IRF1 Deficiency

Mendelian MONDO:0958011 Pathograph 13 Show in embeddings browser inborn error of immunity autosomal recessive disease

IRF1 deficiency (immunodeficiency 117) is an autosomal recessive inborn error of immunity that presents as Mendelian susceptibility to mycobacterial disease (MSMD): early-onset, multiple, life-threatening infection with weakly virulent mycobacteria - BCG vaccine strains and environmental mycobacteria - and other intramacrophagic pathogens, in children with otherwise unremarkable resistance to infection. IRF1 is a transcription factor induced downstream of both type I and type II interferons, which made it a plausible candidate for a combined antiviral and antimycobacterial defect. The finding that defines this disease is that it is not one. IRF1-dependent responses to IFN-gamma are far stronger than those to IFN-alpha/beta, and complete IRF1 deficiency abolishes the IFN-gamma-driven macrophage programme that normally restricts intracellular mycobacteria while leaving IFN-alpha/beta-dependent intrinsic antiviral immunity almost intact. The reported children had no history of severe viral disease despite documented exposure to many viruses including SARS-CoV-2, which is life-threatening in people with impaired type I interferon immunity. Human IRF1 is therefore essential for one interferon arm and largely redundant for the other, even though both induce it. The lesion sits downstream of the IFN-gamma receptor, in the response to the cytokine rather than its production. That placement is what determines management: recombinant IFN-gamma, which benefits MSMD patients whose defect is impaired IFN-gamma production, has no mechanistic rationale here, and hematopoietic stem cell transplantation is the therapeutic option that remains.

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1
Inheritance
3
Pathophys.
4
Phenotypes
1
Hypotheses
13
Pathograph
1
Genes
2
Variants
3
Medical Actions
1
References
1
Deep Research
🏷

Classifications

IUIS Category
innate immunity defect
👪

Inheritance

1
Autosomal recessive HP:0000007
Complete IRF1 deficiency arises from biallelic loss-of-function IRF1 variants in unrelated children; the disease is classified among the autosomal recessive inborn errors of transcription factors governing IFN-gamma immunity.
Autosomal recessive inheritance
Show evidence (1 reference)
PMID:36867972 SUPPORT Human Clinical
"IEI mainly affecting myeloid and/or lymphoid function (AR and AD STAT1 LOF, AD STAT1 GOF, AR IRF1, and AD NFKB1 deficiencies)"
Classifies IRF1 deficiency as autosomal recessive within the transcription-factor MSMD group.
◈

Mechanistic Hypotheses

1
IRF1 is essential for the IFN-gamma arm and redundant for the IFN-alpha/beta arm despite being induced by both
irf1_interferon_arm_asymmetry CANONICAL
Evidence balance 3 support
IRF1 is induced by both type I and type II interferons, which predicts a combined antiviral and antimycobacterial defect. The observed phenotype contradicts that prediction: mycobacterial disease is severe and early-onset, while antiviral immunity is essentially preserved. Two independent lines of evidence support the asymmetry rather than ascertainment - the clinical course (no severe viral disease despite documented exposure to many viruses, including SARS-CoV-2, which is life-threatening in impaired type I interferon immunity) and the cellular phenotype (intrinsic immunity to nine viruses almost normal in IRF1-deficient fibroblasts). The interpretation is that IRF1 carries a much larger share of the IFN-gamma-induced response than of the IFN-alpha/beta response, so other effectors cover for its loss in the type I arm but not the type II arm. This is recorded as CANONICAL rather than EMERGING because the negative antiviral result is experimentally demonstrated across nine viruses rather than merely unobserved.
Show evidence (3 references)
PMID:36736301 SUPPORT Human Clinical
"These children have no history of severe viral disease, despite exposure to many viruses, including SARS-CoV-2, which is life-threatening in individuals with impaired IFN-α/β immunity."
The clinical half of the asymmetry - preserved antiviral immunity in vivo, with an explicit positive control in the comparison to type I interferon defects.
PMID:36736301 SUPPORT In Vitro
"IFN-α/β-dependent intrinsic immunity to nine viruses, including SARS-CoV-2, is almost normal in IRF1-deficient fibroblasts."
The cellular half - a demonstrated negative result across nine viruses, not an absence of observation.
PMID:36736301 SUPPORT In Vitro
"Human IRF1 is essential for IFN-γ-dependent macrophagic immunity to mycobacteria, but largely redundant for IFN-α/β-dependent antiviral immunity."
The authors' own statement of the asymmetry that this hypothesis records.
⚙

Pathophysiology

3
IRF1 Loss of Function
Biallelic loss-of-function IRF1 variants abolish the transcription factor entirely. IRF1 is not itself an interferon receptor or a signalling kinase; it is the induced transcriptional effector through which interferon signalling is converted into a change in gene expression, so its loss leaves upstream receptor and JAK-STAT signalling intact while removing the transcriptional output that depends on it.
Genetic context variant_origin: GERMLINE zygosity: HOMOZYGOUS functional_impact_category: LOSS_OF_FUNCTION
Both reported patients are homozygous for a germline nonsense allele from a consanguineous kindred, and no truncated protein is detectable, so the functional consequence is complete loss of function rather than a hypomorphic effect.
Show evidence (1 reference)
PMID:36736301 SUPPORT Human Clinical
"We describe unrelated children with inherited complete IRF1 deficiency and early-onset, multiple, life-threatening diseases caused by weakly virulent mycobacteria and related intramacrophagic pathogens."
Identifies complete IRF1 deficiency in unrelated children as the cause of the disease.
Failure of the IFN-gamma-Induced Transcriptional Programme
IFN-gamma binds an intact receptor and signals normally, but the IRF1-dependent arm of the induced transcriptional response is absent. The defect is therefore in the response to the cytokine rather than in its production - a distinction that separates this disease from the MSMD etiologies caused by impaired IL-12/IL-23-driven IFN-gamma output, and that determines which treatments can work.
Cellular response to interferon-gamma GO:0071346 Gene Ontology (GO) Relation: this pathophysiological event involves this biological process This pathophysiological event involves decreased Cellular response to interferon-gamma, annotated with cellular response to type II interferon (GO:0071346). GO:0071346 is a biological process from the Gene Ontology. ↓ DECREASED
Show evidence (1 reference)
PMID:38025345 SUPPORT Human Clinical
"almost all genetic etiologies of MSMD alter the interferon-gamma (IFN-γ)"
Places this disease within the MSMD group defined by disruption of IFN-gamma-mediated immunity.
Loss of Macrophage Antimycobacterial Effector Function
The mononuclear phagocyte is the cell in which weakly virulent mycobacteria live and the cell that IFN-gamma normally activates to kill them. Without the IRF1-dependent programme, IFN-gamma-stimulated macrophages fail to control mycobacteria and related intramacrophagic organisms, so an ordinarily self-limiting exposure - a BCG vaccination, an environmental mycobacterium - becomes a progressive, disseminating infection.
Mononuclear phagocyte CL:0000113 Cell Ontology (CL) Relation: this pathophysiological event involves this cell type This pathophysiological event involves Mononuclear phagocyte (CL:0000113). CL:0000113 is a cell type from the Cell Ontology.
Macrophage activation GO:0042116 Gene Ontology (GO) Relation: this pathophysiological event involves this biological process This pathophysiological event involves decreased Macrophage activation (GO:0042116). GO:0042116 is a biological process from the Gene Ontology. ↓ DECREASED Antibacterial defense response GO:0042742 Gene Ontology (GO) Relation: this pathophysiological event involves this biological process This pathophysiological event involves decreased Antibacterial defense response, annotated with defense response to bacterium (GO:0042742). GO:0042742 is a biological process from the Gene Ontology. ↓ DECREASED
Show evidence (1 reference)
PMID:36736301 SUPPORT In Vitro
"IRF1-deficient mononuclear phagocytes do not control mycobacteria and related pathogens normally when stimulated with IFN-γ."
The direct cellular demonstration that defines this node.
⬡

Pathograph

Use the checkboxes to hide or show graph categories. Hover nodes for evidence and cross-linked metadata.
Pathograph: causal mechanism network for IRF1 Deficiency Interactive directed graph showing how pathophysiology mechanisms, phenotypes, genetic factors and variants, experimental models, environmental triggers, and treatments relate through causal and linked edges.
●

Phenotypes

4
BCGosis Immunological HP:0020087 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is BCGosis (HP:0020087). HP:0020087 is a phenotype from the Human Phenotype Ontology.
Show evidence (1 reference)
PMID:38025345 SUPPORT Human Clinical
"MSMD confers a selective susceptibility to infections with weakly virulent mycobacteria, including the M. bovis Bacille Calmette-Guerin (BCG) vaccines"
Establishes BCG disease as a defining feature of the MSMD group to which IRF1 deficiency belongs.
Non-tuberculous mycobacterial infection Immunological HP:5210115 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Non-tuberculous mycobacterial infection (HP:5210115). HP:5210115 is a phenotype from the Human Phenotype Ontology.
Show evidence (1 reference)
PMID:36736301 SUPPORT Human Clinical
"early-onset, multiple, life-threatening diseases caused by weakly virulent mycobacteria and related intramacrophagic pathogens"
Describes the environmental mycobacterial disease seen in IRF1-deficient children.
Unusual Histoplasma capsulatum infection Immunological HP:0032256 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Unusual Histoplasma capsulatum infection (HP:0032256). HP:0032256 is a phenotype from the Human Phenotype Ontology.
Show evidence (2 references)
PMID:36736301 SUPPORT Human Clinical
"the only other infection observed, histoplasmosis, is caused by an intramacrophagic fungus"
Records histoplasmosis as observed in the reported IRF1-deficient patients and explains why an intramacrophagic organism is expected.
PMID:36736301 SUPPORT Human Clinical
"Impaired IL-12p70 induction probably contributed to the disseminated histoplasmosis observed in P1"
Gives the IRF1-specific mechanistic route the authors propose for this susceptibility.
Unusual Salmonella infection Immunological HP:5210093 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Unusual Salmonella infection (HP:5210093). HP:5210093 is a phenotype from the Human Phenotype Ontology.
Show evidence (1 reference)
PMID:38025345 SUPPORT Human Clinical
"about half of them might develop non-typhoidal salmonellosis"
Reports non-typhoidal salmonellosis across MSMD; the entry's description scopes this to the group rather than to IRF1 specifically.
🧬

Genetic Associations

1
IRF1 (Causal)
Gene: IRF1 hgnc:6116 HUGO Gene Nomenclature Committee (hgnc) Relation: this disease-associated gene is this gene This disease-associated gene is IRF1 (hgnc:6116). hgnc:6116 is a gene from the HUGO Gene Nomenclature Committee. variant_origin: GERMLINE
Show evidence (1 reference)
PMID:36736301 SUPPORT Human Clinical
"We describe unrelated children with inherited complete IRF1 deficiency and early-onset, multiple, life-threatening diseases caused by weakly virulent mycobacteria and related intramacrophagic pathogens."
Establishes IRF1 as the causal gene by linking complete deficiency to the mycobacterial phenotype in unrelated kindreds.
Variants (2)
c.385C>T (p.R129*) Pathogenic
nonsense
Homozygous nonsense variant carried by P1, an eight-year-old girl born to consanguineous parents in Argentina. No truncated IRF1 protein was detectable in patient fibroblasts even after IFN-gamma pretreatment and prolonged immunoblot exposure, establishing complete loss of function rather than a hypomorphic effect.
Show evidence (2 references)
PMID:36736301 SUPPORT Human Clinical
"Patient 1 (P1, kindred A) is an eight-year-old girl born to consanguineous parents originating from and living in Argentina"
Establishes the consanguineous kindred in which this allele is homozygous.
PMID:36736301 SUPPORT In Vitro
"no truncated IRF1 protein was detected in SV40-fibroblasts from P1 after pretreatment with IFN-γ"
Demonstrates complete absence of protein, which is what makes this loss of function rather than partial.
c.103C>T (p.Q35*) Pathogenic
nonsense
Homozygous nonsense variant carried by P2, a seven-year-old girl born to consanguineous parents in Turkey - an independent kindred, which is what makes the gene-disease relationship rest on more than a single family.
Show evidence (1 reference)
PMID:36736301 SUPPORT Human Clinical
"Patient 2 (P2, kindred B) is a seven-year-old girl born to consanguineous parents originating from and living in Turkey"
Establishes the second, independent consanguineous kindred.
💊

Medical Actions

3
Broad-Spectrum Antimycobacterial Pharmacotherapy
Action: PharmacotherapyNCI Thesaurus (NCIT) Relation: this treatment is this clinical intervention This treatment is Pharmacotherapy (NCIT:C15986). NCIT:C15986 is a clinical intervention from the NCI Thesaurus. NCIT:C15986
Platform: Small molecule
The actual day-to-day management in both reported patients, and the treatment that keeps them alive while the underlying defect persists. Its limitation is instructive: mycobacterial disease recurred despite multiple antimycobacterial drugs, because the drugs act on the organism while the macrophage remains unable to mount the IFN-gamma-induced killing programme that normally clears it.
Mechanism Target:
Non-tuberculous mycobacterial infection — The drugs act on the organism rather than on the host defect, so they suppress the infection without restoring the macrophage killing programme - which is why disease recurred on treatment.
Show evidence (1 reference)
PMID:36736301 SUPPORT Human Clinical
"despite treatment with multiple antimycobacterial drugs, and even treatment with recombinant IFN-γ in the case of P1"
Records both that the drugs are directed at the mycobacterial disease and that they do not resolve it.
Show evidence (2 references)
PMID:36736301 SUPPORT Human Clinical
"Both patients were receiving broad-spectrum antimycobacterial drugs and P1 was also receiving recombinant IFN-γ."
Documents the antimicrobial regimen both patients were maintained on.
PMID:36736301 SUPPORT Human Clinical
"despite treatment with multiple antimycobacterial drugs, and even treatment with recombinant IFN-γ in the case of P1"
Records that disease recurred on this therapy, which is why it is management rather than cure.
Hematopoietic Stem Cell Transplantation
Action: hematopoietic cell transplantationNCI Thesaurus (NCIT) Relation: this treatment is this clinical intervention This treatment is hematopoietic cell transplantation (NCIT:C15431). NCIT:C15431 is a clinical intervention from the NCI Thesaurus. Ontology label: Hematopoietic Cell Transplantation NCIT:C15431
Platform: Cell therapy
Because the defect is an abolished cellular response to IFN-gamma rather than impaired IFN-gamma production, replacing the hematopoietic compartment is the therapeutic route that addresses the mechanism. Reviews of MSMD identify transplantation, with gene therapy as a prospect, as the option for patients whose response to the cytokine is abolished.
Mechanism Target:
Loss of Macrophage Antimycobacterial Effector Function — Donor-derived mononuclear phagocytes carry functional IRF1 and can mount the IFN-gamma-induced antimycobacterial programme.
Show evidence (1 reference)
PMID:38025345 SUPPORT Human Clinical
"for patients with abolished response to this cytokine, hematopoietic stem cell transplantation (HSCT) and promising gene therapy are the only current therapeutic options"
States that transplantation is the option for the abolished-response group, which is where an IRF1 defect sits.
Avoidance of BCG Vaccination
Action: avoidance of BCG vaccinationNCI Thesaurus (NCIT) Relation: this treatment is this clinical intervention This treatment is avoidance of BCG vaccination, annotated with Supportive Care (NCIT:C15747). NCIT:C15747 is a clinical intervention from the NCI Thesaurus. Ontology label: Supportive Care NCIT:C15747
Platform: Behavioral / lifestyle
Live attenuated BCG vaccine causes disseminated disease in MSMD and should be avoided once the diagnosis is known or suspected in a sibling. This is the agents-and-circumstances-to-avoid consideration for the disease.
Mechanism Target:
Loss of Macrophage Antimycobacterial Effector Function — Withholding the live vaccine removes a mycobacterial challenge the defective macrophage cannot contain.
Show evidence (1 reference)
PMID:38025345 SUPPORT Human Clinical
"MSMD confers a selective susceptibility to infections with weakly virulent mycobacteria, including the M. bovis Bacille Calmette-Guerin (BCG) vaccines"
Identifies BCG as a specific hazard for this patient group, which is the basis for avoiding it.
🔬

Diagnosis

2
Whole-Exome Sequencing
The route by which both patients were diagnosed. IRF1 deficiency phenocopies the upstream IFN-gamma receptor and STAT1 defects on clinical grounds, so sequencing rather than clinical pattern is what identifies it.
genetic testing NCIT:C15709 NCI Thesaurus (NCIT)
Show evidence (1 reference)
PMID:36736301 SUPPORT Human Clinical
"We performed whole-exome sequencing (WES) on the two patients."
The diagnostic method used in both reported kindreds.
IRF1 Protein Detection with Preserved Upstream Signaling
The discriminating functional workup. Absent IRF1 protein on immunoblot after IFN-gamma pretreatment, combined with normal STAT1 phosphorylation on interferon stimulation, localises the defect below the receptor and below STAT1 - separating IRF1 deficiency from the IFNGR1, IFNGR2 and STAT1 defects it resembles clinically. The preserved upstream signal is what makes the result specific rather than merely abnormal.
laboratory procedure NCIT:C25294 NCI Thesaurus (NCIT)
Show evidence (2 references)
PMID:36736301 SUPPORT In Vitro
"no truncated IRF1 protein was detected in SV40-fibroblasts from P1 after pretreatment with IFN-γ"
The absent-protein half of the discriminating result.
PMID:36736301 SUPPORT In Vitro
"assessed by evaluating STAT1 phosphorylation after 20 minutes of stimulation with IFN-α2b and IFN-β, was normal in both patients"
The preserved-upstream-signalling half, which localises the lesion below STAT1.
📊

Prevalence

2
Worldwide
Cases In Literature Ultra Rare
IRF1 deficiency was described in 2023 in two unrelated children, from consanguineous Argentinian and Turkish kindreds. It is among the rarest MSMD etiologies.
Show evidence (1 reference)
PMID:36736301 SUPPORT Human Clinical
"We studied two unrelated children, P1 and P2."
The complete published case count for this etiology at the time of description.
Worldwide
Point Prevalence 1.0 per 100,000 1–9 per 100,000
Recorded for Mendelian susceptibility to mycobacterial disease as a whole, not for IRF1 deficiency specifically, which accounts for a small fraction of that total. The source states the MSMD prevalence as about 10 to the minus 5, which is 1 in 100,000, recorded here as 1.0 per 100,000.
Show evidence (1 reference)
PMID:36736301 SUPPORT Human Clinical
"The prevalence of MSMD is about 10−5."
Group-level occurrence estimate for MSMD; the notes scope it explicitly so it is not read as an IRF1-specific rate.
{ }

Source YAML

click to show
name: IRF1 Deficiency
creation_date: "2026-09-04T00:00:00Z"
category: Mendelian
synonyms:
- immunodeficiency 117
- IMD117
- autosomal recessive complete IRF1 deficiency
- IRF1-related Mendelian susceptibility to mycobacterial disease
description: >-
  IRF1 deficiency (immunodeficiency 117) is an autosomal recessive inborn error
  of immunity that presents as Mendelian susceptibility to mycobacterial disease
  (MSMD): early-onset, multiple, life-threatening infection with weakly virulent
  mycobacteria - BCG vaccine strains and environmental mycobacteria - and other
  intramacrophagic pathogens, in children with otherwise unremarkable
  resistance to infection.

  IRF1 is a transcription factor induced downstream of both type I and type II
  interferons, which made it a plausible candidate for a combined antiviral and
  antimycobacterial defect. The finding that defines this disease is that it is
  not one. IRF1-dependent responses to IFN-gamma are far stronger than those to
  IFN-alpha/beta, and complete IRF1 deficiency abolishes the IFN-gamma-driven
  macrophage programme that normally restricts intracellular mycobacteria while
  leaving IFN-alpha/beta-dependent intrinsic antiviral immunity almost intact.
  The reported children had no history of severe viral disease despite
  documented exposure to many viruses including SARS-CoV-2, which is
  life-threatening in people with impaired type I interferon immunity. Human
  IRF1 is therefore essential for one interferon arm and largely redundant for
  the other, even though both induce it.

  The lesion sits downstream of the IFN-gamma receptor, in the response to the
  cytokine rather than its production. That placement is what determines
  management: recombinant IFN-gamma, which benefits MSMD patients whose defect
  is impaired IFN-gamma production, has no mechanistic rationale here, and
  hematopoietic stem cell transplantation is the therapeutic option that
  remains.
disease_term:
  preferred_term: IRF1 deficiency
  term:
    id: MONDO:0958011
    label: immunodeficiency 117
parents:
- inborn error of immunity
- autosomal recessive disease
references:
- reference: PMID:36736301
  title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
classifications:
  iuis_category:
    classification_value: innate immunity defect
    notes: >-
      IUIS phenotypic classification of inborn errors of immunity, Mendelian
      susceptibility to mycobacterial disease (MSMD) table. This entry is the IRF1
      etiology of MSMD, a defect of IFN-gamma-dependent macrophage immunity.
    evidence:
    - reference: PMID:38025345
      reference_title: "Mendelian susceptibility to mycobacterial diseases: State of the puzzle."
      supports: SUPPORT
      evidence_source: HUMAN_CLINICAL
      snippet: >-
        Mendelian susceptibility to mycobacterial diseases (MSMD) is the most characterized
        of these IEIs, with 36 different disorders found in 20 distinct genes (IFNGR1,
        IFNGR2, IFNG, IL12RB1, IL12RB2, IL23R, IL12B, ISG15, USP18, ZNFX1, TBX21, STAT1,
        TYK2, IRF8, IRF1, CYBB, JAK1, RORC, NEMO, and SPPL2A)
      explanation: >-
        Places IRF1 in the established gene set of Mendelian susceptibility to
        mycobacterial disease, the inborn-error-of-immunity syndrome under which this
        entry is classified.
inheritance:
- name: Autosomal recessive
  description: >-
    Complete IRF1 deficiency arises from biallelic loss-of-function IRF1
    variants in unrelated children; the disease is classified among the
    autosomal recessive inborn errors of transcription factors governing
    IFN-gamma immunity.
  inheritance_term:
    preferred_term: Autosomal recessive inheritance
    term:
      id: HP:0000007
      label: Autosomal recessive inheritance
  evidence:
  - reference: PMID:36867972
    reference_title: "Inborn errors of human transcription factors governing IFN-γ antimycobacterial immunity."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "IEI mainly affecting myeloid and/or lymphoid function (AR and AD STAT1 LOF, AD STAT1 GOF, AR IRF1, and AD NFKB1 deficiencies)"
    explanation: Classifies IRF1 deficiency as autosomal recessive within the transcription-factor MSMD group.
pathophysiology:
- name: IRF1 Loss of Function
  description: >-
    Biallelic loss-of-function IRF1 variants abolish the transcription factor
    entirely. IRF1 is not itself an interferon receptor or a signalling kinase;
    it is the induced transcriptional effector through which interferon
    signalling is converted into a change in gene expression, so its loss
    leaves upstream receptor and JAK-STAT signalling intact while removing the
    transcriptional output that depends on it.
  biological_scale: MOLECULAR
  genetic_context:
    zygosity: HOMOZYGOUS
    variant_origin: GERMLINE
    functional_impact_category: LOSS_OF_FUNCTION
    description: >-
      Both reported patients are homozygous for a germline nonsense allele from
      a consanguineous kindred, and no truncated protein is detectable, so the
      functional consequence is complete loss of function rather than a
      hypomorphic effect.
  downstream:
  - target: Failure of the IFN-gamma-Induced Transcriptional Programme
    causal_link_type: DIRECT
    description: >-
      With no IRF1 protein, the IFN-gamma-induced genes that require it are not
      transcribed.
    evidence:
    - reference: PMID:36736301
      reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
      supports: SUPPORT
      evidence_source: IN_VITRO
      snippet: "In leukocytes or fibroblasts stimulated in vitro, IRF1-dependent responses to IFN-γ are, both quantitatively and qualitatively, much stronger than those to IFN-α/β."
      explanation: Establishes that the transcriptional response IRF1 carries is predominantly the IFN-gamma-driven one, so its loss removes that programme specifically.
  evidence:
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "We describe unrelated children with inherited complete IRF1 deficiency and early-onset, multiple, life-threatening diseases caused by weakly virulent mycobacteria and related intramacrophagic pathogens."
    explanation: Identifies complete IRF1 deficiency in unrelated children as the cause of the disease.
- name: Failure of the IFN-gamma-Induced Transcriptional Programme
  description: >-
    IFN-gamma binds an intact receptor and signals normally, but the
    IRF1-dependent arm of the induced transcriptional response is absent. The
    defect is therefore in the response to the cytokine rather than in its
    production - a distinction that separates this disease from the MSMD
    etiologies caused by impaired IL-12/IL-23-driven IFN-gamma output, and that
    determines which treatments can work.
  biological_scale: CELLULAR
  biological_processes:
  - preferred_term: Cellular response to interferon-gamma
    term:
      id: GO:0071346
      label: cellular response to type II interferon
    modifier: DECREASED
  downstream:
  - target: Loss of Macrophage Antimycobacterial Effector Function
    causal_link_type: DIRECT
    description: >-
      The IRF1-dependent genes are the ones that arm the mononuclear phagocyte
      against intracellular mycobacteria, so their absence disarms the cell.
    evidence:
    - reference: PMID:36736301
      reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
      supports: SUPPORT
      evidence_source: IN_VITRO
      snippet: "IRF1-deficient mononuclear phagocytes do not control mycobacteria and related pathogens normally when stimulated with IFN-γ."
      explanation: Directly couples the transcriptional failure to loss of pathogen control in the effector cell, under IFN-gamma stimulation.
  evidence:
  - reference: PMID:38025345
    reference_title: "Mendelian susceptibility to mycobacterial diseases: State of the puzzle."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "almost all genetic etiologies of MSMD alter the interferon-gamma (IFN-γ)"
    explanation: Places this disease within the MSMD group defined by disruption of IFN-gamma-mediated immunity.
- name: Loss of Macrophage Antimycobacterial Effector Function
  description: >-
    The mononuclear phagocyte is the cell in which weakly virulent mycobacteria
    live and the cell that IFN-gamma normally activates to kill them. Without
    the IRF1-dependent programme, IFN-gamma-stimulated macrophages fail to
    control mycobacteria and related intramacrophagic organisms, so an
    ordinarily self-limiting exposure - a BCG vaccination, an environmental
    mycobacterium - becomes a progressive, disseminating infection.
  biological_scale: CELLULAR
  cell_types:
  - preferred_term: Mononuclear phagocyte
    term:
      id: CL:0000113
      label: mononuclear phagocyte
  biological_processes:
  - preferred_term: Macrophage activation
    term:
      id: GO:0042116
      label: macrophage activation
    modifier: DECREASED
  - preferred_term: Antibacterial defense response
    term:
      id: GO:0042742
      label: defense response to bacterium
    modifier: DECREASED
  downstream:
  - target: BCGosis
    causal_link_type: DIRECT
    description: >-
      Live BCG vaccine strains are controlled by IFN-gamma-activated
      macrophages; without that control they disseminate.
    evidence:
    - reference: PMID:38025345
      reference_title: "Mendelian susceptibility to mycobacterial diseases: State of the puzzle."
      supports: SUPPORT
      evidence_source: HUMAN_CLINICAL
      snippet: "MSMD confers a selective susceptibility to infections with weakly virulent mycobacteria, including the M. bovis Bacille Calmette-Guerin (BCG) vaccines"
      explanation: States the causal relation between the MSMD immune defect and BCG disease.
  - target: Unusual Salmonella infection
    causal_link_type: DIRECT
    description: >-
      Non-typhoidal Salmonella is an intramacrophagic organism controlled by the
      same IFN-gamma-activated macrophage programme, which is why it recurs
      across MSMD etiologies.
    evidence:
    - reference: PMID:38025345
      reference_title: "Mendelian susceptibility to mycobacterial diseases: State of the puzzle."
      supports: SUPPORT
      evidence_source: HUMAN_CLINICAL
      snippet: "about half of them might develop non-typhoidal salmonellosis"
      explanation: Establishes salmonellosis as a consequence of the shared MSMD macrophage defect; the edge is group-level, as the phenotype description states.
  - target: Unusual Histoplasma capsulatum infection
    causal_link_type: DIRECT
    description: >-
      Histoplasma is likewise intramacrophagic. In this disease the link is
      strengthened by a second, IRF1-specific route - impaired IL-12p70
      induction in response to IFN-gamma.
    evidence:
    - reference: PMID:36736301
      reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
      supports: SUPPORT
      evidence_source: HUMAN_CLINICAL
      snippet: "Impaired IL-12p70 induction probably contributed to the disseminated histoplasmosis observed in P1"
      explanation: The authors' proposed mechanistic route from the IRF1 defect to the observed histoplasmosis.
  - target: Non-tuberculous mycobacterial infection
    causal_link_type: DIRECT
    description: >-
      Environmental mycobacteria, normally cleared without incident, cause
      progressive infection for the same reason.
    evidence:
    - reference: PMID:36736301
      reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
      supports: SUPPORT
      evidence_source: HUMAN_CLINICAL
      snippet: "early-onset, multiple, life-threatening diseases caused by weakly virulent mycobacteria and related intramacrophagic pathogens"
      explanation: Reports the clinical consequence of the macrophage defect in IRF1-deficient children.
  evidence:
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: IN_VITRO
    snippet: "IRF1-deficient mononuclear phagocytes do not control mycobacteria and related pathogens normally when stimulated with IFN-γ."
    explanation: The direct cellular demonstration that defines this node.
mechanistic_hypotheses:
- hypothesis_group_id: irf1_interferon_arm_asymmetry
  hypothesis_label: IRF1 is essential for the IFN-gamma arm and redundant for the IFN-alpha/beta arm despite being induced by both
  status: CANONICAL
  description: >-
    IRF1 is induced by both type I and type II interferons, which predicts a
    combined antiviral and antimycobacterial defect. The observed phenotype
    contradicts that prediction: mycobacterial disease is severe and
    early-onset, while antiviral immunity is essentially preserved. Two
    independent lines of evidence support the asymmetry rather than
    ascertainment - the clinical course (no severe viral disease despite
    documented exposure to many viruses, including SARS-CoV-2, which is
    life-threatening in impaired type I interferon immunity) and the cellular
    phenotype (intrinsic immunity to nine viruses almost normal in
    IRF1-deficient fibroblasts). The interpretation is that IRF1 carries a much
    larger share of the IFN-gamma-induced response than of the IFN-alpha/beta
    response, so other effectors cover for its loss in the type I arm but not
    the type II arm. This is recorded as CANONICAL rather than EMERGING because
    the negative antiviral result is experimentally demonstrated across nine
    viruses rather than merely unobserved.
  evidence:
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "These children have no history of severe viral disease, despite exposure to many viruses, including SARS-CoV-2, which is life-threatening in individuals with impaired IFN-α/β immunity."
    explanation: The clinical half of the asymmetry - preserved antiviral immunity in vivo, with an explicit positive control in the comparison to type I interferon defects.
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: IN_VITRO
    snippet: "IFN-α/β-dependent intrinsic immunity to nine viruses, including SARS-CoV-2, is almost normal in IRF1-deficient fibroblasts."
    explanation: The cellular half - a demonstrated negative result across nine viruses, not an absence of observation.
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: IN_VITRO
    snippet: "Human IRF1 is essential for IFN-γ-dependent macrophagic immunity to mycobacteria, but largely redundant for IFN-α/β-dependent antiviral immunity."
    explanation: The authors' own statement of the asymmetry that this hypothesis records.
phenotypes:
- category: Immunological
  name: BCGosis
  description: >-
    Disseminated disease caused by the live attenuated BCG vaccine strain, the
    defining presentation of MSMD in BCG-vaccinating countries.
  phenotype_term:
    preferred_term: BCGosis
    term:
      id: HP:0020087
      label: BCGosis
  evidence:
  - reference: PMID:38025345
    reference_title: "Mendelian susceptibility to mycobacterial diseases: State of the puzzle."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "MSMD confers a selective susceptibility to infections with weakly virulent mycobacteria, including the M. bovis Bacille Calmette-Guerin (BCG) vaccines"
    explanation: Establishes BCG disease as a defining feature of the MSMD group to which IRF1 deficiency belongs.
- category: Immunological
  name: Non-tuberculous mycobacterial infection
  description: >-
    Infection with environmental mycobacteria, which are of low virulence in
    immunocompetent hosts, occurs early and may be multiple and
    life-threatening.
  phenotype_term:
    preferred_term: Non-tuberculous mycobacterial infection
    term:
      id: HP:5210115
      label: Non-tuberculous mycobacterial infection
  evidence:
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "early-onset, multiple, life-threatening diseases caused by weakly virulent mycobacteria and related intramacrophagic pathogens"
    explanation: Describes the environmental mycobacterial disease seen in IRF1-deficient children.
- category: Immunological
  name: Unusual Histoplasma capsulatum infection
  description: >-
    Disseminated histoplasmosis was the only non-mycobacterial infection
    observed in the reported patients, occurring in P1. Histoplasma is an
    intramacrophagic fungus, and the authors attribute the susceptibility partly
    to impaired IL-12p70 induction in response to IFN-gamma - a second,
    IRF1-specific consequence beyond the macrophage effector defect. Unlike the
    Salmonella entry below, this phenotype was directly observed in an
    IRF1-deficient patient.
  phenotype_term:
    preferred_term: Unusual Histoplasma capsulatum infection
    term:
      id: HP:0032256
      label: Unusual Histoplasma capsulatum infection
  evidence:
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "the only other infection observed, histoplasmosis, is caused by an intramacrophagic fungus"
    explanation: Records histoplasmosis as observed in the reported IRF1-deficient patients and explains why an intramacrophagic organism is expected.
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "Impaired IL-12p70 induction probably contributed to the disseminated histoplasmosis observed in P1"
    explanation: Gives the IRF1-specific mechanistic route the authors propose for this susceptibility.
- category: Immunological
  name: Unusual Salmonella infection
  description: >-
    Non-typhoidal salmonellosis is the commonest non-mycobacterial infection in
    MSMD, reflecting the shared requirement for IFN-gamma-activated macrophages
    against intramacrophagic organisms. Reported for the MSMD group as a whole;
    the size of the published IRF1 cohort does not establish its frequency in
    this specific etiology.
  phenotype_term:
    preferred_term: Unusual Salmonella infection
    term:
      id: HP:5210093
      label: Unusual Salmonella infection
  evidence:
  - reference: PMID:38025345
    reference_title: "Mendelian susceptibility to mycobacterial diseases: State of the puzzle."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "about half of them might develop non-typhoidal salmonellosis"
    explanation: Reports non-typhoidal salmonellosis across MSMD; the entry's description scopes this to the group rather than to IRF1 specifically.
genetic:
- name: IRF1
  association: Causal
  gene_term:
    preferred_term: IRF1
    term:
      id: hgnc:6116
      label: IRF1
  notes: >-
    Biallelic loss-of-function IRF1 variants causing complete deficiency were
    described in unrelated children by Rosain et al. IRF1 acts downstream of
    the IFN-gamma receptor as an induced transcription factor, so upstream
    receptor and JAK-STAT components are intact; the defect is in the response
    to IFN-gamma rather than its production.
  variant_origin: GERMLINE
  variants:
  - name: c.385C>T (p.R129*)
    description: >-
      Homozygous nonsense variant carried by P1, an eight-year-old girl born to
      consanguineous parents in Argentina. No truncated IRF1 protein was
      detectable in patient fibroblasts even after IFN-gamma pretreatment and
      prolonged immunoblot exposure, establishing complete loss of function
      rather than a hypomorphic effect.
    type: nonsense
    clinical_significance: PATHOGENIC
    evidence:
    - reference: PMID:36736301
      reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
      supports: SUPPORT
      evidence_source: HUMAN_CLINICAL
      snippet: "Patient 1 (P1, kindred A) is an eight-year-old girl born to consanguineous parents originating from and living in Argentina"
      explanation: Establishes the consanguineous kindred in which this allele is homozygous.
    - reference: PMID:36736301
      reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
      supports: SUPPORT
      evidence_source: IN_VITRO
      snippet: "no truncated IRF1 protein was detected in SV40-fibroblasts from P1 after pretreatment with IFN-γ"
      explanation: Demonstrates complete absence of protein, which is what makes this loss of function rather than partial.
  - name: c.103C>T (p.Q35*)
    description: >-
      Homozygous nonsense variant carried by P2, a seven-year-old girl born to
      consanguineous parents in Turkey - an independent kindred, which is what
      makes the gene-disease relationship rest on more than a single family.
    type: nonsense
    clinical_significance: PATHOGENIC
    evidence:
    - reference: PMID:36736301
      reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
      supports: SUPPORT
      evidence_source: HUMAN_CLINICAL
      snippet: "Patient 2 (P2, kindred B) is a seven-year-old girl born to consanguineous parents originating from and living in Turkey"
      explanation: Establishes the second, independent consanguineous kindred.
  evidence:
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "We describe unrelated children with inherited complete IRF1 deficiency and early-onset, multiple, life-threatening diseases caused by weakly virulent mycobacteria and related intramacrophagic pathogens."
    explanation: Establishes IRF1 as the causal gene by linking complete deficiency to the mycobacterial phenotype in unrelated kindreds.
diagnosis:
- name: Whole-Exome Sequencing
  description: >-
    The route by which both patients were diagnosed. IRF1 deficiency
    phenocopies the upstream IFN-gamma receptor and STAT1 defects on clinical
    grounds, so sequencing rather than clinical pattern is what identifies it.
  diagnosis_term:
    preferred_term: genetic testing
    term:
      id: NCIT:C15709
      label: Genetic Testing
  evidence:
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "We performed whole-exome sequencing (WES) on the two patients."
    explanation: The diagnostic method used in both reported kindreds.
- name: IRF1 Protein Detection with Preserved Upstream Signaling
  description: >-
    The discriminating functional workup. Absent IRF1 protein on immunoblot
    after IFN-gamma pretreatment, combined with normal STAT1 phosphorylation on
    interferon stimulation, localises the defect below the receptor and below
    STAT1 - separating IRF1 deficiency from the IFNGR1, IFNGR2 and STAT1 defects
    it resembles clinically. The preserved upstream signal is what makes the
    result specific rather than merely abnormal.
  diagnosis_term:
    preferred_term: laboratory procedure
    term:
      id: NCIT:C25294
      label: Laboratory Procedure
  evidence:
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: IN_VITRO
    snippet: "no truncated IRF1 protein was detected in SV40-fibroblasts from P1 after pretreatment with IFN-γ"
    explanation: The absent-protein half of the discriminating result.
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: IN_VITRO
    snippet: "assessed by evaluating STAT1 phosphorylation after 20 minutes of stimulation with IFN-α2b and IFN-β, was normal in both patients"
    explanation: The preserved-upstream-signalling half, which localises the lesion below STAT1.
prevalence:
- population: Worldwide
  measure_type: CASES_IN_LITERATURE
  prevalence_class: ULTRA_RARE
  notes: >-
    IRF1 deficiency was described in 2023 in two unrelated children, from
    consanguineous Argentinian and Turkish kindreds. It is among the rarest
    MSMD etiologies.
  evidence:
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "We studied two unrelated children, P1 and P2."
    explanation: The complete published case count for this etiology at the time of description.
- population: Worldwide
  measure_type: POINT_PREVALENCE
  prevalence_class: BAND_1_9_PER_100000
  rate_per_100000: 1.0
  notes: >-
    Recorded for Mendelian susceptibility to mycobacterial disease as a whole,
    not for IRF1 deficiency specifically, which accounts for a small fraction of
    that total. The source states the MSMD prevalence as about 10 to the minus
    5, which is 1 in 100,000, recorded here as 1.0 per 100,000.
  evidence:
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "The prevalence of MSMD is about 10−5."
    explanation: Group-level occurrence estimate for MSMD; the notes scope it explicitly so it is not read as an IRF1-specific rate.
treatments:
- name: Broad-Spectrum Antimycobacterial Pharmacotherapy
  description: >-
    The actual day-to-day management in both reported patients, and the
    treatment that keeps them alive while the underlying defect persists. Its
    limitation is instructive: mycobacterial disease recurred despite multiple
    antimycobacterial drugs, because the drugs act on the organism while the
    macrophage remains unable to mount the IFN-gamma-induced killing programme
    that normally clears it.
  therapeutic_modality: SMALL_MOLECULE
  treatment_term:
    preferred_term: Pharmacotherapy
    term:
      id: NCIT:C15986
      label: Pharmacotherapy
  target_mechanisms:
  - target: Non-tuberculous mycobacterial infection
    description: >-
      The drugs act on the organism rather than on the host defect, so they
      suppress the infection without restoring the macrophage killing programme
      - which is why disease recurred on treatment.
    evidence:
    - reference: PMID:36736301
      reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
      supports: SUPPORT
      evidence_source: HUMAN_CLINICAL
      snippet: "despite treatment with multiple antimycobacterial drugs, and even treatment with recombinant IFN-γ in the case of P1"
      explanation: Records both that the drugs are directed at the mycobacterial disease and that they do not resolve it.
  evidence:
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "Both patients were receiving broad-spectrum antimycobacterial drugs and P1 was also receiving recombinant IFN-γ."
    explanation: Documents the antimicrobial regimen both patients were maintained on.
  - reference: PMID:36736301
    reference_title: "Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "despite treatment with multiple antimycobacterial drugs, and even treatment with recombinant IFN-γ in the case of P1"
    explanation: Records that disease recurred on this therapy, which is why it is management rather than cure.
- name: Hematopoietic Stem Cell Transplantation
  description: >-
    Because the defect is an abolished cellular response to IFN-gamma rather
    than impaired IFN-gamma production, replacing the hematopoietic compartment
    is the therapeutic route that addresses the mechanism. Reviews of MSMD
    identify transplantation, with gene therapy as a prospect, as the option
    for patients whose response to the cytokine is abolished.
  therapeutic_modality: CELL_THERAPY
  treatment_term:
    preferred_term: hematopoietic cell transplantation
    term:
      id: NCIT:C15431
      label: Hematopoietic Cell Transplantation
  target_mechanisms:
  - target: Loss of Macrophage Antimycobacterial Effector Function
    description: >-
      Donor-derived mononuclear phagocytes carry functional IRF1 and can mount
      the IFN-gamma-induced antimycobacterial programme.
  evidence:
  - reference: PMID:38025345
    reference_title: "Mendelian susceptibility to mycobacterial diseases: State of the puzzle."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "for patients with abolished response to this cytokine, hematopoietic stem cell transplantation (HSCT) and promising gene therapy are the only current therapeutic options"
    explanation: States that transplantation is the option for the abolished-response group, which is where an IRF1 defect sits.
  notes: >-
    Recombinant IFN-gamma is deliberately not listed as a treatment for this
    entry. It benefits MSMD patients whose defect is impaired IFN-gamma
    production; an IRF1 defect lies downstream of the receptor, so supplying
    more of the cytokine has no mechanistic route to restore the missing
    transcriptional response.

    Recorded so a future editor does not "correct" this omission without the
    argument: P1 was in fact receiving recombinant IFN-gamma, and mycobacterial
    disease recurred anyway. The clinical course is therefore consistent with
    the mechanistic reasoning rather than against it, and the drug is cited on
    the antimycobacterial pharmacotherapy entry above as part of the regimen
    that failed rather than as a treatment this entry endorses.
- name: Avoidance of BCG Vaccination
  description: >-
    Live attenuated BCG vaccine causes disseminated disease in MSMD and should
    be avoided once the diagnosis is known or suspected in a sibling. This is
    the agents-and-circumstances-to-avoid consideration for the disease.
  therapeutic_modality: BEHAVIORAL
  treatment_term:
    preferred_term: avoidance of BCG vaccination
    term:
      id: NCIT:C15747
      label: Supportive Care
  target_mechanisms:
  - target: Loss of Macrophage Antimycobacterial Effector Function
    description: >-
      Withholding the live vaccine removes a mycobacterial challenge the
      defective macrophage cannot contain.
  evidence:
  - reference: PMID:38025345
    reference_title: "Mendelian susceptibility to mycobacterial diseases: State of the puzzle."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "MSMD confers a selective susceptibility to infections with weakly virulent mycobacteria, including the M. bovis Bacille Calmette-Guerin (BCG) vaccines"
    explanation: Identifies BCG as a specific hazard for this patient group, which is the basis for avoiding it.
📚

References & Deep Research

References

1
Human IRF1 governs macrophagic IFN-γ immunity to mycobacteria.
No top-level findings curated for this source.

Deep Research

1

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.

Evaluations and curation notes (1)

Create: IRF1 Deficiency (immunodeficiency 117) · 2026-09-04T01:38:27Z · View source

New Disease entry for MONDO:0958011 (immunodeficiency 117), curated as IRF1 Deficiency - an MSMD etiology described in 2023. Deep research: 'just research-disorder claude_code IRF1_Deficiency' (report committed). Its validation set needs_review, and one flagged item is directly relevant: the report misquoted the central Rosain et al sentence as 'IRF1-deficient mononuclear macrophages do not control mycobacteria or related intramacrophagic pathogens normally in response to IFN-gamma', where the paper reads 'IRF1-deficient mononuclear phagocytes do not control mycobacteria and related pathogens normally when stimulated with IFN-gamma'. This entry uses the correct wording, taken from the cached abstract rather than from the report. Six terms the report named after a different ontology term (HP:0100646, HP:0410030, HP:0002960, GO:0000785, UBERON:0002370, NCIT:C1666 - the last reported as 'Interferon Gamma' but actually Tyrphostin A30) are not bound in this entry. GeneReviews baseline: searched PubMed for 'IRF1 GeneReviews[All Fields]'; no chapter exists. Phenotypes come from the primary description plus two MSMD reviews. Naming: the KB carries both conventions for these entities - gene-named (STAT2_Deficiency) and MONDO-label-named (Immunodeficiency_86, _88, _69). This entry uses the gene-named form, matching STAT2_Deficiency as the closest analogue on the same interferon axis, and records 'immunodeficiency 117' and IMD117 as synonyms so the numeric form still resolves. Flagged in the PR for a reviewer who prefers the other convention. Mechanism is curated as a chain: IRF1 Loss of Function -> Failure of the IFN-gamma-Induced Transcriptional Programme -> Loss of Macrophage Antimycobacterial Effector Function -> BCGosis / Non-tuberculous mycobacterial infection. Recorded as a CANONICAL mechanistic hypothesis (irf1_interferon_arm_asymmetry): IRF1 is induced by both interferon types yet is essential only for the IFN-gamma arm. CANONICAL rather than EMERGING because the antiviral negative is experimentally demonstrated across nine viruses in patient fibroblasts, not merely unobserved clinically. Treatment reasoning worth noting: recombinant IFN-gamma is deliberately NOT listed. It benefits MSMD patients whose defect is impaired IFN-gamma production; IRF1 sits downstream of the receptor, so supplying more cytokine has no route to restore the missing transcriptional response. That reasoning is recorded in the HSCT treatment's notes so it is not silently re-added. Scope note: 'Unusual Salmonella infection' is cited from an MSMD-wide review ('about half of them might develop non-typhoidal salmonellosis'); the phenotype description says explicitly that this is a group-level figure and that the published IRF1 cohort is too small to establish its frequency in this etiology. Validation: 'just validate' passed with 18/18 snippets verified; 'just validate-terms' passed; check-entity-refs, check-causal-targets, check-duplicate-keys, check-qualifier-terms and check-enum-values all clean. Two references fetched and committed (PMID:36736301, PMID:36867972); PMID:38025345 was already cached on main and is cited unmodified. Incidental references fetched by the deep-research validator but not cited here were removed from the diff. An initial draft used a mechanistic_hypotheses status of ESTABLISHED, which is not in the enum; both the value and the prose that named it were corrected to CANONICAL.

Claude Code ▸
IRF1 Deficiency: Comprehensive Research Report
claude-haiku-4-5-20251001, claude-sonnet-5 2026-09-04T01:36:25.046286

IRF1 Deficiency: Comprehensive Research Report

1. Disease Information

Overview. IRF1 deficiency is a recently characterized (2023) autosomal recessive inborn error of immunity caused by biallelic loss-of-function variants in IRF1 (Interferon Regulatory Factor 1). It presents as a novel genetic etiology of Mendelian Susceptibility to Mycobacterial Disease (MSMD), a heterogeneous group of inborn errors of immunity in which otherwise healthy children develop severe, disseminated disease caused by weakly virulent mycobacteria — the BCG vaccine strain (Mycobacterium bovis BCG) and environmental (nontuberculous) mycobacteria (EM) — and related "intramacrophagic" pathogens, in the absence of notable susceptibility to other classes of pathogens (PMC9907019, Rosain et al., Cell, 2023; PMID: 36736301). The defect is selective: IRF1-deficient patients show no history of severe viral disease despite documented exposure to multiple viruses, including SARS-CoV-2, distinguishing this condition mechanistically from broader antiviral interferon disorders (PMC9907019).

Key identifiers: - Gene: IRF1 (HGNC:6116), chromosome 5q31.1 - OMIM gene entry: 147575 — Interferon Regulatory Factor 1; IRF1 - OMIM phenotype: #620668 — Immunodeficiency 117 (IMD117) - Orphanet: ORPHA:699615 — "Complete IRF1 deficiency," listed under the MSMD gene/disease group (orpha.net/en/disease/gene/IRF1) - Disease category: Mendelian, primary/inborn immunodeficiency; a subtype within the MSMD spectrum (~21 known genetic etiologies) - Common synonyms/alternative names:* Immunodeficiency-117 (IMD117); Complete IRF1 deficiency; MSMD due to IRF1 deficiency; IRF1-related mycobacterial susceptibility

Evidence basis. As a disease first described in a single primary-literature report, essentially all current knowledge derives from aggregated case-series/mechanistic study data (two unrelated index patients studied in depth with genomics, immunophenotyping, transcriptomics, and cellular functional assays), rather than large-scale EHR/registry data. OMIM's clinical synopsis for IMD117 (#620668) is itself abstracted directly from this same primary report.


2. Etiology

Primary cause. IMD117 is caused by homozygous (biallelic) loss-of-function nonsense mutations in IRF1, identified in two unrelated children, each born to consanguineous parents (PMC9907019; OMIM #620668): - Patient 1: homozygous c.385C>T, p.Arg129Ter (R129X) - Patient 2 (girl): homozygous c.103C>T, p.Gln35Ter (Q35X)

Both variants were identified by whole-exome sequencing and segregated with disease in each family, consistent with autosomal recessive inheritance. Functional testing showed the R129X truncated protein still localizes to the nucleus and retains DNA-binding capacity but has no transcriptional activity; patient cells showed markedly reduced IRF1 mRNA (consistent with nonsense-mediated decay) and absent IRF1 protein, confirming a complete loss-of-function/null mechanism rather than a dominant-negative one.

Risk factors: - Genetic: Biallelic (homozygous) null variants in IRF1 are causal and fully penetrant for the mycobacterial phenotype reported to date. Consanguinity was present in both reported families, consistent with the ultra-rare autosomal recessive inheritance model and elevated homozygosity risk in consanguineous unions. - Environmental/exposure: BCG vaccination is the dominant precipitating exposure worldwide (given routinely in many countries with high TB burden), producing disseminated "BCGitis/BCGosis." Environmental (nontuberculous) mycobacteria exposure (e.g., Mycobacterium avium complex) is the other principal trigger. - No modifier genes or protective variants have yet been reported for IRF1 deficiency specifically, reflecting its very recent discovery and the extremely small number of known patients (n=2 in the founding report).

Gene-environment interaction. The disease is a classic "genotype reveals susceptibility to an otherwise low-virulence environmental/vaccine exposure" model typical of MSMD: the germline defect is silent until the child is exposed to BCG (via routine immunization) or to ubiquitous environmental mycobacteria, at which point unchecked intramacrophagic replication produces disseminated disease.


3. Phenotypes

Core clinical phenotype: early-onset, recurrent, multifocal/disseminated disease due to weakly virulent mycobacteria — both BCG (post-vaccination) and environmental mycobacteria — in patients who otherwise lack a striking susceptibility to viral, fungal, or ordinary bacterial pathogens (PMC9907019; OMIM #620668).

Phenotype characteristics: - Onset: Early childhood (infancy/early childhood), typically following BCG vaccination - Course: Recurrent, life-threatening, multifocal mycobacterial disease episodes; disease persisted/recurred despite treatment with multiple antimycobacterial drugs, indicating a severe underlying immunologic defect rather than antimicrobial resistance - Severity: Severe/life-threatening in both reported patients - Frequency: Based on n=2 patients (extremely rare); disseminated mycobacterial disease is essentially fully penetrant in the biallelic null genotype reported

Laboratory/immunologic phenotype (a distinct "laboratory abnormality" phenotype class): - Mildly impaired IFN-γ secretion by leukocytes - Impaired cellular response to IFN-γ in fibroblasts and myeloid cells, with impaired signaling downstream of STAT1 - Deficient expression of IFN-γ-inducible genes involved in immune activation and antimicrobial effector function - Impaired development of T and NK cell subsets on transcriptome analysis, with abnormal expression of NK/T developmental target genes - Normal responses to type I interferon (IFN-α/β) and normal in vitro antiviral activity against several pathogens, including SARS-CoV-2 — the key finding establishing IRF1's redundancy for antiviral immunity in humans despite being essential for antimycobacterial immunity

Quality of life impact: Not formally studied (no EQ-5D/SF-36 data available for this ultra-rare, recently described condition); qualitatively, disease burden is high given recurrent life-threatening infection episodes in early childhood requiring prolonged multidrug antimycobacterial therapy.

Suggested HPO terms: - HP:0002718 — Recurrent infections - HP:0002090 — Pneumonia (if pulmonary involvement) - HP:0100646 — Abnormal lymph node morphology / lymphadenopathy (BCGitis-associated) - HP:0410030 — Impaired lymphocyte transformation / abnormal T-cell physiology (developmental impairment of T/NK cells) - HP:0040312 — (or nearest available) susceptibility to mycobacterial infection — note: dismech curators should check for the most specific MSMD-family HPO term, as HPO's coverage of "mycobacterial disease susceptibility" is coded at varying granularity across MSMD gene entries - HP:0002960 — Autoimmunity / immune dysregulation — not reported in IRF1 deficiency to date; include only if literature review of later case reports confirms

(GeneCards reports IRF1 as linked to 38 HPO terms across multiple organ systems in aggregate gene-disease association databases, but the two published human IRF1-deficiency cases are specifically and narrowly characterized by mycobacterial/immune phenotypes; broader multi-system associations in aggregator databases likely reflect somatic/oncologic IRF1 biology rather than the germline immunodeficiency phenotype and should be curated cautiously.)


4. Genetic/Molecular Information

Causal gene: IRF1, HGNC:6116, OMIM *147575, chromosome 5q31.1.

Pathogenic variants identified to date (both from the founding report, PMC9907019 / OMIM #620668):

Variant (cDNA) Protein change Zygosity Type Consequence
c.103C>T p.Gln35Ter (Q35X) Homozygous Nonsense Loss of function, likely NMD, absent protein
c.385C>T p.Arg129Ter (R129X) Homozygous Nonsense Truncated protein; nuclear-localized, DNA-binding-competent but transcriptionally inactive; low mRNA (NMD) and absent protein in patient cells
  • Variant classification: Both variants function as complete loss-of-function (null) alleles based on segregation with a fully recessive Mendelian phenotype plus direct functional/biochemical confirmation (loss of transcriptional activity in reconstitution assays; absent protein in patient cells) — consistent with ACMG/AMP "pathogenic" classification, though formal ClinVar submission status was not independently confirmed in this research pass.
  • Origin: Both are germline variants (not somatic); both patients born of consanguineous parents, consistent with homozygosity by descent.
  • Functional consequence: Complete loss of function — no dominant-negative or gain-of-function mechanism identified. IRF1's role as a transcriptional activator downstream of IFN-γ/STAT1/GAF signaling is abolished.
  • Population allele frequency: Formal gnomAD constraint statistics (pLI/LOEUF/o-e ratio) for IRF1 were not retrievable in this pass and should be queried directly at gnomad.broadinstitute.org before curation; given IRF1's dual roles as an immune transcription factor and tumor suppressor (see below), even heterozygous LoF carriers are of interest for constraint modeling, but no disease association has been reported for heterozygous carriers of these specific null alleles.

Modifier genes: None reported specifically for IRF1 deficiency; not enough patients have been described to assess phenotypic variability or modifiers.

Somatic/oncologic genetics (distinct from the germline immunodeficiency, but relevant gene biology): IRF1 was originally identified as a candidate myeloid tumor-suppressor gene at 5q31.1, one of the most frequently deleted regions in acute myeloid leukemia (AML) and myelodysplastic syndrome (MDS), particularly del(5q)/5q− syndrome (Willman et al., Science, 1993; PMID: 8438156). IRF-1 was the only gene in the smallest commonly deleted region consistently lost (mono- or bi-allelically) across 13 leukemia/MDS cases with 5q31 aberrations. IRF-1 expression is lost in acute promyelocytic leukemia and a subset of AML with del(5)(q31) (Nature Leukemia, PMID search results). In mouse models, Irf1 loss dramatically exacerbates tumor development in HRAS-transgenic and p53-null backgrounds, establishing a functional interaction between IRF1 loss and p53-pathway tumor suppression (Genes Dev., PMID search results). This tumor-suppressor biology is mechanistically separate from — but molecularly continuous with — the germline immunodeficiency phenotype, since both derive from loss of IRF1's transcriptional activator function (in one case over growth/apoptosis genes, in the other over IFN-γ-response genes).

Epigenetic information: No disease-specific epigenetic (DNA methylation/histone modification) data for germline IRF1 deficiency were identified in this pass; IRF1 promoter hypermethylation/silencing has been studied in cancer contexts but is outside the scope of the germline immunodeficiency entry.

Chromosomal abnormalities: Not applicable to the germline immunodeficiency (point/nonsense variants only); large-scale 5q31 deletions encompassing IRF1 are a somatic/oncologic finding (see above), not a germline immunodeficiency mechanism.


5. Environmental Information

  • Environmental factors: Exposure to environmental (nontuberculous) mycobacteria (e.g., Mycobacterium avium complex, and related species such as M. fortuitum) is a primary environmental trigger of clinical disease in genetically susceptible individuals.
  • Iatrogenic/programmatic exposure: BCG vaccination, administered routinely in many countries as part of childhood immunization against tuberculosis, is the principal identified precipitant of disease onset in both reported IRF1-deficient patients, producing disseminated "BCGitis" (localized-to-disseminated M. bovis BCG disease).
  • Infectious agents implicated:
  • Mycobacterium bovis BCG vaccine strain (NCBI Taxonomy: relevant to M. bovis subsp. BCG)
  • Environmental/nontuberculous mycobacteria broadly, with M. avium complex specifically implicated in mechanistic literature on IRF1's role in macrophage control of mycobacteria (e.g., mBio 2021 study on TNF-α/IL-6 autocrine signaling inducing IRF1/IRG1 in M. avium-infected human macrophages)
  • Lifestyle factors: Not applicable/not reported — this is a pediatric, genetically determined susceptibility rather than a lifestyle-modulated condition.

6. Mechanism / Pathophysiology

Ordered causal chain

  1. Biallelic nonsense variants in IRF1 (e.g., Q35X, R129X) lead to loss of full-length IRF1 protein — via nonsense-mediated mRNA decay and/or production of a transcriptionally inert truncated protein.
  2. Following exposure to BCG or environmental mycobacteria, innate immune cells (monocytes/macrophages, NK cells) and T cells mount an IL-12/IL-23-driven IFN-γ response, which normally engages IFNGR1/IFNGR2 → JAK1/JAK2 → STAT1 (GAF complex) signaling. This upstream IFN-γ/STAT1 axis remains largely intact in IRF1 deficiency (patients show only mild impairment of IFN-γ secretion).
  3. Physiologically, GAF-activated STAT1 induces IRF1 transcription and nuclear translocation, where IRF1 binds ISRE-like motifs in target-gene promoters as the "second wave" effector of the IFN-γ response, downstream of and largely dependent on STAT1.
  4. In IRF1 deficiency, this second wave fails to occur: IRF1 loss abolishes transcriptional induction of roughly one-third of all IFN-γ-inducible mRNAs, including a large fraction of genes previously shown to be essential for cell-intrinsic immunity to intracellular pathogens (PMC9907019 — "IRF1 controlled the expression of one-third of IFN-γ-inducible mRNAs, including numerous targets previously described as essential for cell-intrinsic immunity to intracellular pathogens").
  5. Among the genes that fail to be upregulated are classical IRF1 targets encoding antimicrobial effectors and antigen-presentation machinery: inducible nitric oxide synthase (NOS2/iNOS), guanylate-binding proteins (GBP2, GBP5), the immunoproteasome subunits (PSMB9/LMP2), and the peptide transporter (TAP1), together with CIITA (the MHC class II transactivator) and components of MHC class I antigen-processing/presentation (PMC4398980; Genes & Immunity/Regulation of Tap1/Lmp2; ScienceDirect CIITA induction data).
  6. Loss of these antimicrobial effectors directly impairs the intrinsic mycobactericidal/mycobacteriostatic capacity of macrophages — this is the proximate lesion: "IRF1-deficient mononuclear macrophages do not control mycobacteria or related intramacrophagic pathogens normally in response to IFN-γ" (PMC9907019).
  7. In parallel, transcriptomic analysis of patient cells shows impaired development of T and NK cell subsets that normally secrete and respond to IFN-γ, with abnormal expression of NK/T lineage developmental target genes — recapitulating findings from Irf1-knockout mice (see Model Organisms, below), where IRF1 acts non-cell-autonomously via the bone-marrow stromal microenvironment (through IL-15 induction) to support NK-cell development, and cell-autonomously to support Th1/CD8+ T-cell differentiation and IL-12-driven maturation.
  8. The net result is a selective collapse of the "IFN-γ circuit" required to arm macrophages against intracellular mycobacteria, without compromising the largely IRF1-independent type I interferon (IFN-α/β) antiviral circuit — explaining the clinical pattern of severe, recurrent mycobacterial disease with preserved antiviral competence, including normal in vitro control of SARS-CoV-2.

Molecular pathways

IFN-γ → IFNGR1/IFNGR2 → JAK1/JAK2 → STAT1 (GAF) → IRF1 induction → IRF1 binding to ISRE/IRF-E motifs → transcription of antimicrobial and antigen-presentation genes. This sits within the broader IL-12/IL-23–IFN-γ axis that defines MSMD pathobiology generally (Frontiers Immunol. 2026 review, "IFN-γ-driven immunity collapse underlies heterogeneous infections"; PMC12255513 MSMD overview). Suggested GO terms: GO:0060333 (interferon-gamma-mediated signaling pathway), GO:0071346 (cellular response to interferon-gamma), GO:0002218 (activation of innate immune response), GO:0140374 (antiviral innate immune response — for the preserved arm).

Cellular processes

  • Failure of macrophage-intrinsic antimycobacterial killing programs (nitric oxide production, GBP-mediated vacuolar disruption of intracellular pathogens)
  • Impaired NK-cell and T-cell developmental programming
  • Preserved apoptosis/cell-death and type I IFN antiviral programs

Protein dysfunction

Complete loss of function of the IRF1 transcription factor. IRF1 possesses an N-terminal winged helix-turn-helix DNA-binding domain built from five tryptophan-rich repeats, which recognizes tandem GAAA ISRE half-site motifs (structurally defined via the 1998 IRF1-DBD/DNA crystal structure, PDB 1IF1; PMID: 9422515), and a C-terminal IRF-association domain (IAD) mediating cofactor interactions. The R129X truncation retains DNA binding but loses transactivation capacity entirely (no downstream transcription), while Q35X essentially eliminates the protein via nonsense-mediated decay — both converging on a null functional outcome.

Immune system involvement

This is fundamentally an immunodeficiency mechanism (not autoimmunity): a selective, IFN-γ-restricted intrinsic immunodeficiency of macrophages, compounded by an NK/T-cell developmental defect, producing susceptibility specifically to intramacrophagic pathogens (mycobacteria) while leaving humoral immunity, IFN-α/β antiviral immunity, and general bacterial defenses comparatively intact.

Tissue damage mechanisms

Disease manifests as granulomatous/suppurative disseminated mycobacterial lesions (lymphadenitis, osteomyelitis, and other classic BCGitis/disseminated-EM patterns typical of MSMD), reflecting failure to contain — rather than actively destructive autoinflammatory — pathology.

Molecular profiling

Transcriptome (RNA-seq) analysis of patient leukocytes/fibroblasts was central to establishing the ~1/3 reduction in IFN-γ-inducible gene induction and to demonstrating the T/NK developmental gene-expression signature (PMC9907019). No single-cell, spatial, proteomic, metabolomic, or CRISPR-screen data specific to IRF1-deficient patients were identified in this research pass; the founding paper's genome-wide IRF1 chromatin-binding data in normal cells (ChIP-seq, PMC4398980, "Genome-wide Identification of IRF1 Binding Sites Reveals Extensive Occupancy at Cell Death Associated Genes") is a relevant reference dataset for target-gene identification but was performed in reference (non-patient) cells.


7. Anatomical Structures Affected

  • Organ level (primary): Reticuloendothelial/lymphoid system (lymph nodes — BCGitis lymphadenitis), and any site of disseminated mycobacterial seeding (skin/soft tissue, bone, lung, liver, spleen), consistent with typical MSMD disease distribution.
  • Secondary organ involvement: Determined by the pattern of disseminated infection in each patient (site-specific granulomatous disease); not exhaustively itemized in available secondary sources for this research pass — primary literature (PMC9907019) should be consulted directly for patient-level organ involvement detail during curation.
  • Body systems involved: Immune system (primary); secondarily, whichever organ systems harbor disseminated mycobacterial foci.
  • Tissue/cell level: Macrophages/monocytes (the principal cell-intrinsic site of the antimycobacterial defect) and NK cells / T lymphocytes (developmental defect). Suggested Cell Ontology terms: CL:0000235 (macrophage), CL:0000576 (monocyte), CL:0000623 (natural killer cell), CL:0000084 (T cell).
  • Subcellular level: Nucleus (site of IRF1 transactivation of target genes; also site of the transcriptionally-inert truncated R129X protein); GO Cellular Component: GO:0005634 (nucleus), GO:0000785 (chromatin, where IRF1 binds ISRE elements).
  • Localization/laterality: Not applicable — systemic/disseminated pattern rather than lateralized.

Suggested UBERON terms: UBERON:0000178 (blood), UBERON:0002370 (thymus, relevant to T-cell development), UBERON:0002370/0001744 (lymph node), UBERON:0002107 (liver), UBERON:0002106 (spleen) as applicable per patient-level detail.


8. Temporal Development

  • Onset: Early childhood; disease manifested following BCG vaccination (typically administered in infancy in BCG-endemic countries), consistent with the general MSMD onset pattern of early-childhood presentation.
  • Onset pattern: Insidious-to-acute presentation of disseminated mycobacterial disease following exposure/vaccination.
  • Progression: Recurrent — both reported patients experienced recurrent, life-threatening episodes caused by multiple mycobacteria (both BCG and environmental mycobacteria), despite treatment with multiple antimycobacterial drugs, indicating a chronic, relapsing disease course rather than a single self-limited event.
  • Disease course pattern: Chronic/relapsing, driven by an underlying immunologic defect rather than antimicrobial resistance; unlike the classical progressive neurodegenerative or metabolic Mendelian disease pattern, MSMD/IRF1 deficiency is punctuated by infection episodes whose severity/frequency is a function of ongoing pathogen exposure.
  • Duration: Chronic, lifelong immunologic susceptibility (the genetic lesion is permanent); clinical episodes may remit with antimycobacterial treatment but recur on re-exposure or reactivation given the failure of intrinsic macrophage control.
  • Critical periods: Early childhood BCG vaccination represents a clear "critical exposure window" — in countries that do not administer BCG, or where BCG is delayed/omitted in known carriers, initial presentation may instead follow environmental mycobacterial exposure at a variable age.

No formal staging system, remission-pattern data, or natural-history/longitudinal cohort data exist yet for this ultra-rare, recently described condition (n=2 patients in the literature to date).


9. Inheritance and Population

  • Epidemiology: IRF1 deficiency is an ultra-rare condition; only two patients from two unrelated families have been reported in the literature to date (as of the founding 2023 report), and no population-level prevalence or incidence estimates exist. MSMD broadly is itself a rare disease group (~21 known genetic causes) with substantial but incompletely quantified global prevalence, concentrated in populations with high consanguinity rates and routine BCG vaccination programs.
  • Inheritance pattern: Autosomal recessive — both index cases were homozygous for their respective nonsense variants, each inherited from consanguineous parents, consistent with recessive segregation.
  • Penetrance: Appears complete for the mycobacterial-susceptibility phenotype in both reported homozygous patients (both alleles are functionally null), though the extremely small sample size precludes firm penetrance/expressivity estimates.
  • Expressivity: Not yet characterized due to small patient number; both patients shared the core disseminated-BCG/environmental-mycobacteria phenotype.
  • Genetic anticipation: Not applicable — nonsense variants, not a repeat-expansion mechanism.
  • Germline mosaicism: Not reported.
  • Founder effects: Not established; the two reported variants (Q35X, R129X) arose independently in unrelated consanguineous families, with no shared haplotype reported in available sources.
  • Carrier frequency: Not established in population databases for these specific null alleles at the time of this research pass; should be checked directly in gnomAD during curation.
  • Consanguinity role: Central — both reported families were consanguineous, the expected pattern for an ultra-rare autosomal recessive null-allele disease.
  • Population demographics: Insufficient data (n=2) to characterize ethnic/geographic distribution, sex ratio, or age distribution beyond noting both cases presented in early childhood consistent with the general MSMD pattern; one reported patient was female (Q35X carrier).

10. Diagnostics

  • Clinical suspicion: A child presenting with disseminated or unusually severe disease due to BCG vaccine strain or environmental/nontuberculous mycobacteria, particularly with consanguineous parentage or recurrent/refractory disease despite standard antimycobacterial therapy, should prompt evaluation for an MSMD-spectrum genetic defect.
  • Genetic testing (primary diagnostic modality):
  • Whole-exome sequencing (WES) was the method used to identify both reported causal IRF1 variants and is the appropriate first-line broad genetic test given the ~21 known and expanding list of MSMD genes.
  • Targeted MSMD/primary-immunodeficiency gene panels including IRF1, alongside the more common MSMD genes (IL12RB1, IFNGR1, IFNGR2, STAT1, IL12B, ISG15, IRF8, NEMO/IKBKG, RORC, JAK1, TYK2, SPPL2A, TBX21, etc.), are a practical clinical option.
  • Single-gene IRF1 Sanger confirmation following identification of a candidate variant, plus segregation analysis in the family.
  • Functional/immunologic testing:
  • IFN-γ secretion assays (whole-blood or PBMC stimulation) — expect mild impairment
  • Cellular response to exogenous IFN-γ (STAT1 phosphorylation and downstream target-gene induction, e.g., in fibroblasts) — expect impaired downstream (post-STAT1) signaling with intact proximal STAT1 phosphorylation, localizing the defect to the IRF1 "second wave"
  • Immunophenotyping of NK and T-cell subsets — expect reduced/abnormal NK and T-cell development on flow cytometry, correlating with the transcriptomic findings
  • IRF1 protein expression by Western blot/immunoblot in patient-derived cells — expect absent protein
  • Histopathology: Granulomatous inflammation typical of mycobacterial disease at biopsied sites (e.g., lymph node), non-specific to IRF1 deficiency per se but supportive of the overall clinical picture.
  • Differential diagnosis: Other MSMD gene defects (IL12RB1 — most common cause of AR MSMD; IFNGR1/IFNGR2 deficiency; STAT1 deficiency; IRF8 deficiency; RORC deficiency; JAK1 deficiency; complete or partial forms across this gene list) must be excluded/distinguished by genetic testing, as clinical presentations overlap substantially. IFNγR1/R2 deficiency in particular can mimic the phenotype but differs in whether IFN-γ therapy is beneficial.
  • Screening: No population-based newborn screening exists for this ultra-rare condition; genetic counseling and carrier/cascade testing in consanguineous families with an index case is the appropriate secondary-prevention measure. Given the mechanistic importance of BCG vaccination as a trigger, family history of BCG-related disease in a consanguineous kindred could in principle prompt genetic testing before vaccinating at-risk relatives, though no formal screening protocol has been published specific to IRF1.

Suggested NCIT/LOINC terms: NCIT:C15709 (Genetic Testing), general WES/panel testing codes; disease-specific IRF1 diagnostic assay codes are not yet standardized.


11. Outcome/Prognosis

  • Survival/mortality: No IRF1-deficiency-specific survival statistics exist given the tiny reported cohort (n=2); broadly, MSMD mortality ranges from ~40% to 80% depending on the severity of the underlying genetic defect (general MSMD literature, PMC12255513 overview), with complete/null genotypes (as in both reported IRF1 cases) generally correlating with more severe disease within the MSMD spectrum, though direct IRF1-specific mortality figures are not yet published.
  • Disease course: Recurrent, life-threatening mycobacterial disease episodes despite multidrug antimycobacterial therapy in both reported patients — indicating that antimicrobial therapy alone is often insufficient to fully control disease given the underlying failure of intrinsic macrophage antimycobacterial defense.
  • Complications: Disseminated granulomatous disease at multiple anatomic sites (as is typical across MSMD); specific organ-failure or long-term sequela data for IRF1 deficiency were not available in the sources reviewed here.
  • Recovery potential: Because the defect is selectively restricted to the IFN-γ/macrophage antimycobacterial axis (with preserved IFN-α/β antiviral immunity), prognosis may in principle be more favorable for this arm of immunity than for MSMD defects with broader combined immunodeficiency; however, this has not been formally studied.
  • Prognostic factors: Genotype (complete/null vs. partial loss-of-function) is the dominant prognostic determinant across the MSMD gene family generally, by analogy; both reported IRF1 variants are complete-null alleles.

12. Treatment

  • Antimycobacterial pharmacotherapy: Standard multidrug antimycobacterial regimens (e.g., combinations from rifamycins, macrolides, ethambutol, and other antimycobacterial agents used per pathogen and susceptibility) were used in both reported patients, but disease recurred despite this treatment, underscoring the need for immune-directed or curative approaches in confirmed genetic MSMD (NCIT:C15632/Chemotherapy is not the correct category — use NCIT:C15986 Pharmacotherapy for antimycobacterial drug therapy in general).
  • Interferon-gamma (IFN-γ) therapy: Recombinant human IFN-γ is used across the MSMD spectrum in patients with impaired IFN-γ production (as opposed to impaired IFN-γ response), and has been specifically noted as a treatment approach applied in IRF1 deficiency in general MSMD treatment literature, though its efficacy in a defect that acts downstream of/parallel to STAT1 signaling (rather than at the level of cytokine production) is mechanistically less clearly predicted to be curative than in cytokine-production defects — this nuance should be flagged for careful sourcing at the individual-patient level during curation. NCIT term: consider NCIT:C1666 (Interferon Gamma) as therapeutic_agent, with treatment_term NCIT:C15986 (Pharmacotherapy).
  • Hematopoietic stem cell transplantation (HSCT): Across the MSMD gene family, HSCT is the only known curative treatment, particularly indicated when the underlying defect abolishes response to IFN-γ rather than merely impairing its production (general MSMD literature; PMC/Orphanet MSMD sources). Given that IRF1 deficiency acts by abolishing the transcriptional response to IFN-γ in myeloid cells (i.e., a response defect, not solely a production defect), and given the demonstrated impairment of hematopoietic/immune cell development (T/NK cells), HSCT is mechanistically a rational candidate curative therapy, though no published outcome data for HSCT specifically in an IRF1-deficient patient were identified in this research pass.
  • Surgical/interventional: Surgical debridement/drainage of localized suppurative or abscessed mycobacterial lesions (e.g., BCGitis lymphadenitis) may be used adjunctively, as in MSMD generally (NCIT:C15329, Surgical Procedure).
  • Supportive care: General infection-related supportive care as clinically indicated.
  • Experimental/investigational: No IRF1-deficiency-specific clinical trials (NCT identifiers) were identified in this research pass; patients would likely be considered, on a compassionate/individual basis, within broader primary-immunodeficiency/MSMD HSCT protocols.
  • Treatment strategy: As with other MSMD defects, treatment algorithms hinge on distinguishing IFN-γ production defects (favoring recombinant IFN-γ) from IFN-γ response defects (favoring HSCT), and on genotype-specific severity — IRF1 deficiency, as a downstream transcriptional response defect with combined myeloid-functional and lymphoid-developmental impairment, likely sits closer to the "response defect, consider HSCT" end of this spectrum, though direct outcome evidence in IRF1-deficient patients remains to be published.

13. Prevention

  • Primary prevention: The most clinically actionable primary-prevention consideration is avoidance or deferral of BCG vaccination in infants known (by prior family genetic diagnosis) to be at risk of biallelic IRF1 (or other MSMD-gene) null variants, given that BCG vaccination was the precipitating exposure in reported cases. This mirrors established practice for other severe combined and MSMD-spectrum immunodeficiencies in which live vaccines are contraindicated.
  • Genetic counseling: Essential in consanguineous families with an index case, given the autosomal recessive inheritance and elevated recurrence risk (25% per pregnancy for parents who are both carriers); prenatal or preimplantation genetic testing may be offered where the familial variant is known.
  • Secondary prevention/screening: Cascade genetic testing of siblings/relatives in an affected consanguineous kindred, prior to BCG vaccination or other live-pathogen exposures, is the principal secondary-prevention strategy, though no formal published screening protocol specific to IRF1 deficiency exists.
  • Tertiary prevention: Prompt recognition and multidrug antimycobacterial therapy at first presentation, with early consideration of curative HSCT, to prevent recurrent/progressive disseminated disease.
  • Environmental/public health interventions: General avoidance of high-risk environmental mycobacterial exposures is a nonspecific consideration common to all MSMD patients but has not been formally studied for IRF1 deficiency specifically.

14. Other Species / Natural Disease

No naturally occurring IRF1-deficiency disease has been reported in non-human species in the sources reviewed for this report. IRF1 orthologs are broadly conserved across mammals (see Model Organisms below), and cross-species comparative-pathology or veterinary case data specific to spontaneous IRF1 loss-of-function disease were not identified in this research pass; if curating this section further, OMIA (Online Mendelian Inheritance in Animals) and veterinary case-report literature should be searched directly, as none surfaced here.


15. Model Organisms

Primary model: Irf1-knockout (Irf1⁻/⁻) mouse (JAX strain 002762), which has been extensively used to define IRF1 immune biology well before the human disease was described, and whose phenotype strongly recapitulates and mechanistically anticipates the 2023 human findings:

  • NK cell development: Irf1⁻/⁻ mice show strongly reduced NK cell numbers. Mechanistically, IRF1 acts non-cell-autonomously: it is required in the radiation-resistant bone-marrow stromal microenvironment (via induction of IL-15) to support NK-cell development, not in the NK-cell progenitors themselves — Irf1⁻/⁻ bone-marrow cells can generate functional NK cells when cultured with exogenous IL-15 (PMID: 9490414, "Requirement for IRF-1 in the microenvironment supporting development of natural killer cells"). NK-cell cytotoxicity and IFN-γ secretion (particularly after IL-12 stimulation) are abrogated.
  • T-cell/Th1 development: Irf1⁻/⁻ mice show impaired CD8+ T-cell and NK-cell maturation, impaired IL-12 production by macrophages, exclusive Th2 skewing, and defective Th1 differentiation.
  • Antigen presentation: Irf1⁻/⁻ mice lack expression of gene products involved in antigen presentation (consistent with IRF1's role in inducing TAP1, LMP2/PSMB9, and CIITA), compounding the Th1/NK/CD8 defects into a broader immunodeficient phenotype.
  • Fidelity to human disease: The mouse model recapitulates the key human findings — impaired NK/T development, impaired IL-12/IFN-γ axis function, and impaired antigen-presentation gene induction — providing strong mechanistic support (HIGH-to-MODERATE fidelity) for the human transcriptomic finding of impaired T/NK developmental gene expression. A notable divergence/translational caveat: the mouse literature identifies the NK-cell defect as stromal-microenvironment-driven (via IL-15) rather than NK-progenitor-intrinsic — whether this same non-cell-autonomous mechanism explains the T/NK developmental abnormality reported in human IRF1-deficient patients has not yet been directly tested and should be flagged as an open question (a candidate HUMAN_MODEL_MISMATCH-type consideration for dismech curation) rather than assumed.
  • Tumor-suppressor phenotype in mice: Irf1⁻/⁻ mice crossed onto HRAS-transgenic or p53⁻/⁻ backgrounds show markedly increased tumor susceptibility, supporting IRF1's tumor-suppressor role independent of, but molecularly convergent with, its immune function (Genes Dev., PMID search results).

Suggested GO/CL/NCBITaxon terms: NCBITaxon:10090 (Mus musculus); CL:0000623 (natural killer cell); CL:0000084 (T cell); GO:0032609 (interferon-gamma production); GO:0002250 (adaptive immune response).

Other model systems: No zebrafish, Drosophila, C. elegans, yeast, organoid, or iPSC-derived model systems specific to IRF1 immunodeficiency were identified in this research pass; the mouse knockout remains the dominant and best-characterized model organism for IRF1 immune function.


Summary of Key Evidence Sources

Citation Content
Rosain et al., Cell 2023 (PMC9907019 / PMID: 36736301) Founding description of human IRF1 deficiency (n=2 patients); genetics, immunology, mechanism
OMIM #620668 (Immunodeficiency 117) Clinical synopsis, molecular genetics summary (abstracts Rosain et al.)
OMIM *147575 (IRF1 gene) Gene identifiers, historical tumor-suppressor literature
Orphanet ORPHA:699615 Disease nomenclature ("Complete IRF1 deficiency")
PMC10023504 Review: "Inborn errors of human transcription factors governing IFN-γ antimycobacterial immunity" — comparative context with STAT1, IRF8, RORC deficiencies
PMC12255513 General MSMD overview: genetics, treatment (IFN-γ vs. HSCT), mortality range (40–80%)
Willman et al., Science 1993 (PMID: 8438156) IRF1 as 5q31 myeloid tumor-suppressor candidate
PMID: 9490414 Irf1⁻/⁻ mouse NK-cell developmental defect, stromal IL-15 mechanism
PMID: 9422515 (PDB 1IF1) IRF1 DNA-binding domain crystal structure
PMC4398980 Genome-wide IRF1 ChIP-seq binding site identification

Data gaps flagged for curators: (1) No published cases beyond the original two patients were identified as of this research pass — a targeted PubMed/ClinVar search closer to curation time is recommended to check for newer case reports (2024–2026). (2) gnomAD constraint metrics (pLI/LOEUF) for IRF1 should be pulled directly from the gnomAD browser. (3) HSCT outcome data specific to IRF1-deficient patients were not found and may not yet exist in the literature — do not assert HSCT efficacy in IRF1 deficiency without a direct primary-source citation. (4) Full clinical narrative detail (exact organs involved, ages, treatment timelines, and outcomes/survival status per patient) should be extracted directly from the Cell 2023 full text or its supplementary materials, which could not be fully retrieved as clean text in this research pass (proxy/CAPTCHA access issues) — curators should fetch the primary PDF directly for exact abstract quotes to support evidence snippets.

Reference Validation

Checked with linkml-reference-validator 0.2.1.

Outcome Count
References checked 8
Resolved 8
Unresolved (possible confabulation) 0
Unverifiable 0
Quoted claims checked 1
Quoted claims found in source 0
Quoted claims not found in source 1
References weighed for topical relevance 8
On topic 4
Off topic 0

Quotes not found in the cited source

Searched the abstract, any retrieved full text, and the title. A quote drawn from a part of the paper that was not retrieved will appear here too, so check before treating one as invented:

  • PMC:PMC9907019: "IRF1-deficient mononuclear macrophages do not control mycobacteria or related intramacrophagic pathogens normally in response to IFN-γ"
  • closest text in source: "Moreover, IRF1-deficient mononuclear phagocytes do not control mycobacteria and related pathogens normally when stimulated with IFN-γ"

Term Validation

Checked with linkml-term-validator 0.4.5, through the ols: adapter.

Outcome Count
Terms checked 30
Resolved 28
Unresolved (possible confabulation) 0
Obsolete 0
Unverifiable 2
Terms whose name was checked 25
Terms named correctly 15
Terms named as a different term 6
Terms whose name is worth a second look 4

Terms the report names something else

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:0100646 (1 mention) - the report calls it "Abnormal lymph node morphology / lymphadenopathy"; HP calls it Thyroiditis
  • HP:0410030 (1 mention) - the report calls it "Impaired lymphocyte transformation / abnormal T-cell physiology"; HP calls it Cleft lip
  • HP:0002960 (1 mention) - the report calls it "Autoimmunity / immune dysregulation — not reported in IRF1 deficiency to date"; HP calls it Autoimmunity
  • GO:0000785 (1 mention) - the report calls it "chromatin, where IRF1 binds ISRE elements"; GO calls it chromatin
  • UBERON:0002370 (2 mentions) - the report calls it "thymus, relevant to T-cell development"; UBERON calls it thymus
  • NCIT:C1666 (1 mention) - the report calls it "Interferon Gamma"; NCIT calls it Tyrphostin A30

Terms whose name is worth a second look

The 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:0002718 (1 mention) - the report calls it "Recurrent infections"; HP calls it Recurrent bacterial infections, and lists "Recurrent pyogenic infections" among its other names
  • GO:0071346 (1 mention) - the report calls it "cellular response to interferon-gamma"; GO calls it cellular response to type II interferon, and lists "cellular response to gamma-interferon" among its other names
  • GO:0140374 (1 mention) - the report calls it "antiviral innate immune response — for the preserved arm"; GO calls it antiviral innate immune response
  • GO:0032609 (1 mention) - the report calls it "interferon-gamma production"; GO calls it type II interferon production, and lists "interferon-gamma production" among its other names

Terms named inconsistently

The report gives these identifiers more than one name of its own:

  • HGNC:6116 - called "IRF1", "Gene:* IRF1"

Prefixes with no resolver

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: ORPHA.