in Patients With Primary Immunodeficiency Exhibiting Susceptibility to Mycobacterial Diseases."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "(iii) complete or partial IFNGR2 deficiency with or without cell surface expression"
explanation: States the expressing/non-expressing axis as one of the etiologic distinctions, which is why surface expression alone does not settle the diagnosis.
- name: Functional IFN-gamma responsiveness of patient cells
description: >-
Stimulation of patient-derived fibroblasts or EBV-transformed B cells with
IFN-gamma, reading out the induced response. This is the assay that assigns
a patient to the complete or the partial form, because it measures the
residual signalling the whole entry is organised around, and it is the
measurement that separates a receptor defect from an IFN-gamma production
defect at the bedside before sequencing returns.
markers: IFN-gamma-induced STAT1 phosphorylation and downstream gene induction in patient fibroblasts or EBV-B cells
evidence:
- reference: PMID:31222290
reference_title: "A purely quantitative form of partial recessive IFN-γR2 deficiency caused by mutations of the initiation or second codon."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: "SV40-fibroblasts of P1 and P2 responded weakly to IFN-γ, and Epstein Barr virus-transformed B cells had a barely detectable response to IFN-γ."
explanation: The functional readout in the two cell types used, showing the graded result that assigns the partial form.
- name: IFNGR2 sequencing
description: >-
Molecular confirmation, in practice by exome sequencing with Sanger
confirmation. Exome is the usual route because MSMD is genetically
heterogeneous - the clinical picture points to the syndrome, not to the
gene - and because several of the reported IFNGR2 alleles are splice-site
or initiation-codon variants that a phenotype-first panel may not resolve.
evidence:
- reference: PMID:31497017
reference_title: "A Novel Splice Site Mutation in IFNGR2 in Patients With Primary Immunodeficiency Exhibiting Susceptibility to Mycobacterial Diseases."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Whole exome sequencing of the two affected surviving infants along with their consanguineous parents identified a novel, homozygous single nucleotide splice acceptor site variant in intron 2 of the interferon gamma receptor 2 (IFNGR2) gene."
explanation: Worked example of the diagnostic route, including the Sanger confirmation step described alongside it.
- name: Plasma interferon-gamma concentration
description: >-
High plasma IFN-gamma in a child with mycobacterial disease points toward a
receptor-level rather than a production-level defect, which is the branch
point that decides whether recombinant IFN-gamma is worth giving. It is a
pointer, not a diagnostic test - the reported series are small and no
threshold has been established.
markers: Plasma IFN-gamma
evidence:
- reference: PMID:25135595
reference_title: "Mycobacterium simiae infection in two unrelated patients with different forms of inherited IFN-γR2 deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "These patients have high plasma IFN-γ concentrations, as reported in other cases of AR IFN-γR2 deficiency"
explanation: Reports the finding in these patients and refers to it as recurring across the reported AR IFN-gammaR2 series.
genetic:
- name: IFNGR2
gene_term:
preferred_term: IFNGR2
term:
id: hgnc:5440
label: IFNGR2
relationship_type: CAUSATIVE
notes: >-
Encodes the IFN-gamma receptor 2 (beta) chain, whose expression - unlike the
constitutively expressed IFNGR1 - is tightly regulated. Reported allele
classes include null, missense creating a new glycosylation site (T168N),
splice-acceptor variants, initiation- and second-codon variants, and a
transmembrane frameshift with in vitro dominant-negative activity.
evidence:
- reference: PMID:25453225
reference_title: "Mendelian susceptibility to mycobacterial disease: genetic, immunological, and clinical features of inborn errors of IFN-γ immunity."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
quote_role: REVIEW_SYNTHESIS
snippet: "These disorders impair the production of (IL12B, IL12RB1, IRF8, ISG15, NEMO) or the response to (IFNGR1, IFNGR2, STAT1, IRF8, CYBB) IFN-γ."
explanation: Places IFNGR2 among the MSMD genes that impair the response to IFN-gamma, which is the mechanism this entry curates.
- reference: PMID:30814731
reference_title: "Structure of the IFNγ receptor complex guides design of biased agonists."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: "IFNγ is a homodimer5; it engages two α-receptor chains, IFNγR1, which are constitutively expressed on all nucleated cells, and two β-receptor chains, IFNγR2, the expression of which is tightly regulated6–8."
explanation: Describes the gene product's role and its regulated expression, which is relevant to the cell-type-dependent severity of haploinsufficiency.
inheritance:
- name: Autosomal Recessive
description: >-
Biallelic IFNGR2 variants, complete or partial. Consanguinity is common in
reported kindreds.
inheritance_term:
preferred_term: Autosomal recessive inheritance
term:
id: HP:0000007
label: Autosomal recessive inheritance
evidence:
- reference: PMID:25135595
reference_title: "Mycobacterium simiae infection in two unrelated patients with different forms of inherited IFN-γR2 deficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "We describe here two children with IFN-γR2 deficiency, from unrelated, consanguineous kindreds of Arab and Israeli descent."
explanation: Consanguineous kindreds with recessive IFNGR2 deficiency.
- name: Autosomal Dominant
description: >-
A heterozygous loss-of-function allele acting through haploinsufficiency,
with incomplete penetrance. It is the same locus and the same direction of
effect, at half the dose.
inheritance_term:
preferred_term: Autosomal dominant inheritance
term:
id: HP:0000006
label: Autosomal dominant inheritance
evidence:
- reference: PMID:23161749
reference_title: "Haploinsufficiency at the human IFNGR2 locus contributes to mycobacterial disease."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Overall, MSMD in this patient is probably due to autosomal dominant (AD) IFN-γR2 deficiency, resulting from haploinsufficiency, at least in lymphoid cells."
explanation: Establishes the dominant mode of inheritance for the haploinsufficient allele.
treatments:
- name: Haematopoietic Stem Cell Transplantation
description: >-
The only curative option in complete deficiency, since it replaces the
IFN-gamma-responsive haematopoietic compartment. Rejection rates are high in
these patients, which is a specific and repeated problem rather than a
generic transplant caveat. Reconstitution does not guarantee full receptor
function: in one transplanted sibling haematopoietic reconstitution was
complete but IFN-gamma receptor function only partial.
therapeutic_modality: CELL_THERAPY
treatment_term:
preferred_term: Hematopoietic Cell Transplantation
term:
id: NCIT:C15431
label: Hematopoietic Cell Transplantation
target_mechanisms:
- target: Loss of STAT1 Signal Transduction
description: >-
Restores IFN-gamma-responsive donor macrophages and monocytes, repairing
the signalling step rather than compensating downstream of it.
evidence:
- reference: PMID:32909233
reference_title: "Successful Hematopoietic Stem Cell Transplantation in a Patient with Complete IFN-γ Receptor 2 Deficiency: a Case Report and Literature Review."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Exogenous IFN-γ administration is mostly ineffective when no IFN-γ response could be achieved and therefore hemopoietic stem cell transplantation (HSCT) is the only curative intervention, although a high rate of rejection has been reported in these patients [9–14]."
explanation: States both the indication for transplantation and the rejection risk that qualifies it.
- reference: PMID:15356149
reference_title: "A novel mutation in IFN-gamma receptor 2 with dominant negative activity: biological consequences of homozygous and heterozygous states."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "An HLA-identical bone marrow transplant from the mother led patient 1 to complete hemopoietic reconstitution, but only partial IFN-gammaR function."
explanation: Qualifies the treatment claim - haematopoietic reconstitution and receptor-function restoration are not the same endpoint.
- name: Recombinant Interferon-Gamma
description: >-
Standard adjunctive therapy across much of MSMD, and specifically without a
target in complete IFN-gammaR2 deficiency - there is no residual receptor
response for exogenous ligand to drive. Curated here as a negative
treatment claim because getting this wrong costs time in a disease where
untreated survival is measured in years.
therapeutic_modality: PROTEIN_REPLACEMENT
treatment_term:
preferred_term: Pharmacotherapy
term:
id: NCIT:C15986
label: Pharmacotherapy
therapeutic_agent:
- preferred_term: recombinant interferon gamma
term:
id: NCIT:C583
label: Recombinant Interferon Gamma
target_mechanisms:
- target: Defective Macrophage Activation
description: >-
This is the node exogenous IFN-gamma is meant to drive, and the node at
which it fails here. In the MSMD aetiologies that impair IFN-gamma
production the ligand is the missing input and supplying it restores
macrophage activation; in complete IFN-gammaR2 deficiency the receptor
that would read it is absent, so the same drug reaches the same node with
no effect.
evidence:
- reference: PMID:32909233
reference_title: "Successful Hematopoietic Stem Cell Transplantation in a Patient with Complete IFN-γ Receptor 2 Deficiency: a Case Report and Literature Review."
supports: REFUTE
evidence_source: HUMAN_CLINICAL
snippet: "Exogenous IFN-γ administration is mostly ineffective when no IFN-γ response could be achieved and therefore hemopoietic stem cell transplantation (HSCT) is the only curative intervention, although a high rate of rejection has been reported in these patients [9–14]."
explanation: Refutes exogenous IFN-gamma as effective therapy in complete IFN-gammaR2 deficiency, which is what this treatment entry records.
- name: Prolonged Antimycobacterial Therapy
description: >-
Multi-drug antimycobacterial regimens, often prolonged and often against
highly resistant environmental organisms. It controls episodes without
correcting the defect, and one reported patient improved over six months on
a four-drug regimen only to relapse on the same treatment.
therapeutic_modality: SMALL_MOLECULE
treatment_term:
preferred_term: Antibiotic Therapy
term:
id: NCIT:C15620
label: Antibiotic Therapy
target_mechanisms:
- target: Uncontrolled Mycobacterial Replication and Failed Granuloma Containment
description: >-
Acts on the organism rather than on the host defect, lowering the
mycobacterial burden that unactivated macrophages cannot clear. It joins
the pathograph downstream of the immunological lesion, which is why
control is episodic and relapse on the same regimen is reported.
evidence:
- reference: PMID:32909233
reference_title: "Successful Hematopoietic Stem Cell Transplantation in a Patient with Complete IFN-γ Receptor 2 Deficiency: a Case Report and Literature Review."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "In these patients, the clinical manifestations begin in the first years of life and are characterized by severe, disseminated, and recurrent mycobacterial infectious diseases that require prolonged multiple antibiotic therapy [2, 3]."
explanation: Establishes prolonged multi-drug antibiotic therapy as the standard of care for the infectious episodes.
- reference: PMID:25135595
reference_title: "Mycobacterium simiae infection in two unrelated patients with different forms of inherited IFN-γR2 deficiency."
supports: SUPPORT
directness: INDIRECT
evidence_source: HUMAN_CLINICAL
snippet: "His condition gradually improved over a six-month period with negative blood cultures, the resolution of fever, weight gain and improvements in markers of inflammation, such as complete blood count (CBC), C-reactive protein (CRP) concentration and erythrocyte sedimentation rate (ESR)."
explanation: Documents response to antimycobacterial therapy in one patient; it supports efficacy for an episode rather than for the disease, since the same patient later relapsed.
prevalence:
- population: Worldwide, AR complete IFN-gammaR2 deficiency
measure_type: CASES_IN_LITERATURE
prevalence_class: ULTRA_RARE
notes: >-
Eleven patients from eight kindreds reported as of the 2020 case report.
No rate is recorded, deliberately: the only published rate is for MSMD as a
whole, about 1 in 50,000 worldwide, and this genotype is a small fraction
of that syndrome - biallelic IL12RB1 variants account for roughly 60% of
diagnosed MSMD. Putting the syndrome-wide rate in rate_per_100000 would
make this entry queryable at roughly a hundred thousand affected people
against eleven ever described. The three sibling MSMD aetiology entries
(complete IL12B deficiency, partial IRF8 deficiency, IRF1 deficiency) all
decline the numeric slot for the same reason.
evidence:
- reference: PMID:32909233
reference_title: "Successful Hematopoietic Stem Cell Transplantation in a Patient with Complete IFN-γ Receptor 2 Deficiency: a Case Report and Literature Review."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "eleven patients from eight kindreds with AR complete IFN-γR2 deficiency have been described"
explanation: Gives the case count on record for the complete recessive form, which is what this record asserts.
- reference: PMID:32025907
reference_title: "Mendelian susceptibility to mycobacterial disease: recent discoveries."
supports: SUPPORT
directness: INDIRECT
evidence_source: HUMAN_CLINICAL
quote_role: BACKGROUND
snippet: "MSMD affects about 1/50,000 individuals worldwide (6)."
explanation: The syndrome-wide figure, kept as context for the notes rather than as a rate for this genotype. It bounds this aetiology from above and nothing more.
differential_diagnoses:
- name: Mendelian Susceptibility To Mycobacterial Diseases Due To Complete IL12B Deficiency
description: >-
Same clinical syndrome, opposite side of the circuit - impaired IFN-gamma
production rather than impaired response. The distinction is made
functionally (IFN-gamma responsiveness of patient cells) and then
genetically, and it matters because recombinant IFN-gamma works for
production defects and not for complete receptor defects.
- name: Chronic Granulomatous Disease
description: >-
Also presents with mycobacterial and granulomatous disease, but has an
abnormal neutrophil oxidative burst. Neutrophil function testing was used to
exclude it in the reported IFNGR2 cases.
review_notes: >-
Scope: this entry is the IFNGR2 etiology of MSMD, which is how the KB already
handles this syndrome - one entry per genetic aetiology, alongside the
existing IL12B, IRF8, CYBB and IRF1 entries. The whole IFNGR2 allelic series
is curated here as has_subtypes rather than split further, because the three
forms share one pathograph and differ only in residual signalling, which is
the quantity the entry is organised around.
Not curated: the broader MSMD gene list (15 genes, 30 disorders) beyond what
is needed to place this entity; candidiasis, which the reviews attach to
specific other MSMD genotypes rather than to IFNGR2; and the IFN-gamma
biased-agonist engineering from the structural paper, which is a therapeutic
programme for other indications and makes no claim about this disease.
Viral susceptibility is stated carefully rather than excluded. The
mechanistic argument for preserved antiviral immunity is real - STAT1 remains
reachable through the type I interferon receptor - and it is why this entry
says antiviral immunity is "broadly" preserved rather than intact. Against
that, patient 2 of PMID:15356149 had disseminated CMV alongside M. avium
complex infection. One patient does not establish a viral phenotype, and no
cached source attributes it to the IFNGR2 genotype rather than to the state of
a chronically infected infant, so no viral phenotype is curated here; but the
observation is on record and the entry should not be read as asserting that
viral disease does not occur.
GeneReviews has no chapter for the IFNGR2 etiology of MSMD. Searched under
"IFNGR2", "interferon gamma receptor 2 deficiency" and "Mendelian
susceptibility to mycobacterial disease": no result. Recorded here so the
absence is known to be a search finding rather than an omission, matching how
the sibling IRF8 entry records the same.
Evidence from the two narrative MSMD reviews is graded per sentence, not per
paper. A first pass regraded all eight OTHER items to HUMAN_CLINICAL in one
move, which was too coarse. Of those eight, the sentence identifying
IFN-gamma as the macrophage-activating factor names Carl Nathan's 1983 work
in cultured human macrophages, so it is IN_VITRO with quote_role BACKGROUND -
the review is restating another paper's finding rather than reporting its
own. The prevalence figure is HUMAN_CLINICAL but also BACKGROUND, since the
review attributes it to a single cited source. The other six are
HUMAN_CLINICAL with quote_role REVIEW_SYNTHESIS, each synthesising a clinical
literature the review is summarising. A ninth item, the IL-12 receptor
sentence, was added later to carry the antigenic-drive edge and was never
OTHER; it is graded the same way as the MAF sentence and for the same reason.
That distinction is what quote_role is for, and it is invisible in
evidence_source alone: a narrative review carries primary results, restated
background and its own synthesis in adjacent sentences, and grading by
publication type collapses all three.
One citation from the deep-research report was not used - PMID:34242561,
which the report cited as supporting material but which is a paper about CD28
deficiency, not IFNGR2. The report's own reference validation resolved it and
did not flag it, which is worth knowing about that check: it scores relevance
against the report's own vocabulary, so a wrong-gene immunology paper reads
as on topic.
Two proposals from the first review round were declined, both on sourcing
rather than on principle. A second incoming edge to "Sustained IFN-gamma
Production Without Receptor Response" from "Loss of STAT1 Signal
Transduction", on the grounds of lost negative feedback, is plausible
textbook immunology but no cached source here says it: none of the eight
fetched references mentions feedback, downregulation or SOCS at all. The node
is instead connected through the antigenic-drive edge, which has a named
intermediate and a citation. And the agent term for exogenous IFN-gamma is
left at NCIT:C583 (Recombinant Interferon Gamma) rather than narrowed to
NCIT:C100089 (Interferon Gamma-1b), because the claim curated here is the
negative one - that exogenous IFN-gamma has no target in complete receptor
deficiency - and that holds for any formulation, so naming the licensed
product would narrow a claim the source states generically.
Deep research results are used as seeds for research; they do not undergo the same validation as the main records and may contain errors. How we use deep research.
Record review notes
Scope: this entry is the IFNGR2 etiology of MSMD, which is how the KB already handles this syndrome - one entry per genetic aetiology, alongside the existing IL12B, IRF8, CYBB and IRF1 entries. The whole IFNGR2 allelic series is curated here as has_subtypes rather than split further, because the three forms share one pathograph and differ only in residual signalling, which is the quantity the entry is organised around. Not curated: the broader MSMD gene list (15 genes, 30 disorders) beyond what is needed to place this entity; candidiasis, which the reviews attach to specific other MSMD genotypes rather than to IFNGR2; and the IFN-gamma biased-agonist engineering from the structural paper, which is a therapeutic programme for other indications and makes no claim about this disease. Viral susceptibility is stated carefully rather than excluded. The mechanistic argument for preserved antiviral immunity is real - STAT1 remains reachable through the type I interferon receptor - and it is why this entry says antiviral immunity is "broadly" preserved rather than intact. Against that, patient 2 of PMID:15356149 had disseminated CMV alongside M. avium complex infection. One patient does not establish a viral phenotype, and no cached source attributes it to the IFNGR2 genotype rather than to the state of a chronically infected infant, so no viral phenotype is curated here; but the observation is on record and the entry should not be read as asserting that viral disease does not occur. GeneReviews has no chapter for the IFNGR2 etiology of MSMD. Searched under "IFNGR2", "interferon gamma receptor 2 deficiency" and "Mendelian susceptibility to mycobacterial disease": no result. Recorded here so the absence is known to be a search finding rather than an omission, matching how the sibling IRF8 entry records the same. Evidence from the two narrative MSMD reviews is graded per sentence, not per paper. A first pass regraded all eight OTHER items to HUMAN_CLINICAL in one move, which was too coarse. Of those eight, the sentence identifying IFN-gamma as the macrophage-activating factor names Carl Nathan's 1983 work in cultured human macrophages, so it is IN_VITRO with quote_role BACKGROUND - the review is restating another paper's finding rather than reporting its own. The prevalence figure is HUMAN_CLINICAL but also BACKGROUND, since the review attributes it to a single cited source. The other six are HUMAN_CLINICAL with quote_role REVIEW_SYNTHESIS, each synthesising a clinical literature the review is summarising. A ninth item, the IL-12 receptor sentence, was added later to carry the antigenic-drive edge and was never OTHER; it is graded the same way as the MAF sentence and for the same reason. That distinction is what quote_role is for, and it is invisible in evidence_source alone: a narrative review carries primary results, restated background and its own synthesis in adjacent sentences, and grading by publication type collapses all three. One citation from the deep-research report was not used - PMID:34242561, which the report cited as supporting material but which is a paper about CD28 deficiency, not IFNGR2. The report's own reference validation resolved it and did not flag it, which is worth knowing about that check: it scores relevance against the report's own vocabulary, so a wrong-gene immunology paper reads as on topic. Two proposals from the first review round were declined, both on sourcing rather than on principle. A second incoming edge to "Sustained IFN-gamma Production Without Receptor Response" from "Loss of STAT1 Signal Transduction", on the grounds of lost negative feedback, is plausible textbook immunology but no cached source here says it: none of the eight fetched references mentions feedback, downregulation or SOCS at all. The node is instead connected through the antigenic-drive edge, which has a named intermediate and a citation. And the agent term for exogenous IFN-gamma is left at NCIT:C583 (Recombinant Interferon Gamma) rather than narrowed to NCIT:C100089 (Interferon Gamma-1b), because the claim curated here is the negative one - that exogenous IFN-gamma has no target in complete receptor deficiency - and that holds for any formulation, so naming the licensed product would narrow a claim the source states generically.
Create: Immunodeficiency 28 (IFNGR2-related MSMD) · 2026-09-15T21:16:25Z · View source
De novo curation of MONDO:0013953 from a Perplexity sonar-deep-research report (research/Immunodeficiency_28-deep-research-perplexity.md). Report preflight (just preflight-dr) returned PASS with IFNGR2 mentioned 161 times. The report supplied 7 resolvable reference identifiers for a 113 KB document and its reference-validation block reported 7/7 resolved with a 0.0 confabulation rate; one of those 7, PMID:34242561, is a paper about CD28 deficiency rather than IFNGR2 and was not used. That citation resolved cleanly and was not flagged off topic, which is a limit of relevance scoring against a report's own vocabulary rather than an error in this report's prose. The reference set was rebuilt from PubMed: PMIDs 15356149, 23161749, 25135595, 25453225, 30814731, 31222290, 31497017, 32025907, 32909233, with three PMC identifiers from the citation sidecar resolved through the NCBI ID converter. Pathophysiology is curated as a six-node chain from the IFNGR2 loss-of-function variant through failed hexameric receptor assembly, lost STAT1 signal transduction, defective macrophage activation and failed granuloma containment, plus a branch for sustained IFN-gamma production that cannot signal. The IFNGR2 allelic series (AR complete, AR partial, AD haploinsufficiency) is curated as has_subtypes because the three share one pathograph and differ in residual signalling. Recombinant IFN-gamma is recorded as a treatment with REFUTE evidence, since it has no target in complete deficiency. Validated: just validate-disorders (schema, terms and references, batched) passed, 31/31 snippets verified, check-entity-refs, check-causal-targets and check-duplicate-keys all OK. Three snippets initially failed because bracketed citation markers inside the quoted sentences are stripped before matching; they were retrimmed to bracket-free spans rather than reworded.
Immunodeficiency 28 (IMD28) is defined in Online Mendelian Inheritance in Man (OMIM) as “Immunodeficiency 28, mycobacteriosis,” caused by homozygous or compound heterozygous mutations in the IFNGR2 gene encoding the interferon-gamma receptor 2 chain on chromosome 21q22.11.[1][18] It belongs to the broader category of Mendelian susceptibility to mycobacterial disease (MSMD), a group of inborn errors of IFN-γ–mediated immunity characterized by selective vulnerability to mycobacteria and a limited set of other pathogens, especially Salmonella.[11][13][20] The clinical hallmark of IMD28 is severe and often disseminated disease due to moderately virulent mycobacterial species such as BCG vaccine strains and environmental non-tuberculous mycobacteria (NTM), frequently accompanied by failure to control infection despite appropriate antimicrobial therapy.[1][2][9][10] Patients with complete autosomal recessive IFNGR2 deficiency typically present in infancy or early childhood with lymphadenopathy, hepatosplenomegaly, bone lesions, pulmonary involvement, and systemic symptoms after BCG vaccination or environmental mycobacterial exposure, and most succumb to complications within the first decade of life in the absence of HSCT.[11][14][15][19] Partial IFNGR2 deficiency, whether recessive or dominant, is associated with a milder but still serious phenotype of recurrent or chronic mycobacterial infections, sometimes localized (for example multifocal osteomyelitis) and compatible with survival into adolescence or adulthood, especially when promptly treated.[2][11][13][18]
From a conceptual standpoint, IMD28 is a prototypical monogenic immunodeficiency where the primary defect lies in a specific cytokine receptor pathway rather than generalized lymphocyte development or function; affected individuals may have normal lymphocyte counts, immunoglobulin levels, and vaccine responses to non-live antigens, yet are profoundly unable to mount protective IFN-γ–dependent macrophage activation against mycobacteria.[10][11][13] This selective immunologic vulnerability distinguishes IMD28 from broader combined immunodeficiencies and underscores the importance of considering MSMD in any child with severe BCG or NTM disease in the setting of otherwise unremarkable routine immunologic work-up.[11][13][15] The disease has also been subdivided—in Orphanet and MSMD reviews—into “MSMD due to complete IFN-γR2 deficiency” and “MSMD due to partial IFN-γR2 deficiency,” which are clinically overlapping but differ in molecular mechanisms and residual signaling capacity.[11][13][15][18]
Several authoritative resources assign distinct identifiers to Immunodeficiency 28 and its IFNGR2-related MSMD variants. OMIM lists IMD28 under MIM number 614889, with IFNGR2 itself under MIM 147569 and maps the phenotype to cytogenetic location 21q22.11.[1][6][8][18] Orphanet catalogs “Mendelian susceptibility to mycobacterial diseases due to complete interferon gamma receptor 2 deficiency” as Orphanet ID 319547 and “MSMD due to partial IFN-gammaR2 deficiency” as a related entry, both with autosomal recessive inheritance and very low prevalence.[9][15] The MONDO disease ontology references Immunodeficiency 28 as MONDO:0013953, explicitly linking it to IFNGR2 deficiency and susceptibility to mycobacterial infections.[5][7] In ClinVar, IFNGR2 deficiency is associated with the condition name “Immunodeficiency 28 (IMD28)” and cross-referenced to OMIM:614889, Orphanet:319547/319574, MedGen C4013947, and MONDO:0013953.[5]
Common synonyms and alternative names include “IFNGR2 deficiency,” “IFN-gamma receptor 2 deficiency,” “Mendelian susceptibility to mycobacterial diseases due to complete interferon gamma receptor 2 deficiency,” “MSMD due to partial IFN-gammaR2 deficiency,” and “Immunodeficiency 28, mycobacteriosis.”[1][2][9][11][15][18] Clinically, the condition is frequently described simply as “IFN-γR2 deficiency” within the MSMD literature, which recognizes IFNGR2 among a panel of at least 11 genes (including IL12B, IL12RB1, STAT1, IFNGR1, and others) whose inborn defects confer susceptibility to mycobacteria.[11][13][20] Under ICD-10, there is no specific code uniquely assigned to IMD28; affected patients are generally coded under broader immunodeficiency categories such as D84.8 (“Other specified immunodeficiencies”) or D89.8 (“Other specified disorders involving the immune mechanism”), and under ICD-11 they fall in the group of “primary immunodeficiencies predominantly affecting cellular and humoral immunity.” These generic codes reflect the rarity and sub-specialist nature of the diagnosis rather than a lack of clinical significance.
Because IMD28 is a well-defined monogenic entity, most information is derived from aggregated disease-level resources that synthesize case reports and series rather than from large electronic health record (EHR) datasets. OMIM, Orphanet, MalaCards, and authoritative reviews in Human Molecular Genetics, Journal of Clinical Investigation, and Frontiers in Immunology collate phenotypic and mechanistic data from approximately 30–40 reported patients, including at least ten with complete IFN-γR2 deficiency and additional individuals with partial deficiencies.[11][13][14][15][18][20] Individual EHR-based epidemiologic analyses are essentially nonexistent due to the extreme rarity of the condition; instead, knowledge is driven by detailed clinical immunology work-ups, family-based genetic studies, and mechanistic experiments in patient-derived cells.
MSMD is an umbrella clinical and genetic concept that encompasses a heterogeneous group of rare inborn errors of immunity conferring “selective susceptibility to weakly virulent mycobacteria, including Bacille Calmette–Guérin (BCG) vaccine substrains and various environmental mycobacteria, in otherwise healthy patients.”[11][13][20] IFNGR2 deficiency is one of the core MSMD-causing defects, alongside IFNGR1 deficiency, IL-12 p40 and IL-12 receptor β1 deficiencies, STAT1 defects, and several other conditions affecting IFN-γ production or signaling.[11][13][20] Within this framework, IMD28 corresponds to those MSMD cases in which the proximal lesion resides in the signal-transducing chain of the IFN-γ receptor complex, IFNGR2, rather than in ligand production (IFNG) or the ligand-binding chain IFNGR1.[11][17][18]
The MSMD literature emphasizes that IFNGR2 deficiency exists in multiple forms. Complete autosomal recessive deficiency is defined functionally by an undetectable cellular response to IFN-γ, in terms of STAT1 phosphorylation, gene induction, and microbicidal activity, and is almost always lethal in childhood without HSCT.[11][13][15][20] Partial deficiencies, whether autosomal recessive due to hypomorphic alleles or autosomal dominant due to haploinsufficiency, produce a continuum of reduced IFN-γ signaling with variable penetrance for mycobacterial disease, thereby illustrating that human IFN-γ responsiveness is a quantitative trait.[11][13][17][18] The MSMD classification and its mechanistic dissection have been instrumental in demonstrating that IFN-γ functions physiologically not as a general antiviral cytokine, as initially described, but as the key macrophage-activating factor required for host defense against mycobacteria and related intracellular pathogens.[11][13]
The primary cause of Immunodeficiency 28 is germline mutation in IFNGR2, the gene encoding the signal-transducing β chain of the human interferon-gamma receptor complex.[1][18] IFNGR2 is located on chromosome 21q22.11 and encodes a type I membrane protein that associates with IFNGR1 to form the functional receptor for IFN-γ at the cell surface of macrophages, monocytes, dendritic cells, and other immune cells.[1][10][16][18] Pathogenic IFNGR2 variants—mostly biallelic in the case of complete deficiency—disrupt receptor expression, folding, trafficking, glycosylation, or intracellular signaling motifs, thereby abrogating or attenuating IFN-γ–induced STAT1 activation and downstream antimicrobial programs.[11][14][16][18][20] OMIM and Orphanet categorize IMD28 and related MSMD forms as Mendelian monogenic disorders with autosomal recessive inheritance for complete and partial forms and autosomal dominant inheritance for some partial forms due to haploinsufficiency.[1][11][15][18]
Several mechanistic classes of IFNGR2 mutations have been defined. The earliest reported case of IFNGR2 deficiency involved a mutation in the extracellular domain that prevented cell surface expression of the receptor, leading to absent IFN-γ signaling and disseminated mycobacterial disease in childhood.[18][20] Vogt and colleagues later described a missense mutation, T168N, that creates a novel N-linked glycosylation site in IFNGR2; the attached carbohydrate moiety sterically prevents recruitment of IFNGR2 into the IFN-γ receptor signaling complex despite preserved IFNGR1 engagement, thus abolishing cellular responses to IFN-γ while leaving the receptor present at the surface.[16][18] More recent work has identified splice site mutations, such as c.207-1G>A, causing an in-frame deletion of three amino acids in the extracellular fibronectin type 3 domain, which destabilizes the receptor or impairs signaling and presents clinically with recurrent infections and familial BCG-related deaths.[14] Additional hypomorphic mutations affecting translation initiation codons or early coding sequence have been shown to confer partial AR deficiency with residual but reduced IFN-γ responsiveness and milder MSMD phenotypes.[13][17]
Mechanistically, the disease reflects loss of function of IFNGR2. Both complete and partial deficiencies are characterized by impaired or absent STAT1 phosphorylation upon IFN-γ stimulation, defective upregulation of IFN-γ–inducible genes such as CXCL10, GBP family members, and IRF1, and insufficient activation of macrophage microbicidal effector functions including reactive nitrogen and oxygen species production.[10][11][13][20] The result is a failure to contain mycobacterial replication within granulomas, leading to uncontrolled bacterial proliferation and tissue destruction despite otherwise intact lymphocyte development and immunoglobulin production. In partial dominant forms, the mechanism is haploinsufficiency rather than dominant-negative interference, contrasting with AD IFNGR1 deficiency, which involves truncated receptor tails that prevent recycling and signaling.[11][17][18]
Beyond the primary IFNGR2 mutations that directly cause Immunodeficiency 28, other genetic factors can modulate susceptibility to mycobacterial disease in patients or heterozygous carriers. The MSMD spectrum includes multiple genes whose defects can mimic or compound the clinical phenotype, including IFNGR1, STAT1, IL12B, IL12RB1, ISG15, TYK2, IRF8, SPPL2A, NEMO, and CYBB.[11][13][20] These genes collectively define the IL-12/IFN-γ axis, and their polymorphisms may influence the severity or breadth of infection in IFNGR2-deficient individuals. For example, hypomorphic alleles in IL12RB1 or STAT1 could theoretically exacerbate an already compromised IFN-γ signaling environment, although specific data on genetic modifiers in IMD28 are limited.
Autosomal dominant partial IFNGR2 deficiency, acting by haploinsufficiency, represents a form of quantitative genetic risk factor: heterozygous carriers of particular IFNGR2 mutations have reduced IFN-γ responsiveness and increased—but incompletely penetrant—risk for MSMD.[11][17][18] Casanova and colleagues have emphasized that IFN-γ–related traits in humans, including cytokine production, receptor expression, and signaling capacity, are quantitative and polygenic; however, the strongest effects in MSMD are due to rare, high-impact variants rather than common susceptibility polymorphisms.[11][17] Population databases such as gnomAD document numerous IFNGR2 variants at low frequency, most of which are benign or of uncertain significance; nonetheless, the presence of rare, predicted loss-of-function alleles in apparently healthy individuals highlights the possibility of low penetrance or incomplete ascertainment.[5][18]
ClinVar records specific IFNGR2 variants, such as NM_005534.4: c.879+32dup (rs143248516), which has been submitted as benign for Immunodeficiency 28, underscoring the necessity of careful pathogenicity assessment according to ACMG/AMP guidelines.[5] The benign classification suggests that some intronic or synonymous changes that alter reference sequences are tolerated in humans without causing IFN-γR2 deficiency, and that not all IFNGR2 sequence variation translates into disease risk. At present, there is no evidence for common GWAS-identified susceptibility loci for IMD28, reflecting both its rarity and its strongly Mendelian etiology.
Environmental exposures play a decisive role in determining clinical expression of IFNGR2 deficiency. The most critical environmental factor is exposure to mycobacteria, especially BCG vaccine strains and environmental NTM. In regions where BCG vaccination is routinely administered in the neonatal period, infants with complete IFN-γR2 deficiency invariably develop disseminated BCG disease, often leading to early death.[9][10][11][14][15] Orphanet notes that “severe and often fatal BCG and environmental mycobacteria infections begin in early childhood (before the age of 3)” in complete IFN-γR2 deficiency, reflecting the rapid unmasking of the genetic defect by vaccine exposure.[15] In countries without BCG vaccination or with delayed schedules, initial presentations may instead involve environmental mycobacteria or M. tuberculosis, and age of onset may be slightly later.
The IL-12/IFN-γ pathway is also essential for control of Salmonella infections, and MSMD patients—including some with IFNGR2 deficiency—have been reported to suffer severe or recurrent salmonellosis.[10][11][20] Geographic regions with high NTM and Salmonella exposure, coupled with widespread BCG vaccination and a background of consanguinity, are therefore epidemiologic “hotspots” for the manifestation of IFNGR2 defects, as seen in reported cases from Saudi Arabia, Iran, Turkey, India, and Lebanon.[14][17][18][20] Other environmental factors such as malnutrition, co-infections with HIV, and exposure to immunosuppressive medications could, in principle, aggravate disease, but detailed data specific to IMD28 are lacking.
Specific protective genetic factors for Immunodeficiency 28 have not been clearly defined. The majority of reported cases involve high-impact loss-of-function IFNGR2 mutations that confer near-obligate risk for severe MSMD when combined with typical environmental exposure to mycobacteria.[11][13][15][18][20] In theory, genetic variants that enhance IFN-γ–independent mycobacterial control pathways—for example, polymorphisms increasing TNF-α production, autophagy efficiency, or alternative macrophage activation routes—could mitigate disease severity, but such modifiers have not yet been systematically identified in IMD28. Likewise, there is no evidence that common protective alleles in IFNG or IFNGR1 alter penetrance of IFNGR2 defects, though polygenic background likely contributes to inter-individual variability.
Environmental protective factors are better defined pragmatically. Avoidance of live BCG vaccination in neonates known to carry IFNGR2 mutations, or in families with previously affected children, effectively prevents the most severe early-onset disease manifestation.[10][15] Rigorous infection control practices to reduce exposure to environmental mycobacteria, including water and soil sources, might also be beneficial, although this is difficult to implement comprehensively. Early recognition and treatment of localized infections can prevent dissemination and reduce mortality, representing a form of secondary environmental protection. High-quality nutrition and absence of secondary immunosuppressive conditions may support residual host defenses—but these factors are general to many infections and not specific to IFNGR2 deficiency.
Gene–environment interactions in IMD28 are striking and instructive. Bi-allelic IFNGR2 loss-of-function is necessary but not sufficient for disease; its clinical impact depends crucially on exposure to mycobacteria and perhaps to particular environmental strains. Casanova and colleagues have argued, based on MSMD cohorts, that the phenotype of IFN-γ pathway defects is shaped by both genotype and pathogen virulence, with weakly virulent mycobacteria disproportionately revealing inborn errors of IFN-γ immunity that might otherwise remain clinically silent.[11][17][20] This interaction explains why some heterozygous carriers of partial IFNGR2 mutations remain asymptomatic in low-exposure settings, whereas others develop MSMD when confronted with high pathogen burdens. The case reports of families in which multiple siblings succumbed to BCG disease after vaccination while others, including heterozygous parents, remained healthy vividly illustrate this interplay between a Mendelian lesion and a specific environmental trigger.[14][15][18]
The central phenotype of Immunodeficiency 28 is increased susceptibility to mycobacterial infections, particularly those caused by BCG vaccine strains and environmental non-tuberculous mycobacteria. OMIM, MalaCards, Mendelian.co, and Orphanet all emphasize this defining characteristic. MalaCards describes IMD28 as “a primary immunodeficiency disease characterized by increased susceptibility to mycobacterial disease, high levels of IFNG in the plasma, and absence of cellular response to IFNG.”[2] Similarly, Mendelian.co summarily notes that “IMD28 is caused by autosomal recessive IFNGR2 deficiency… characterized by severe and often fatal infections with BCG and other environmental mycobacteria,” and lists “recurrent mycobacterial infections” as a key phenotype.[9] Orphanet reports that complete IFN-γR2 deficiency causes “severe and often fatal BCG and EM infections” beginning in early childhood.[15]
Clinically, these infections manifest as persistent or progressive local disease at the site of BCG inoculation (for example ulceration or abscess) followed by regional lymphadenitis, systemic dissemination with hepatosplenomegaly, bone and joint involvement, pulmonary lesions, and constitutional symptoms such as fever and weight loss.[14][15][18][20] Environmental mycobacteria such as Mycobacterium avium, M. fortuitum, M. abscessus, and M. chelonae feature prominently in case descriptions.[1][2][9][14][18][20] Dorman and Holland’s original 1998 report of an IFNGR2 mutation described a child with disseminated M. fortuitum and M. avium complex infections associated with absent IFN-γ signaling.[18][20] Later, Vogt et al. documented three children with MSMD who were homozygous for the T168N IFNGR2 mutation and suffered severe mycobacterial disease.[18]
Salmonella infections are also noted as part of the MSMD phenotype, reflecting the shared dependence on IL-12/IFN-γ pathway for host defense. The immunodeficiencysearch.com resource summarizing IFN-γ pathway defects states that patients with autosomal recessive complete IFN-γ receptor deficiency often experience severe salmonella infections in addition to mycobacterial disease.[10] Although specific salmonella phenotypes in IFNGR2-deficient patients are less frequently detailed in the literature than mycobacterial infections, severe or recurrent non-typhoidal salmonellosis should be considered part of the syndrome and influences differential diagnosis and management.
In Human Phenotype Ontology (HPO) terms, these core phenotypes can be mapped as follows: “Recurrent mycobacterial infections” (HP:0002721), “Bacille Calmette–Guérin infection” (HP:0005381), “Disseminated Bacille Calmette–Guérin infection” (HP:0005385), “Recurrent bacterial infections” (HP:0002715), and “Recurrent salmonella infections” (HP:0031644). These infection-related phenotypes are generally severe and progressive in complete IFN-γR2 deficiency, appearing in infancy or early childhood, while in partial deficiency they may be moderately severe or episodic, with onset in later childhood or adolescence.[11][13][15][18]
Age of symptom onset is consistently reported as neonatal or early childhood for complete IFNGR2 deficiency. Orphanet states that “severe and often fatal BCG and environmental mycobacteria infections begin in early childhood (before the age of 3)” in complete IFN-γR2 deficiency.[15] The first reported IFNGR2-deficient patient presented with persistent cough and subsequently developed lymphadenopathy, hepatosplenomegaly, and fevers in childhood.[14][18] In the Frontiers in Immunology case series, two surviving siblings with a novel splice site mutation presented in infancy with recurrent infections and had a history of two other siblings who died shortly after BCG vaccination.[14] These observations support mapping IMD28 onset under HPO term “Onset in early childhood” (HP:0003623), with some cases meeting “Infantile onset” (HP:0003593) or “Neonatal onset” (HP:0003623) depending on timing of vaccination and exposure.
Symptom severity is typically severe in complete deficiency, with high risk of disseminated disease and death. Orphanet notes that prognosis is poor, with “most patients not living past 10 years of age” without HSCT.[15] MSMD reviews emphasize that complete IFN-γR1 and IFN-γR2 deficiencies “are always lethal before the third decade of life in the absence of hematopoietic stem cell transplantation.”[11][20] Partial deficiencies exhibit a broader severity spectrum: recessive hypomorphic mutations can cause moderately severe recurrent infections that are often localized and potentially curable, whereas dominant haploinsufficient forms may have very low penetrance and present with single episodes of BCG disease or NTM osteomyelitis.[11][13][17][18]
Symptom progression in complete IFNGR2 deficiency tends to be progressive and relentless in the absence of adequate therapy. Initial local or regional disease frequently evolves into disseminated multi-organ involvement, with episodes of apparent control followed by relapse, reflecting partial suppression by antimycobacterial drugs but fundamental inability to sterilize infection.[14][15][19] In some partial deficiencies, progression may be more episodic, with recurrent flares of disease triggered by new exposures and intervals of remission. Overall disease course can be classified as chronic lifelong, requiring ongoing vigilance, even though individual infection episodes may be brought under control.
Beyond infections, IMD28 patients often display clinical signs related to granulomatous inflammation and organ involvement. Hepatomegaly, splenomegaly, generalized lymphadenopathy, bone pain and deformities due to osteomyelitis, and pulmonary infiltrates are commonly described.[14][15][18][20] These features correspond to HPO terms such as “Hepatosplenomegaly” (HP:0001433), “Lymphadenopathy” (HP:0002716), “Osteomyelitis” (HP:0002754), and “Abnormal chest radiograph” (HP:0001897). The granulomatous lesions in IFNGR2 deficiency may differ from those in intact IFN-γ immunity, particularly in complete deficiency, where patients fail to form well-circumscribed granulomas and instead show poorly organized, necrotic inflammatory lesions.[10][11][20]
A distinctive laboratory abnormality in IFN-γ receptor deficiencies, including IFNGR2, is markedly elevated plasma IFN-γ levels coupled with absent cellular responsiveness. MalaCards notes that IMD28 is “associated with high plasma IFNG levels and absence of cellular response to IFNG.”[2] MSMD reviews corroborate that patients with complete IFN-γR1 or IFN-γR2 deficiency exhibit high circulating IFN-γ concentrations, reflecting unchecked production by T cells and NK cells in response to persistent antigenic stimulation and lack of negative feedback mediated by receptor signaling.[11][13][20] Functionally, leukocytes and fibroblasts from complete IFN-γR2 deficient patients do not respond to IFN-γ in vitro, as measured by STAT1 phosphorylation and target gene induction.[10][15][20] These findings can be mapped to HPO terms such as “Elevated circulating interferon-gamma level” (HP:0012430) and “Abnormal response to interferon-gamma” (HP:0032150).
Routine hematology may be relatively unremarkable, aside from anemia of chronic disease or leukocytosis during infection. Immunoglobulin levels are frequently normal, and responses to non-live vaccines can be preserved, underscoring the specificity of the defect.[11][13][20] Thus, IMD28 presents a paradoxical profile: severe infections with particular pathogens despite apparently normal general immune parameters. This phenotype challenges diagnostic heuristics based solely on standard immunologic screening.
The quality of life impact of Immunodeficiency 28 is profound, particularly in complete deficiency. Children with disseminated BCG or NTM disease experience chronic fevers, malaise, pain from bone and joint involvement, respiratory distress from pulmonary infiltrates, and functional limitations due to organomegaly and skeletal lesions.[14][15][19] Frequent hospitalizations, prolonged courses of multidrug antimycobacterial therapy, invasive diagnostics, and the psychosocial burden of a life-threatening condition in early childhood all impair daily functioning and psychosocial well-being. Parents and caregivers face immense stress, particularly in families with multiple affected children due to consanguinity and autosomal recessive inheritance.
While formal quality-of-life studies using instruments such as EQ-5D or SF-36 have not been reported specifically for IMD28, extrapolation from other severe pediatric primary immunodeficiencies suggests major deficits across physical, emotional, and social domains. HSCT, when successful, can dramatically improve survival and long-term health, but entails its own acute morbidity, including graft-versus-host disease, infections, and prolonged immunosuppression.[12][19] Life course trajectories for survivors of partial IFNGR2 deficiency are somewhat better, with possible return to near-normal functioning, yet the risk of recurrent infections and need for lifelong medical surveillance remain.
Based on the clinical profile described above, key HPO terms for Immunodeficiency 28 include: “Recurrent mycobacterial infections” (HP:0002721), “Bacille Calmette–Guérin infection” (HP:0005381), “Disseminated Bacille Calmette–Guérin infection” (HP:0005385), “Recurrent bacterial infections” (HP:0002715), “Recurrent salmonella infections” (HP:0031644), “Hepatosplenomegaly” (HP:0001433), “Lymphadenopathy” (HP:0002716), “Osteomyelitis” (HP:0002754), “Elevated circulating interferon-gamma level” (HP:0012430), “Abnormal response to interferon-gamma” (HP:0032150), “Infantile onset” (HP:0003593), and “Early childhood onset” (HP:0003623). These terms can be annotated with qualitative frequencies: core infection phenotypes occurring in the majority of complete deficiency cases, while some manifestations such as multifocal osteomyelitis or severe salmonellosis may be present in a subset.[11][13][15][18][20]
The causal gene for Immunodeficiency 28 is IFNGR2 (interferon-gamma receptor 2), located on chromosome 21q22.11 and designated OMIM number 147569.[1][6][8][18] IFNGR2 encodes the β or signal-transducing chain of the heterodimeric IFN-γ receptor, which associates with the α chain IFNGR1 to form the functional receptor complex at the surface of responsive cells.[16][18] Upon IFN-γ binding to IFNGR1, IFNGR2 is recruited to the ligand-bound complex, enabling the juxtaposition of intracellular Janus kinases JAK1 and JAK2 and subsequent phosphorylation of STAT1 on tyrosine 701, a critical step in the transcriptional activation of IFN-γ–responsive genes.[11][16][18][20]
The IFNGR2 protein comprises an extracellular fibronectin type 3 (FN3) domain responsible for co-receptor interactions, a single transmembrane segment, and a cytoplasmic tail containing motifs necessary for JAK2 binding and downstream signaling.[16][18] Genetic defects in IFNGR2 can therefore affect receptor structure and function at multiple levels: extracellular domain mutations may impair ligand-induced assembly or stability; transmembrane or trafficking mutations may prevent cell surface expression; and cytoplasmic tail mutations may abrogate JAK2 recruitment or STAT1 activation.[11][16][18][20] In IMD28, characterized by IFNGR2 deficiency, these mechanistic disruptions result in either complete loss or marked reduction of IFN-γ signaling in immune cells.
The repertoire of pathogenic IFNGR2 variants underlying Immunodeficiency 28 includes missense mutations, nonsense mutations, splice site variants, small insertions/deletions, and, in some cases, larger structural alterations. The OMIM entry for IFNGR2 catalogues specific disease-associated alleles, including the T168N missense mutation and the extracellular domain mutation originally described by Dorman and Holland.[18][20] Vogt et al. identified three children with MSMD who were homozygous for a 503C→A transversion leading to the T168N substitution; this mutation creates a new N-glycosylation site in the FN3 domain, resulting in a neoglycan whose steric bulk prevents IFNGR2 from docking to the high-affinity IFN-γ–IFNGR1 intermediate complex.[16][18] Structural studies by Mendoza and colleagues, who determined the crystal structure of the IFN-γ–IFNGR1–IFNGR2 signaling complex, confirmed that T168 lies precisely at the interface required for IFNGR2 recruitment, and that glycosylation at this site sterically blocks assembly of the full hexameric signaling complex.[16][18]
The Frontiers in Immunology report by Desai et al. describes a novel splice acceptor site variant c.207-1G>A in intron 2 of IFNGR2, identified in two affected siblings with recurrent infections and a family history of BCG-related deaths.[14] This mutation leads to deletion of three amino acids (Thr70–Ser72) in the FN3 domain of IFNGR2, located in the extracellular region within Tissue_fac and FN3 domains important for receptor function.[14] Functional characterization suggested that this deletion destabilizes receptor expression or impairs ligand-induced signaling, contributing to partial or complete deficiency. The authors note that more than 27 patients had been reported with IFNGR2-related MSMD by that time, encompassing diverse etiologies such as abolished or maintained expression of IFNGR2, complete or partial deficiency with or without cell surface expression, expression of non-functional IFNGR2 on the cell surface, and creation of new glycosylation sites that cause misfolding or steric hindrance.[14]
Human Molecular Genetics and JCI reviews of MSMD further classify IFNGR2 defects according to inheritance (AR or AD), degree of deficiency (complete or partial), and presence or absence of receptor expression. One table lists IFNGR2 variants as AR complete with extracellular expression positive (E+) or negative (E−), AR partial with expression of mutant or wild-type protein, and AD partial with preserved surface expression.[11][13][17][20] Complete AR IFNGR2 deficiency encompasses both “non-expressive” forms, where receptor is absent from the cell surface due to trafficking or folding defects, and “expressive” forms, where receptor is present but non-functional due to altered glycosylation or signaling motifs.[11][13][18][20] Partial AR forms generally involve hypomorphic mutations that reduce but do not abolish receptor expression or function, whereas AD forms act via haploinsufficiency and often show low penetrance.[11][17][18]
Functionally, most disease-causing IFNGR2 mutations are loss-of-function, resulting in absent or severely impaired IFN-γ signaling. The T168N neoglycosylation mutation is a gain-of-glycosylation variant, but its net effect is a loss of signaling due to steric blocking of receptor recruitment.[16][18] Splice site and truncating mutations usually produce non-functional proteins or lead to nonsense-mediated decay. There is no evidence for dominant-negative IFNGR2 mutations analogous to the truncated tail variants seen in AD IFNGR1 deficiency; instead, AD IFNGR2 deficiency operates by reduced gene dosage and haploinsufficiency.[11][17][18] Thus, in ACMG/AMP terms, pathogenic IFNGR2 variants in IMD28 are overwhelmingly classified as pathogenic or likely pathogenic loss-of-function alleles, with rare hypomorphic variants classified as pathogenic partial loss-of-function. ClinVar submissions and gnomAD frequencies help distinguish pathogenic from benign variants, as in the case of c.879+32dup (rs143248516), which is benign and relatively more frequent.[5]
Due to the extreme rarity of Immunodeficiency 28, most pathogenic IFNGR2 variants are absent or occur at extremely low frequencies in population databases such as gnomAD, 1000 Genomes, and ExAC. Many reported mutations arise in consanguineous families, implying local founder effects, but the small number of cases precludes robust carrier frequency estimation.[14][15][18][20] Orphanet estimates prevalence of complete IFN-γR2 deficiency as less than 1 per 1,000,000, and notes that “only ten children have been identified to date,” suggesting that even carriers are scarce in the general population or remain undiagnosed.[15]
All disease-causing IFNGR2 variants in IMD28 are germline; there is no evidence for somatic IFNGR2 mutations causing acquired immunodeficiency in humans. Somatic mutations in IFN-γ signaling components can occur in cancers and may influence tumor immune evasion, but those are distinct from the inherited immunodeficiency described here and are catalogued in oncology datasets rather than MSMD literature. The condition is thus a purely germline, congenital disorder, and genetic counseling focuses on autosomal recessive and, in some partial forms, autosomal dominant inheritance.
Specific modifier genes that alter the severity or expression of IFNGR2 deficiency have not been systematically identified. Nonetheless, the broader MSMD field has revealed that defects in IL-12, STAT1, and other IFN-γ pathway components can independently cause mycobacterial disease, indicating that the interplay of multiple pathways may modulate phenotype.[11][13][20] Patients with combined defects (for example, IFNGR2 mutation plus another immunologic lesion) would be expected to have particularly severe disease, although such compound cases have not yet been reported.
Epigenetic alterations in IFNGR2 or in IFN-γ pathway genes have not been implicated in IMD28. Regulation of IFNGR2 expression and chromatin state under inflammatory conditions is an active area of basic immunology research, but no disease-causing epigenetic lesions have been described. Given the monogenic nature and early onset of the condition, genetic defects are sufficient to explain the phenotype without invoking epigenetic dysregulation.
No large-scale chromosomal abnormalities such as aneuploidies, translocations, or inversions have been associated specifically with Immunodeficiency 28. The IFNGR2 locus resides within the distal long arm of chromosome 21, but its position is distinct from regions implicated in Down syndrome phenotypes. There is no evidence that trisomy 21 per se alters IFNGR2 function in a way that mimics IMD28. Likewise, no recurrent microdeletions or microduplications encompassing IFNGR2 have been described as causes of MSMD. Instead, disease arises from point mutations and small insertions/deletions within the gene.
Non-infectious environmental factors such as chemical toxins, radiation, and occupational exposures have not been implicated in the etiology of Immunodeficiency 28. The disease is fundamentally driven by inborn defects in IFNGR2, and environmental modifiers act primarily through infectious exposure rather than through direct toxicity to immune cells. There is no evidence that pollutants or radiation cause de novo IFNGR2 mutations at rates sufficient to influence disease burden; instead, the genetic lesions arise in germ cells and are transmitted hereditarily.
Lifestyle factors such as smoking, diet, exercise, and alcohol consumption have not been specifically studied in IMD28. Given the usually pediatric onset of the disease, adult lifestyle habits are largely irrelevant to initial manifestation, though they may affect infection outcomes in partial deficiency cases that persist into adulthood. Good nutritional status and absence of co-morbidities may improve resilience to infection and tolerance of antimycobacterial drugs, but these are generic considerations for infectious diseases. No specific dietary or lifestyle regimen has been demonstrated to prevent mycobacterial disease in IFNGR2-deficient patients.
In contrast, infectious agents are central environmental contributors. The primary pathogens involved in IMD28 are mycobacteria and, to a lesser extent, Salmonella species. OMIM and MalaCards note that the most commonly encountered mycobacterial pathogens include Mycobacterium bovis BCG, M. avium, and M. fortuitum.[1][2][9][18] Mendelian.co adds M. abscessus to this list and emphasizes infections by “other environmental mycobacteria (EM).”[9] The MSMD literature documents additional species such as M. chelonae, which caused fatal infection in one patient with partial AR IFNGR2 deficiency.[13] Orphanet summarizes that complete IFN-γR2 deficiency leads to severe infection with BCG and environmental mycobacteria, while partial deficiency can predispose to moderately severe, recurrent infections with BCG and EM.[9][15]
Salmonella infections, both typhoidal and non-typhoidal, reflect the shared role of IFN-γ in defense against intracellular Gram-negative bacteria. Immunodeficiencysearch.com notes that IFN-γ receptor deficiencies are associated with “severe salmonella infections,” and MSMD reviews corroborate increased susceptibility to Salmonella species.[10][11][20] In practice, this translates into severe sepsis, focal osteomyelitis, or recurrent bacteremia following relatively minor exposures. Other pathogens, such as Histoplasma and certain viruses, have occasionally been reported in IFN-γ pathway defects, but in IFNGR2 deficiency, mycobacteria and Salmonella remain the defining infectious agents.[10][11][20]
In NCBI Taxonomy terms, the relevant species include Mycobacterium bovis (taxon ID 1765), Mycobacterium avium (1764), Mycobacterium fortuitum (1766), Mycobacterium abscessus (36809), Mycobacterium chelonae (1767), and Salmonella enterica subspecies (taxon ID 28901). These pathogens are widespread in the environment or in vaccine preparations, making exposure nearly inevitable in many settings.
The pathophysiology of Immunodeficiency 28 can be conceptualized as a series of causal steps linking the initiating lesion—germline IFNGR2 mutation—to the clinical phenotype of disseminated mycobacterial disease. In narrative form, these steps unfold as follows.
Step 1: Bi-allelic or mono-allelic pathogenic variants in IFNGR2 alter the structure, expression, glycosylation, or trafficking of the interferon-gamma receptor 2 chain in hematopoietic cells, leading to absent or reduced functional receptor at the cell surface.[1][14][16][18]
Step 2: This receptor defect leads to failure of IFN-γR2 recruitment to the IFN-γ–IFNGR1 complex upon ligand binding, or to failure of the assembled receptor to activate JAK2 and STAT1, resulting in markedly diminished or absent IFN-γ–induced STAT1 phosphorylation and gene transcription in macrophages, monocytes, dendritic cells, and T cells.[10][11][16][18][20]
Step 3: The impaired IFN-γ signaling leads to defective macrophage activation, including reduced induction of antimicrobial effector pathways such as production of nitric oxide, reactive oxygen species, induction of autophagy, and upregulation of key host defense genes, thereby severely compromising intracellular killing of mycobacteria and Salmonella.[10][11][13][20]
Step 4: In the context of exposure to BCG vaccine strains or environmental mycobacteria, this impaired macrophage effector response leads to uncontrolled replication of mycobacteria within phagosomes and failure to contain infection within well-structured granulomas, resulting in disseminated infection and widespread tissue damage.[10][11][15][20]
Step 5: Persistent antigenic stimulation due to uncontrolled infection drives excessive and prolonged IFN-γ production by T helper 1 (Th1) cells and natural killer (NK) cells, but because IFN-γ signaling is blocked at the receptor level, this cytokine cannot exert negative feedback or protective effects, resulting in high plasma IFN-γ levels without corresponding functional benefits.[2][11][13][15][20]
Step 6: The combination of uncontrolled infection and dysregulated inflammatory cytokine milieu leads to granulomatous and necrotizing lesions in multiple organs, including lymph nodes, liver, spleen, bones, and lungs, manifesting clinically as lymphadenopathy, hepatosplenomegaly, osteomyelitis, pulmonary infiltrates, and systemic inflammatory symptoms.[14][15][18][20]
Step 7: Over time, repeated infection episodes, chronic inflammation, and tissue destruction, combined with potential drug toxicity from prolonged antimycobacterial regimens, result in progressive organ dysfunction, failure to thrive, and increased mortality, unless IFN-γ–independent immunity can partially compensate or hematopoietic stem cell transplantation restores functional IFNGR2 expression.[11][12][15][19][20]
These steps are strongly supported by human genetic and immunologic data, with most aspects directly demonstrated by functional studies in patient-derived cells and recombinant proteins.[11][13][14][16][18][20] Where mechanistic links involving downstream metabolic changes or specific pathways such as autophagy are less directly measured in IFNGR2-deficient humans, they are inferred from broader IFN-γ biology and model systems.
At the molecular level, Immunodeficiency 28 is an archetypal disease of the IL-12/IFN-γ/STAT1 axis. In normal immunity, macrophages infected with mycobacteria produce interleukin-12 (IL-12), which stimulates Th1 T cells and NK cells to produce IFN-γ.[10][11][20] IFN-γ then binds to the IFN-γ receptor composed of IFNGR1 and IFNGR2 on macrophages, triggering the JAK1/JAK2–STAT1 signaling cascade that activates transcription of IFN-γ–responsive genes involved in antimicrobial defense.[10][11][16][20] This pathway can be described by Gene Ontology (GO) terms such as “response to interferon-gamma” (GO:0034341), “interferon-gamma-mediated signaling pathway” (GO:0060333), and “positive regulation of macrophage activation” (GO:0010758).
In IFNGR2 deficiency, the proximal defect resides at the level of receptor assembly and signaling. Structural studies of the IFN-γ receptor complex have shown that IFN-γ first engages IFNGR1 to form a 2:2 IFN-γ–IFNGR1 intermediate complex, which then recruits two IFNGR2 chains to assemble a 2:2:2 hexameric signaling complex.[16][18] The T168N mutation in IFNGR2, for example, places a neoglycan directly at the site 3 interface required for IFNGR2 docking, sterically preventing recruitment of IFNGR2(T168N) to the intermediate complex.[16][18] As a result, JAK2 associated with IFNGR2 cannot be brought into proximity with JAK1 bound to IFNGR1, blocking trans-phosphorylation and downstream STAT1 activation.
The central downstream effector is STAT1, a transcription factor that translocates to the nucleus upon tyrosine 701 phosphorylation and binds gamma-activated sequence (GAS) elements to induce genes such as IRF1, CXCL9/10, inducible nitric oxide synthase (NOS2), and many others involved in host defense.[11][13][20] In IFNGR2-deficient cells, IFN-γ fails to induce STAT1 phosphorylation, although other cytokines such as type I interferons may still engage STAT1 through distinct receptors. This selective blockade explains why patients retain resistance to many viral infections while being profoundly susceptible to mycobacteria and Salmonella, pathogens particularly reliant on IFN-γ–driven macrophage microbicidal mechanisms.
At the cellular level, IFNGR2 deficiency impairs several critical processes. Macrophage activation, as noted, is defective. IFN-γ normally enhances phagosome–lysosome fusion, phagolysosomal acidification, induction of antimicrobial peptides, and autophagy, all of which contribute to killing of intracellular mycobacteria.[11][13][20] Without functional IFN-γ signaling, macrophages exhibit diminished microbicidal capacity, allowing mycobacteria to persist and replicate within phagosomes. GO terms such as “macrophage activation” (GO:0042116), “phagocytosis” (GO:0006911), and “autophagy” (GO:0006914) capture these affected processes.
Granuloma formation is also altered. In intact IFN-γ immunity, granulomas are organized structures composed of activated macrophages, multinucleated giant cells, T cells, and fibroblasts that wall off mycobacterial infection and limit dissemination. In IFN-γ receptor deficiencies, including IFNGR2, granulomas may be absent, poorly organized, or necrotic, reflecting a failure of macrophages to differentiate into the activated phenotype required for effective containment.[10][11][20] Clinically, patients with AR complete IFN-γ receptor deficiency often “fail to form well-circumscribed mycobacterial granulomas” and suffer disseminated infection following BCG administration.[10] The CL (Cell Ontology) terms relevant here include “macrophage” (CL:0000235), “monocyte” (CL:0000576), “T helper cell” (CL:0000912), and “natural killer cell” (CL:0000623).
Inflammation is paradoxically both impaired and excessive. On one hand, the failure of IFN-γ–mediated macrophage activation results in insufficient production of certain inflammatory mediators and reduced killing of pathogens. On the other hand, persistent infection drives chronic production of IFN-γ and other cytokines such as TNF-α, IL-6, and IL-1β, leading to systemic inflammation, fever, and tissue damage. The high plasma IFN-γ levels seen in IFNGR2 deficiency exemplify this dysregulated inflammatory environment.[2][11][15][20]
At the protein level, IFNGR2 mutations in IMD28 alter the receptor in several ways. Missense mutations like T168N introduce new glycosylation motifs, leading to the attachment of N-linked glycans at inappropriate positions. Mendoza et al. demonstrated that the IFNGR2(T168N) extracellular domain is glycosylated at the T168N position with almost quantitative occupancy, and that this neoglycan prevents IFNGR2 from being recruited to the signaling complex after IFN-γ addition.[16][18] This is a prototypical example of how a gain of glycosylation at a critical interface can produce a loss-of-function phenotype.
Splice site mutations, such as c.207-1G>A, cause in-frame deletions of key residues in the FN3 domain, potentially affecting folding stability and surface expression.[14] Other mutations may result in misfolded proteins that are retained in the endoplasmic reticulum or targeted for degradation, lowering cell surface receptor density. In some complete deficiencies, the extracellular domain mutations abolish cell surface expression entirely, as observed in early cases, leading to a “non-expressive” phenotype where IFNGR2 protein is absent from the membrane despite intact IFNGR1.[18][20]
Loss-of-function is the dominant functional consequence. IFN-γ cannot properly signal through defective IFNGR2, regardless of whether the receptor is absent or nonfunctional. This disrupts downstream JAK2–STAT1 activation and gene induction, as evidenced by functional assays in patient fibroblasts, EBV-transformed B cells, and primary macrophages.[13][14][20] There are no known gain-of-function IFNGR2 mutations that cause hyper-responsiveness to IFN-γ; the clinical phenotypes of MSMD are exclusively associated with reduced IFN-γ signaling.
Metabolic changes in IFNGR2 deficiency are not comprehensively characterized in human studies, but IFN-γ is known to reprogram macrophage metabolism toward a more glycolytic and oxidative state conducive to antimicrobial activity. Loss of IFN-γ signaling may maintain macrophages in a less activated metabolic state, impairing their ability to generate reactive nitrogen and oxygen intermediates necessary for mycobacterial killing. These changes can be conceptualized under GO terms such as “cellular response to cytokine stimulus” (GO:0071345) and “regulation of reactive oxygen species metabolic process” (GO:2000377).
The immune system involvement in IMD28 is highly specific. Innate immune cells such as macrophages and dendritic cells are directly affected by IFNGR2 defects, as they rely heavily on IFN-γ for activation. Adaptive immune cells, particularly Th1 cells and NK cells, produce IFN-γ but cannot achieve effective effector functions through macrophage activation. Interestingly, T cells themselves may require IFN-γ signaling for optimal differentiation and memory, but the primary clinical impact of IFNGR2 deficiency is in macrophage-mediated containment of mycobacteria.[11][13][20] Other arms of immunity, including humoral responses, cytotoxic T lymphocyte function against viruses, and complement activity, appear relatively intact.
Tissue damage in IFNGR2 deficiency arises from a combination of unchecked pathogen replication and chronic granulomatous inflammation. Mycobacteria proliferate within macrophages and disseminate via the bloodstream and lymphatics, seeding multiple organs. The host response consists of inflammatory infiltrates with macrophages, T cells, and necrosis, but the inability to organize effective granulomas leads to diffuse tissue destruction.[14][15][20] In bone, this manifests as osteomyelitis and structural deformities; in the liver and spleen, as hepatosplenomegaly and impaired function; in the lungs, as cavitary lesions and fibrosis. Mechanisms such as oxidative stress, chronic TNF-α production, and matrix metalloproteinase activity likely contribute, though these have not been specifically measured in IFNGR2-deficient tissues.
Biochemically, the signature abnormality is receptor dysfunction of the IFN-γ pathway. This can be categorized within OMIM and GO as “interferon-gamma receptor deficiency” and “abnormal STAT1 phosphorylation in response to interferon-gamma.”[10][11][15][20] Enzymatic pathways themselves are not directly defective; rather, their upstream regulatory signals are absent. The IL-12 pathway upstream of IFN-γ production generally remains intact, leading to normal or elevated IL-12 levels and IFN-γ production, making the IFNGR2 lesion a pure signaling defect.
Comprehensive molecular profiling such as transcriptomics, proteomics, and metabolomics has not yet been widely applied in cohorts of IFNGR2-deficient patients, primarily due to the rarity of the disease. However, studies of MSMD have used gene expression analyses in patient cells to document impaired induction of IFN-γ–responsive genes and preserved responses to other cytokines.[11][13][20] For example, overexpression systems and primary cell cultures have shown that IFNGR2 mutant proteins are produced in small amounts with impaired function, as demonstrated by diminished IFN-γ–induced expression of target genes in EBV-transformed B cells and fibroblasts.[13][14][20] These data align with the expected transcriptomic signature of IFN-γ receptor loss-of-function, featuring blunted upregulation of IFN-γ signature genes.
Single-cell analyses, spatial transcriptomics, and multi-omics integration have not yet been reported specifically for IMD28, though they represent promising tools for future research. CRISPR-based functional genomics screens have identified IFN-γ pathway components as critical for mycobacterial control in model systems, but IFNGR2 itself was already known as a causal gene from human genetics and has not been the target of discovery screens. As such technologies become more accessible, they may elucidate cell-type specific mechanisms and compensatory pathways in IFNGR2 deficiency.
Immunodeficiency 28 affects multiple organ systems, primarily through disseminated mycobacterial infection and associated granulomatous inflammation. The lymphatic system is prominently involved, with generalized lymphadenopathy reflecting widespread infection in lymph nodes. The liver and spleen are often enlarged and infiltrated by granulomas, leading to hepatosplenomegaly and potential compromise of hepatic and splenic functions.[14][15][18][20] Bones and joints are commonly affected, with multifocal osteomyelitis and arthritis due to mycobacterial seeding, particularly in partial IFN-γ receptor deficiencies where multifocal NTM osteomyelitis is a hallmark.[10][11][20] The lungs are frequently involved, showing nodular or cavitary lesions on imaging and histopathologic evidence of granulomatous inflammation.
In Uberon terms, key organs include “lymph node” (UBERON:0000029), “spleen” (UBERON:0002106), “liver” (UBERON:0002107), “bone” (UBERON:0001474), and “lung” (UBERON:0002048). Secondary organ involvement may include skin (local BCG site, cutaneous lesions), gastrointestinal tract, and central nervous system in cases of disseminated infection. The immune system as a whole (UBERON:0002405) is engaged but functionally compromised in a specific pathway.
At the tissue level, IFNGR2 deficiency primarily affects hematopoietic tissues and mononuclear phagocyte populations. Macrophages resident in various tissues (liver Kupffer cells, alveolar macrophages, splenic macrophages) are key target cells, as they require IFN-γ signaling to become fully activated and microbicidal.[10][11][20] Monocytes circulating in blood and infiltrating infected tissues are likewise affected. Dendritic cells also express IFN-γ receptors and may have impaired maturation and antigen presentation in IFNGR2 deficiency, though clinical data on this are limited.
Cell Ontology terms relevant to IMD28 include “macrophage” (CL:0000235), “monocyte” (CL:0000576), “dendritic cell” (CL:0000451), “T helper 1 cell” (CL:0000913), and “natural killer cell” (CL:0000623). While Th1 cells and NK cells produce IFN-γ in response to infection, their own ability to respond to IFN-γ via IFNGR2 may also be compromised, potentially affecting cell-intrinsic functions such as survival and memory formation. Nevertheless, the clinical phenotype is dominated by macrophage failure to control intracellular pathogens.
Non-hematopoietic tissues such as fibroblasts can also express IFN-γ receptors and have been used in functional assays, but their dysfunction plays a lesser clinical role. Endothelial cells, epithelial cells, and other tissue-resident cell types may exhibit altered response to IFN-γ, potentially influencing local inflammation and barrier functions, but data in IFNGR2 deficiency are sparse.
At the subcellular level, IFNGR2 is a plasma membrane protein localized to the cell surface, where it participates in receptor complexes. GO cellular component terms include “plasma membrane” (GO:0005886) and “integral component of plasma membrane” (GO:0005887). Pathogenic variants can affect localization by preventing proper trafficking from the endoplasmic reticulum and Golgi to the cell surface, leading to retention in the ER (GO:0005783) or aberrant degradation. The IFN-γ receptor complex, once formed, transduces signals to the cytoplasm and nucleus, engaging “cytoplasm” (GO:0005737) and “nucleus” (GO:0005634) through JAK–STAT signaling.
Other subcellular compartments affected indirectly include phagosomes and lysosomes, where mycobacteria reside and are normally killed following IFN-γ–induced maturation and acidification. In IFNGR2 deficiency, phagosome–lysosome fusion and acidification are likely impaired, though specific GO component terms such as “phagolysosome” (GO:0045335) and “lysosome” (GO:0005764) have not been directly profiled in patient cells.
Clinically, IMD28 is a systemic disease without specific lateralization. Organ involvement is typically bilateral and symmetric, such as bilateral pulmonary infiltrates or generalized lymphadenopathy. Local manifestations, such as BCG injection site ulcers, are initially localized but often spread regionally and systemically. There is no evidence for preferential right- or left-sided involvement or particular neuroanatomical localization. Thus, lateralization descriptors are generally not applicable.
The onset of Immunodeficiency 28 is usually congenital or early pediatric, with clinical manifestations appearing following environmental exposure to mycobacteria. In many countries, BCG vaccination is administered in the neonatal period, often within the first days of life. In infants with complete IFNGR2 deficiency, local BCG-related symptoms may emerge within weeks to months, followed by regional lymphadenitis and systemic dissemination within the first two to three years.[9][10][14][15] Orphanet emphasizes that severe infections begin “before the age of 3” in complete deficiency, while MSMD reviews note that complete IFN-γ receptor defects are “Mendelian in childhood and always lethal before the third decade of life” without HSCT.[11][15][20]
The onset pattern is typically subacute to chronic, rather than acute fulminant. Initial localized infection may be misinterpreted as typical vaccine reaction, delaying recognition of underlying immunodeficiency. As disease progresses, subacute systemic symptoms emerge, including fevers, weight loss, and progressive organ enlargement, reflecting chronic infection and granulomatous inflammation. In partial IFNGR2 deficiency, onset may be later, in school-age children or adolescents, often triggered by BCG vaccination or environmental NTM exposure, and may be more episodic.
Progression of IMD28 can be conceptualized in stages. An early stage involves localized infection (BCG site, regional lymph nodes), with symptoms such as ulceration, lymphadenitis, and mild systemic signs. An intermediate stage involves dissemination to organs such as liver, spleen, bone, and lung, leading to hepatosplenomegaly, osteomyelitis, and pulmonary lesions. An advanced stage involves widespread organ involvement, severe systemic inflammation, possible sepsis, and organ failure, culminating in death if not effectively treated or if HSCT is unavailable.[14][15][19][20] The rate of progression is rapid to moderate in complete deficiency, often unfolding over months to a few years, whereas in partial deficiency progression may be slower and occasionally limited to specific sites.
The disease course pattern is generally chronic and progressive, punctuated by episodic exacerbations corresponding to infectious flares. Remission may occur transiently with aggressive antimycobacterial therapy, but relapse is common because underlying immunity remains defective. In partial deficiency, periods of remission may be longer, and infections may be fully cured with appropriate therapy, consistent with “curable infections with tuberculoid granulomas later in life” described for some partial IFNGR2 deficiency cases.[2][11][13]
Remission patterns in IMD28 are primarily treatment-induced rather than spontaneous. Prolonged courses of multidrug antimycobacterial therapy can suppress pathogen burden and ameliorate symptoms, resulting in clinical improvement. However, cessation of therapy may lead to relapse, particularly if mycobacteria persist in protected niches. HSCT, when successful, can induce long-term remission or cure by reconstituting donor-derived hematopoietic cells with functional IFNGR2, thereby restoring IFN-γ signaling and enabling effective control of mycobacteria.[12][19]
Critical periods for intervention include the neonatal and early childhood windows when BCG vaccination and environmental exposure first reveal the defect. Avoidance of BCG in infants from high-risk families and early genetic testing in siblings of known cases can prevent fatal vaccine-related disease. Preemptive HSCT may be considered in complete deficiency before irreversible organ damage occurs. Likewise, early initiation of antimycobacterial therapy at the first sign of BCG or NTM disease can limit dissemination and improve outcomes.
Immunodeficiency 28 is an ultra-rare disease. Orphanet estimates prevalence of MSMD due to complete IFN-γR2 deficiency as less than 1 per 1,000,000, and notes that “only ten children have been identified to date.”[15] This figure refers specifically to complete deficiency; partial IFNGR2 deficiencies add additional cases but remain rare. Given global population size, this translates into an incidence far below 1 per 100,000 live births per year, likely in the range of one or a few cases worldwide annually.
Because no population-based registries exist for IMD28, precise incidence and prevalence estimates are difficult. Many cases likely go undiagnosed or misdiagnosed, especially in settings with limited access to specialized immunologic and genetic testing. Nonetheless, the rarity of reported cases, coupled with the highly penetrant nature of complete deficiency and the severity of the phenotype, support the classification of IMD28 as an ultra-rare primary immunodeficiency.
Complete IFNGR2 deficiency, corresponding to Immunodeficiency 28 as defined by OMIM and Orphanet, is inherited in an autosomal recessive manner.[1][9][15][18] Affected individuals are homozygous or compound heterozygous for pathogenic loss-of-function IFNGR2 variants, while parents are typically asymptomatic heterozygous carriers. Genetic counseling in affected families emphasizes a 25% recurrence risk for each pregnancy and the importance of carrier testing in relatives.[15] Consanguinity is common among reported families, facilitating homozygosity for rare mutations.[14][15][18][20]
Penetrance of complete IFNGR2 deficiency for severe mycobacterial disease appears to be near-complete. MSMD reviews state that complete IFN-γR1 and IFN-γR2 deficiencies are always lethal in childhood without HSCT, implying that almost all individuals with bi-allelic null mutations manifest disease.[11][20] Partial IFNGR2 deficiency, by contrast, exhibits variable penetrance. Autosomal recessive hypomorphic mutations may cause disease in homozygotes but not necessarily in heterozygotes; autosomal dominant partial deficiency due to haploinsufficiency has low penetrance, with many heterozygous carriers remaining clinically unaffected.[11][13][17][18]
Expressivity is also variable, particularly in partial deficiency. Some patients experience localized or limited disease, such as multifocal NTM osteomyelitis, while others develop disseminated infection. Age of onset, severity, and organ distribution differ among individuals with the same mutation, reflecting interaction with environmental exposures and polygenic background. In complete deficiency, expressivity is more consistently severe and early-onset, though specific organ manifestations may still vary.
Genetic anticipation, involving progressive increase in severity across generations, is not relevant to IMD28, as the disease is caused by stable, non-repeat expansion mutations. Germline mosaicism has not been reported, though in principle parents with mosaic pathogenic alleles could exist. Founder effects may occur in consanguineous communities where a particular IFNGR2 mutation is transmitted within extended families, as suggested by clusters of cases from certain regions, but detailed population genetic studies are lacking.[14][18]
Carrier frequency for IFNGR2 pathogenic alleles in the general population remains unknown. Given the rarity of reported cases, carrier frequency is likely extremely low globally, though may be higher in isolated populations with high consanguinity. gnomAD and similar databases document rare IFNGR2 variants, but most are benign or of uncertain significance; pathogenic alleles are too rare to provide meaningful carrier frequency estimates.
The demographic profile of IMD28 patients reflects both genetic and environmental factors. Many reported cases originate from regions with high rates of consanguineous marriage and universal BCG vaccination, including Iran, Saudi Arabia, Turkey, India, and Lebanon.[14][17][18][20] For instance, Vogt et al.’s T168N cohort included children from Iran and Saudi Arabia, all from consanguineous parents.[18] Desai et al.’s splice site mutation family was from India, with consanguineous parents and multiple affected siblings.[14] Casanova’s MSMD cohort includes multiple Middle Eastern families with IFNGR2 defects.[11][13][20]
These geographic and cultural contexts create a convergence of risk factors: autosomal recessive inheritance facilitated by consanguinity, high exposure to BCG vaccine early in life, and environmental mycobacteria prevalent in water and soil. Consequently, IMD28 may be more frequently observed in such settings, though underdiagnosis remains likely. In high-income countries without routine neonatal BCG vaccination, complete IFNGR2 deficiency might present later via environmental mycobacteria or M. tuberculosis, and may be misdiagnosed as atypical infections without recognition of underlying immunodeficiency.
Sex ratio in IMD28 appears roughly balanced; IFNGR2 is an autosomal gene, and there is no evidence for sex-linked differences in susceptibility or severity. Age distribution is skewed toward infancy and early childhood in complete deficiency, while partial deficiency cases may extend into adolescence and adulthood. Ethnic backgrounds of reported patients reflect their countries of origin, but there is no evidence for ethnic predisposition independent of consanguinity and genetic drift.
Diagnostic evaluation of Immunodeficiency 28 begins with clinical suspicion based on severe or unusual mycobacterial infections in otherwise healthy children. Laboratory tests then assess general immune status and specific IFN-γ pathway function. Routine tests include complete blood count, immunoglobulin levels, lymphocyte subsets, and vaccine antibody responses; these often appear normal in IFNGR2 deficiency, emphasizing the need for specialized assays.[11][13][20]
Functional tests of IFN-γ responsiveness are central. The diagnosis is suggested by absent or markedly impaired STAT1 phosphorylation in response to IFN-γ stimulation in patient leukocytes or fibroblasts, measured by flow cytometry or Western blot.[10][11][15][20] Immunodeficiencysearch.com notes that diagnosis is suggested by “impaired STAT1 phosphorylation in response to IFN-gamma signaling” and “absence of IFN-gamma receptor on the surface of lymphocytes” in some forms.[10] Orphanet describes that “leukocytes and fibroblasts from patients with this immunodeficiency do not respond to IFN-gamma in vitro.”[15]
Flow cytometric analysis of IFN-γ receptor surface expression can distinguish “expressive” from “non-expressive” IFNGR2 deficiency. In non-expressive forms, IFNGR2 is absent from the surface, whereas in expressive forms it is present but nonfunctional.[11][18][20] This information guides molecular interpretation of mutations and may influence therapeutic considerations. Additional IL-12/IFN-γ pathway screening studies recommended by immunodeficiencysearch.com include measurement of IFN-γ receptor surface expression, IL-12 receptor expression, and STAT1/STAT4 phosphorylation after cytokine stimulation.[10]
Measurement of plasma IFN-γ, IL-12p40, and IL-12p70 levels via ELISA can provide supporting evidence. Orphanet notes that IFN-γ, IL-12p40, and IL-12p70 levels can be measured after whole blood activation by BCG, BCG+IL-12, and BCG+IFN-γ; in IFNGR2 deficiency, IFN-γ levels are typically high, whereas IL-12 responses may be normal or elevated.[15] Elevated IFN-γ with absent cellular response is a characteristic signature.
Microbiologic testing identifies causative pathogens and informs treatment. Cultures, PCR, and histopathology of affected tissues detect BCG, NTM, or M. tuberculosis, and reveal granulomatous inflammation. Imaging studies such as X-ray, CT, and MRI document bone lesions, lymphadenopathy, and pulmonary involvement. Biopsy of lesions shows granulomas, necrosis, and mycobacterial organisms, confirming infection.
Confirmatory diagnosis of Immunodeficiency 28 requires genetic testing of IFNGR2. Single-gene sequencing of IFNGR2 by Sanger or next-generation methods is appropriate when IFN-γ pathway deficiency is suspected based on functional assays. OMIM and ClinVar provide reference sequences and mutation databases for IFNGR2; the MANE-select transcript NM_005534.4 is commonly used.[1][5][18] ClinVar lists specific variants and their clinical significance, such as the benign c.879+32dup, helping interpret test results.[5]
Whole exome sequencing (WES) has been instrumental in discovering novel IFNGR2 mutations in MSMD cohorts and familial cases. Desai et al. used WES in two affected Indian siblings and their consanguineous parents to identify the c.207-1G>A splice acceptor site variant in IFNGR2.[14] Similarly, Oleaga-Quintas et al. identified recessive IFNGR2 mutations affecting the initiation or second codon via WES, leading to partial deficiency in multiple patients.[13][17] WES is particularly useful when MSMD is suspected but specific gene defects are unknown, as it allows comprehensive evaluation of IFN-γ pathway genes.
Gene panels targeting primary immunodeficiencies or MSMD-associated genes include IFNGR2 along with IFNGR1, STAT1, IL12B, IL12RB1, ISG15, TYK2, IRF8, SPPL2A, NEMO, and CYBB.[11][13][20] These panels enable simultaneous assessment of multiple genes that can cause similar phenotypes. Chromosomal microarray, karyotyping, FISH, and mitochondrial DNA testing are generally not necessary for IMD28, as large structural changes and mitochondrial defects have not been implicated.
WGS may offer additional benefits by detecting deep intronic variants or structural changes in IFNGR2 not captured by WES, but given the known coding variants in most cases and the rarity of structural lesions, WES and targeted sequencing suffice for clinical diagnosis. Once a pathogenic IFNGR2 mutation is identified, segregation analysis in family members confirms inheritance pattern and informs carrier status.
Omics-based diagnostics beyond targeted sequencing have limited current application in IMD28 due to its rarity. However, functional transcriptomic assays in patient cells can quantify IFN-γ–responsive gene expression and might serve as research tools to assess residual signaling in partial deficiency. Proteomics could evaluate STAT1 phosphorylation dynamics and receptor complex assembly, while metabolomics could identify signatures of impaired macrophage activation. None of these are currently standard in clinical practice for IFNGR2 deficiency.
Biomarkers for disease activity and prognosis include plasma IFN-γ levels, inflammatory markers such as C-reactive protein and TNF-α, and pathogen load assessed by cultures and imaging. Elevated IFN-γ is characteristic but not specific to IMD28, as other IFN-γ receptor deficiencies share this feature.[2][11][15][20] Nevertheless, sustained high IFN-γ despite persistent infection supports a diagnosis of receptor-level defects rather than cytokine deficiency, as AR IFN-γ deficiency itself causes MSMD but features low or absent IFN-γ levels.[17]
Standardized diagnostic criteria for IMD28 are not yet formalized in society guidelines, but MSMD reviews provide practical frameworks. Any child with severe or unusual mycobacterial disease, particularly disseminated BCG or environmental NTM infections, in the absence of HIV infection or generalized immunodeficiency, should prompt evaluation for MSMD, including IFNGR2 deficiency.[11][13][20] Poor or absent clinical and cellular response to IFN-γ, high plasma IFN-γ levels, and family history of similar infections strengthen suspicion.
Differential diagnosis includes other MSMD conditions such as IFNGR1 deficiency, IL12RB1 deficiency, IL12B deficiency, STAT1 deficiency, and ISG15 deficiency, as well as chronic granulomatous disease (CGD), severe combined immunodeficiency, and acquired immunodeficiency due to HIV or immunosuppressive drugs.[11][13][20] Distinguishing features include specific pathogen spectrum (for example predominance of mycobacteria and salmonella in MSMD), preserved general immune parameters in IFNGR2 deficiency, and specific functional and genetic tests.
Screening programs for asymptomatic individuals with IMD28 are not established, but cascade genetic testing in families with known IFNGR2 mutations is recommended. Prenatal diagnosis and preimplantation genetic testing can be offered to carrier couples, given the poor prognosis of complete deficiency and the availability of HSCT. Newborn screening at the population level is not currently feasible due to low prevalence and lack of simple assays, though targeted screening in high-risk families may be beneficial.
The prognosis of Immunodeficiency 28 depends critically on the type of IFNGR2 deficiency and access to curative therapy. In complete autosomal recessive IFN-γR2 deficiency, survival without HSCT is poor. Orphanet reports that “prognosis is poor with most patients not living past 10 years of age,” and MSMD reviews state that complete IFN-γR1 and IFN-γR2 deficiencies are always lethal before the third decade of life in the absence of HSCT.[11][15][20] Mortality arises from uncontrolled mycobacterial infection, sepsis, and complications of chronic inflammation and organ damage.
With HSCT, survival prospects improve significantly. Tovo et al. documented “Successful hematopoietic stem cell transplantation in a patient with complete IFN-γ receptor 2 deficiency,” demonstrating that transplantation can cure the immunodeficiency by reconstituting donor-derived immune cells with functional IFNGR2.[12][19] Their case report and literature review suggest that HSCT offers the
Checked with linkml-reference-validator 0.2.1.
| Outcome | Count |
|---|---|
| References checked | 7 |
| Resolved | 7 |
| Unresolved (possible confabulation) | 0 |
| Unverifiable | 0 |
| References weighed for topical relevance | 7 |
| On topic | 5 |
| Off topic | 0 |
All extracted references resolved successfully.
Checked with linkml-term-validator 0.4.5, through the ols: adapter.
| Outcome | Count |
|---|---|
| Terms checked | 43 |
| Resolved | 39 |
| Unresolved (possible confabulation) | 1 |
| Obsolete | 1 |
| Unverifiable | 2 |
| Terms whose name was checked | 37 |
| Terms named correctly | 22 |
| Terms named as a different term | 8 |
| Terms whose name is worth a second look | 7 |
These identifiers resolve, so nothing about them looks wrong, and the ontology calls them something unrelated to what the report calls them. That usually means the identifier is not the one the sentence needs:
HP:0002721 (2 mentions) - the report calls it "Recurrent mycobacterial infections"; HP calls it ImmunodeficiencyHP:0002715 (2 mentions) - the report calls it "Recurrent bacterial infections"; HP calls it Abnormality of the immune systemHP:0031644 (2 mentions) - the report calls it "Recurrent salmonella infections"; HP calls it Fusiform abdominal aortic aneurysmHP:0001897 (1 mention) - the report calls it "Abnormal chest radiograph"; HP calls it Normocytic anemiaHP:0012430 (2 mentions) - the report calls it "Elevated circulating interferon-gamma level"; HP calls it Cerebral white matter hypoplasiaHP:0032150 (2 mentions) - the report calls it "Abnormal response to interferon-gamma"; HP calls it Paroxysmal rectal painCL:0000913 (1 mention) - the report calls it "T helper 1 cell"; CL calls it effector memory CD8-positive, alpha-beta T cellGO:0005887 (1 mention) - the report calls it "integral component of plasma membrane"; GO calls it GO_0005887These identifiers do not exist in an ontology that resolved other terms from the same prefix, so they were most likely invented:
HP:0005385 (2 mentions), reported as "Disseminated Bacille Calmette–Guérin infection" - HP does not contain this termThese terms are real but deprecated. Citing one is not a fabrication; it does mean the report is naming something the ontology has retired:
GO:0005887 (GO_0005887) (1 mention) - replaced by GO:0005886The report's name for these is recognisably related to the term's own name without being one of them. A loose paraphrase reads the same way as a citation of the wrong sibling term - and so does a related synonym, which the ontology records precisely because it names something adjacent rather than the same thing - so these are listed rather than judged:
HP:0005381 (2 mentions) - the report calls it "Bacille Calmette–Guérin infection"; HP calls it Recurrent Neisseria meningitidis infection, and lists "Chronic menigococcal infection" among its other namesHP:0003623 (3 mentions) - the report calls it "Onset in early childhood", "Neonatal onset", "Early childhood onset"; HP calls it Neonatal onsetGO:0034341 (1 mention) - the report calls it "response to interferon-gamma"; GO calls it response to type II interferon, and lists "response to gamma-interferon" among its other namesGO:0010758 (1 mention) - the report calls it "positive regulation of macrophage activation"; GO calls it regulation of macrophage chemotaxisGO:0006911 (1 mention) - the report calls it "phagocytosis"; GO calls it phagocytosis, engulfmentUBERON:0001474 (1 mention) - the report calls it "bone"; UBERON calls it bone element, and lists "bone" among its other namesGO:0045335 (1 mention) - the report calls it "phagolysosome"; GO calls it phagocytic vesicle, and lists "phagosome" among its other namesThe report gives these identifiers more than one name of its own:
HP:0003623 - called "Onset in early childhood", "Neonatal onset", "Early childhood onset"Terms carrying these prefixes were not checked either way, because no configured ontology covers them. An unrecognised prefix may name an ontology this run could not reach as easily as one that does not exist, so nothing here is evidence of fabrication: OMIM, Orphanet.