Immunodeficiency 131 (IMD131; IRF4-mediated combined immunodeficiency) is an autosomal dominant combined immunodeficiency caused by a recurrent heterozygous multimorphic missense mutation, p.Thr95Arg (T95R), in the DNA-binding domain of the transcription factor interferon regulatory factor 4 (IRF4). Affected individuals present in early childhood with agammaglobulinemia and profound susceptibility to opportunistic infection, notably Pneumocystis jirovecii pneumonia. B cells show impaired maturation, decreased immunoglobulin isotype switching, and defective plasma cell differentiation; T cells show reduced TH17 and T follicular helper (TFH) populations with decreased cytokine production. The T95R substitution alters IRF4's canonical DNA-binding specificities and behaves simultaneously as a loss-of-function (hypomorph), gain-of-function (hypermorph), and neomorph, a "multimorphic" pathophysiology that dysregulates the normal IRF4 transcriptional program in lymphocytes.
Ask a research question about Immunodeficiency 131. OpenScientist will conduct autonomous deep research using the Disorder Mechanisms Knowledge Base and PubMed literature (typically 10-30 minutes).
Do not include personal health information in your question. Questions and results are cached in your browser's local storage.
Conditions with similar clinical presentations that must be differentiated from Immunodeficiency 131:
name: Immunodeficiency 131
creation_date: "2026-07-30T00:00:00Z"
category: Mendelian
disease_term:
preferred_term: immunodeficiency 131
term:
id: MONDO:0976229
label: immunodeficiency 131
description: >
Immunodeficiency 131 (IMD131; IRF4-mediated combined immunodeficiency) is an
autosomal dominant combined immunodeficiency caused by a recurrent heterozygous
multimorphic missense mutation, p.Thr95Arg (T95R), in the DNA-binding domain of
the transcription factor interferon regulatory factor 4 (IRF4). Affected
individuals present in early childhood with agammaglobulinemia and profound
susceptibility to opportunistic infection, notably Pneumocystis jirovecii
pneumonia. B cells show impaired maturation, decreased immunoglobulin isotype
switching, and defective plasma cell differentiation; T cells show reduced TH17
and T follicular helper (TFH) populations with decreased cytokine production. The
T95R substitution alters IRF4's canonical DNA-binding specificities and behaves
simultaneously as a loss-of-function (hypomorph), gain-of-function (hypermorph),
and neomorph, a "multimorphic" pathophysiology that dysregulates the normal IRF4
transcriptional program in lymphocytes.
synonyms:
- IMD131
- IRF4-mediated combined immunodeficiency
- IRF4 T95R combined immunodeficiency
- Autosomal dominant combined immunodeficiency due to IRF4 multimorphic mutation
parents:
- IRF4-related immune disorder
- Combined immunodeficiency
classifications:
harrisons_chapter:
- classification_value: IMMUNE_RHEUMATOLOGIC
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "a recurrent heterozygous mutation in IRF4, p.T95R, causing an autosomal dominant combined immunodeficiency (CID)"
explanation: IMD131 is a primary (combined) immunodeficiency, supporting placement in Harrison's immune/rheumatologic Part.
- classification_value: GENETICS_ENVIRONMENT_DISEASE
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "We report a recurrent heterozygous mutation in IRF4, p.T95R, causing an autosomal dominant combined immunodeficiency (CID) in seven patients from six unrelated families."
explanation: IMD131 is a Mendelian single-gene (IRF4) disorder, supporting placement in Harrison's genetics Part.
iuis_category:
classification_value: combined immunodeficiency
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "causing an autosomal dominant combined immunodeficiency (CID)"
explanation: >
The disorder is classified as a combined immunodeficiency (impaired
humoral and cellular immunity) in the IUIS framework.
inheritance:
- name: Autosomal dominant
description: >
IMD131 is inherited in an autosomal dominant manner; the recurrent
heterozygous IRF4 p.T95R variant is disease-causing, arising de novo or
transmitted from an affected parent.
inheritance_term:
preferred_term: Autosomal dominant inheritance
term:
id: HP:0000006
label: Autosomal dominant inheritance
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "a recurrent heterozygous mutation in IRF4, p.T95R, causing an autosomal dominant combined immunodeficiency (CID)"
explanation: Establishes autosomal dominant inheritance from the heterozygous IRF4 T95R variant.
prevalence:
- population: Worldwide
measure_type: CASES_IN_LITERATURE
prevalence_class: ULTRA_RARE
notes: >
Ultra-rare. The defining cohort comprised seven patients from six unrelated
families; no population prevalence/incidence estimate has been established.
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "causing an autosomal dominant combined immunodeficiency (CID) in seven patients from six unrelated families"
explanation: >
Establishes the ultra-rare, cases-in-literature occurrence (7 patients /
6 families in the defining cohort).
genetic:
- name: IRF4
gene_term:
preferred_term: IRF4
term:
id: hgnc:6119
label: IRF4
relationship_type: CAUSATIVE
notes: >
A single recurrent heterozygous missense variant, c.284C>G (p.Thr95Arg;
T95R), located in the IRF4 DNA-binding domain, causes IMD131. The variant is
multimorphic: it binds DNA with higher affinity than wild-type IRF4
(hypermorph), yet has reduced transcriptional activity on canonical IRF4
target genes (hypomorph), while also binding noncanonical DNA sites and
inducing genes not activated by wild-type IRF4 (neomorph).
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "We report a recurrent heterozygous mutation in IRF4, p.T95R, causing an autosomal dominant combined immunodeficiency (CID) in seven patients from six unrelated families."
explanation: >
Establishes the recurrent heterozygous IRF4 p.T95R variant as the cause
of autosomal dominant combined immunodeficiency (IMD131).
pathophysiology:
- name: IRF4 T95R Multimorphic DNA-Binding Alteration
biological_scale: MOLECULAR
description: >
The heterozygous p.T95R substitution maps to the IRF4 DNA-binding domain and
alters the transcription factor's canonical DNA-binding specificities. It
increases DNA-binding affinity relative to wild-type IRF4 (hypermorph) and
confers binding to noncanonical DNA sites — with the highest preference for a
noncanonical GATA sequence — driving a simultaneous combination of loss,
gain, and new (neomorphic) functions.
molecular_functions:
- preferred_term: DNA-binding transcription factor activity
term:
id: GO:0003700
label: DNA-binding transcription factor activity
modifier: ABNORMAL
downstream:
- target: Dysregulated IRF4 Transcriptional Program
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "The IRF4T95R variant maps to the TF's DNA binding domain, alters its canonical DNA binding specificities, and results in a simultaneous multimorphic combination of loss, gain, and new functions for IRF4."
explanation: >
Localizes the variant to the DNA-binding domain and defines the
multimorphic mechanism (loss + gain + new function).
- reference: PMID:37683642
reference_title: "Molecular basis for the functional roles of the multimorphic T95R mutation of IRF4 causing human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: "We found that compared to IRF4-DBDWT, IRF4-DBDT95R exhibits higher binding affinities for both canonical and noncanonical DNAs, with the highest preference for the noncanonical GATA sequence."
explanation: >
Biochemical/structural characterization of the altered DNA-binding
affinity and specificity of the T95R DNA-binding domain.
- name: Dysregulated IRF4 Transcriptional Program
biological_scale: MOLECULAR
description: >
Despite higher DNA-binding affinity, IRF4 T95R shows reduced transcriptional
activity on canonical IRF4 target genes (hypomorphic activity) while
neomorphically inducing a distinct set of genes not activated by wild-type
IRF4. The net effect is a dysregulated IRF4-dependent gene-expression program
that disrupts normal lymphocyte biology.
downstream:
- target: Impaired B Cell Maturation and Plasma Cell Differentiation
- target: Impaired T Cell Differentiation
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: "Despite this increased affinity for DNA, the transcriptional activity on IRF4 canonical genes was reduced, showcasing a hypomorphic activity of IRF4T95R."
explanation: >
Documents the hypomorphic transcriptional output on canonical genes
despite increased DNA binding, from in vitro reporter/transcriptional assays.
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: "IRF4T95R functions as a neomorph by binding to noncanonical DNA sites to alter the gene expression profile, including the transcription of genes exclusively induced by IRF4T95R but not by IRF4WT."
explanation: >
Documents the neomorphic gene-expression changes that dysregulate the
IRF4 program.
- name: Impaired B Cell Maturation and Plasma Cell Differentiation
biological_scale: CELLULAR
description: >
IRF4 is a master regulator of the germinal-center exit, immunoglobulin
class-switch recombination, and plasma-cell differentiation program. In
IMD131, patient B cells show impaired maturation, decreased immunoglobulin
isotype switching, and defective plasma cell differentiation, culminating in
agammaglobulinemia.
cell_types:
- preferred_term: B cell
term:
id: CL:0000236
label: B cell
- preferred_term: plasma cell
term:
id: CL:0000786
label: plasma cell
biological_processes:
- preferred_term: immunoglobulin isotype switching
term:
id: GO:0045190
label: isotype switching
modifier: DECREASED
- preferred_term: plasma cell differentiation
term:
id: GO:0002317
label: plasma cell differentiation
modifier: DECREASED
downstream:
- target: Agammaglobulinemia (Absent Antibody Production)
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Patients' B cells showed impaired maturation, decreased immunoglobulin isotype switching, and defective plasma cell differentiation"
explanation: >
Directly documents the B-cell maturation, class-switch, and plasma-cell
differentiation defects.
- name: Impaired T Cell Differentiation
biological_scale: CELLULAR
description: >
IRF4 directs the differentiation of multiple effector T-cell lineages. In
IMD131, patient T cells contain reduced TH17 and T follicular helper (TFH)
populations and exhibit decreased cytokine production, impairing T-cell help
for humoral immunity and mucosal defense.
cell_types:
- preferred_term: T-helper 17 cell
term:
id: CL:0000899
label: T-helper 17 cell
- preferred_term: T follicular helper cell
term:
id: CL:0002038
label: T follicular helper cell
biological_processes:
- preferred_term: T-helper 17 cell differentiation
term:
id: GO:0072539
label: T-helper 17 cell differentiation
modifier: DECREASED
- preferred_term: T follicular helper cell differentiation
term:
id: GO:0061470
label: T follicular helper cell differentiation
modifier: DECREASED
downstream:
- target: Opportunistic Infection Susceptibility
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "their T cells contained reduced TH17 and TFH populations and exhibited decreased cytokine production"
explanation: >
Directly documents the reduced TH17/TFH populations and decreased
cytokine production.
- name: Agammaglobulinemia (Absent Antibody Production)
biological_scale: ORGANISM
description: >
Failure of the terminal B-cell/plasma-cell program produces agammaglobulinemia
— a near-complete absence of circulating antibody — the key humoral
mechanistic intermediate between the B-cell differentiation defect and the
clinical infection susceptibility.
downstream:
- target: Opportunistic Infection Susceptibility
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "presented with agammaglobulinemia"
explanation: >
Documents agammaglobulinemia as the humoral output failure downstream of
the impaired B-cell/plasma-cell program.
- name: Opportunistic Infection Susceptibility
biological_scale: ORGANISM
description: >
The combined loss of antibody (agammaglobulinemia) and impaired T-cell help
produces profound susceptibility to opportunistic infections, most
characteristically Pneumocystis jirovecii pneumonia — the clinical hallmark of
the combined immunodeficiency.
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "The patients exhibited profound susceptibility to opportunistic infections, notably Pneumocystis jirovecii, and presented with agammaglobulinemia."
explanation: >
Documents profound susceptibility to opportunistic infection (notably
Pneumocystis jirovecii) as the clinical consequence.
phenotypes:
- name: Combined immunodeficiency
description: >
Combined defect of humoral (B-cell/antibody) and cellular (T-cell) immunity.
phenotype_term:
preferred_term: Combined immunodeficiency
term:
id: HP:0005387
label: Combined immunodeficiency
onset:
onset_category: INFANTILE
notes: Very early onset, often within the first year of life.
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "a recurrent heterozygous mutation in IRF4, p.T95R, causing an autosomal dominant combined immunodeficiency (CID)"
explanation: Establishes combined immunodeficiency as the core phenotype.
- name: Agammaglobulinemia
description: >
Marked reduction or absence of circulating immunoglobulins due to defective
B-cell maturation and plasma-cell differentiation.
phenotype_term:
preferred_term: Agammaglobulinemia
term:
id: HP:0004432
label: Agammaglobulinemia
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "presented with agammaglobulinemia"
explanation: Directly documents agammaglobulinemia in patients.
- name: Pneumocystis jirovecii pneumonia
description: >
Opportunistic Pneumocystis jirovecii pneumonia, a hallmark opportunistic
infection reflecting the combined immunodeficiency.
phenotype_term:
preferred_term: Pneumocystis jirovecii pneumonia
term:
id: HP:0020102
label: Pneumocystis jirovecii pneumonia
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "profound susceptibility to opportunistic infections, notably Pneumocystis jirovecii"
explanation: Documents Pneumocystis jirovecii as the notable opportunistic infection.
- name: Recurrent infections
description: >
Profound susceptibility to recurrent and opportunistic infections from early
childhood.
phenotype_term:
preferred_term: Recurrent infections
term:
id: HP:0002719
label: Recurrent infections
onset:
onset_category: INFANTILE
notes: Susceptibility to infection manifests in early childhood/infancy.
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "The patients exhibited profound susceptibility to opportunistic infections"
explanation: Documents profound susceptibility to (recurrent) opportunistic infections.
- name: Abnormal B cell physiology
description: >
Impaired B-cell maturation with decreased immunoglobulin isotype switching
and defective plasma cell differentiation.
phenotype_term:
preferred_term: Abnormal B cell physiology
term:
id: HP:0005372
label: Abnormal B cell physiology
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Patients' B cells showed impaired maturation, decreased immunoglobulin isotype switching, and defective plasma cell differentiation"
explanation: Documents the abnormal B-cell physiology.
- name: Decreased total B cell count
description: >
Persistent B-cell lymphopenia reflecting the impaired B-cell maturation
program, reported in a pediatric IRF4-mutation combined immunodeficiency case.
phenotype_term:
preferred_term: B-cell lymphopenia
term:
id: HP:0010976
label: Decreased total B cell count
evidence:
- reference: PMID:40274250
reference_title: "Allogeneic hematopoietic stem cell transplantation in a patient with combined immunodeficiency caused by IRF4 mutation."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Laboratory evaluation revealed hypoglobulinemia and persistent B-cell lymphopenia."
explanation: Documents persistent B-cell lymphopenia in an IRF4-mutation combined immunodeficiency patient.
- name: Recurrent pneumonia
description: >
Recurrent pneumonia among the recurrent respiratory infections seen in
IRF4-mediated combined immunodeficiency.
phenotype_term:
preferred_term: Recurrent pneumonia
term:
id: HP:0006532
label: Recurrent pneumonia
evidence:
- reference: PMID:40274250
reference_title: "Allogeneic hematopoietic stem cell transplantation in a patient with combined immunodeficiency caused by IRF4 mutation."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "We report a pediatric case involving a male patient who presented with recurrent pneumonia, chronic diarrhoea, abdominal pain, and a skin rash."
explanation: Documents recurrent pneumonia in an IRF4-mutation combined immunodeficiency patient.
- name: Chronic diarrhea
description: >
Chronic diarrhea / enteropathy has been reported in IRF4-mediated combined
immunodeficiency and resolved after hematopoietic stem cell transplantation.
phenotype_term:
preferred_term: Chronic diarrhea
term:
id: HP:0002028
label: Chronic diarrhea
evidence:
- reference: PMID:40274250
reference_title: "Allogeneic hematopoietic stem cell transplantation in a patient with combined immunodeficiency caused by IRF4 mutation."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "We report a pediatric case involving a male patient who presented with recurrent pneumonia, chronic diarrhoea, abdominal pain, and a skin rash."
explanation: Documents chronic diarrhea/enteropathy in an IRF4-mutation combined immunodeficiency patient.
- name: Skin rash
description: >
Skin rash reported in a pediatric IRF4-mutation combined immunodeficiency case.
phenotype_term:
preferred_term: Skin rash
term:
id: HP:0000988
label: Skin rash
evidence:
- reference: PMID:40274250
reference_title: "Allogeneic hematopoietic stem cell transplantation in a patient with combined immunodeficiency caused by IRF4 mutation."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "We report a pediatric case involving a male patient who presented with recurrent pneumonia, chronic diarrhoea, abdominal pain, and a skin rash."
explanation: Documents skin rash in an IRF4-mutation combined immunodeficiency patient.
animal_models:
- species: Mouse (Mus musculus)
genotype: Heterozygous Irf4 T95R knock-in
category: Knock-in
description: >
A knock-in mouse model carrying heterozygous Irf4 T95R shows a severe defect
in antibody production at steady state and after immunization, recapitulating
the combined immunodeficiency seen in patients.
genes:
- preferred_term: Irf4
term:
id: hgnc:6119
label: IRF4
associated_phenotypes:
- Severe defect in antibody production
evidence:
- reference: PMID:36662884
reference_title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
supports: SUPPORT
evidence_source: MODEL_ORGANISM
snippet: "A knock-in mouse model of heterozygous T95R showed a severe defect in antibody production both at the steady state and after immunization with different types of antigens, consistent with the CID observed in these patients."
explanation: >
Model-organism recapitulation of the antibody-production defect
supporting the causal role of T95R.
treatments:
- name: Immunoglobulin Replacement Therapy
description: >
Replacement immunoglobulin (IVIG/SCIG) to correct agammaglobulinemia and
reduce infection burden, a mainstay of management for antibody-deficient
combined immunodeficiency.
notes: >
Standard-of-care extrapolation for antibody-deficient combined
immunodeficiency; not specifically trialed in IMD131. One reported IMD131
proband received IVIG (PMID:36662884 cohort / associated case reports).
therapeutic_modality: PROTEIN_REPLACEMENT
treatment_term:
preferred_term: immunoglobulin replacement therapy
term:
id: NCIT:C62710
label: Immunoglobulin Therapy
target_mechanisms:
- target: Agammaglobulinemia (Absent Antibody Production)
treatment_effect: BYPASSES
description: >
Exogenous immunoglobulin supplies the antibody the patient cannot
produce, bypassing the agammaglobulinemia rather than correcting the
underlying B-cell defect.
- name: Antimicrobial Prophylaxis
description: >
Prophylaxis against opportunistic infection, including anti-Pneumocystis
jirovecii prophylaxis (typically trimethoprim-sulfamethoxazole), given the
profound susceptibility to opportunistic pathogens.
notes: >
Standard-of-care extrapolation from combined-immunodeficiency management
(anti-Pneumocystis prophylaxis); not specifically trialed in IMD131.
therapeutic_modality: SMALL_MOLECULE
treatment_term:
preferred_term: antimicrobial prophylaxis
term:
id: NCIT:C15986
label: Pharmacotherapy
therapeutic_agent:
- preferred_term: trimethoprim
term:
id: CHEBI:45924
label: trimethoprim
- preferred_term: sulfamethoxazole
term:
id: CHEBI:9332
label: sulfamethoxazole
- name: Hematopoietic Stem Cell Transplantation
description: >
Allogeneic hematopoietic stem cell transplantation is the potentially
curative option for severe combined immunodeficiency phenotypes.
treatment_term:
preferred_term: allogeneic hematopoietic stem cell transplantation
term:
id: NCIT:C46089
label: Allogeneic Hematopoietic Stem Cell Transplantation
therapeutic_modality: CELL_THERAPY
target_mechanisms:
- target: Impaired B Cell Maturation and Plasma Cell Differentiation
treatment_effect: RESTORES
description: >
Donor-derived hematopoiesis replaces the IRF4-mutant lymphoid
compartment, restoring normal B-cell maturation and antibody production
(reported immune reconstitution).
- target: Impaired T Cell Differentiation
treatment_effect: RESTORES
description: >
Donor-derived hematopoiesis restores the normal T-cell effector
differentiation program (reported immune reconstitution).
evidence:
- reference: PMID:40274250
reference_title: "Allogeneic hematopoietic stem cell transplantation in a patient with combined immunodeficiency caused by IRF4 mutation."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "the patient successfully underwent allogeneic hematopoietic stem cell transplantation (HSCT) from an unrelated donor using a reduced-toxicity conditioning regimen. Post-transplant follow-up demonstrated successful immune reconstitution and complete resolution of gastrointestinal symptoms."
explanation: >
Clinical evidence that allogeneic HSCT reconstitutes the immune system
and resolves enteropathy in an IRF4-mutation combined immunodeficiency patient.
diagnosis:
- name: Molecular genetic testing
description: >
Definitive diagnosis rests on molecular identification of the heterozygous
IRF4 variant (recurrent p.T95R) by gene-panel or exome sequencing in a patient
with combined immunodeficiency.
diagnosis_term:
preferred_term: molecular genetic testing
term:
id: NCIT:C19770
label: Molecular Analysis
evidence:
- reference: PMID:40274250
reference_title: "Allogeneic hematopoietic stem cell transplantation in a patient with combined immunodeficiency caused by IRF4 mutation."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Genetic analysis confirmed that the combined immunodeficiency was caused by an IRF4 mutation."
explanation: >
Genetic testing to identify the causal IRF4 variant establishes the
diagnosis.
- name: Lymphocyte immunophenotyping
description: >
Flow-cytometric immunophenotyping supports the diagnosis by demonstrating the
characteristic humoral and cellular defects — reduced/absent circulating
immunoglobulins, persistent B-cell lymphopenia with impaired B-cell
maturation, and reduced TH17/TFH populations.
diagnosis_term:
preferred_term: lymphocyte immunophenotyping
term:
id: NCIT:C16585
label: Flow Cytometry
evidence:
- reference: PMID:40274250
reference_title: "Allogeneic hematopoietic stem cell transplantation in a patient with combined immunodeficiency caused by IRF4 mutation."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Laboratory evaluation revealed hypoglobulinemia and persistent B-cell lymphopenia."
explanation: >
Immunophenotyping/laboratory evaluation demonstrates the hypogammaglobulinemia
and B-cell lymphopenia supporting the diagnosis.
differential_diagnoses:
- name: IRF4 haploinsufficiency (Whipple's disease susceptibility)
description: >
A distinct IRF4-related immune disorder in which IRF4 haploinsufficiency (e.g.
the hypomorphic p.R25S variant, without negative dominance) predisposes to
Whipple's disease (Tropheryma whipplei) with otherwise normal immunity — in
contrast to the multimorphic, negatively-dominant T95R variant that causes the
combined immunodeficiency of IMD131.
distinguishing_features:
- IMD131 is caused by the multimorphic (loss + gain + neomorphic) negatively-dominant T95R variant; IRF4 haploinsufficiency is a simple hypomorphic loss-of-function without negative dominance.
- IMD131 produces broad combined immunodeficiency with agammaglobulinemia and opportunistic infection; IRF4 haploinsufficiency shows narrow susceptibility to Whipple's disease with otherwise intact immunity.
evidence:
- reference: PMID:41424747
reference_title: "IRF4 haploinsufficiency in a multiplex family with Whipple's disease."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "This variant was hypomorphic for DNA binding and transcription induction. It did not exert negative dominance."
explanation: >
Contrasts the simple hypomorphic, non-dominant IRF4 haploinsufficiency
mechanism with the multimorphic negatively-dominant T95R mechanism of IMD131.
- name: IRF4 F359L neomorphic dominant primary immunodeficiency
description: >
A separate autosomal dominant IRF4 primary immunodeficiency caused by the
p.Phe359Leu (F359L) variant in the interferon activation domain (not the
DNA-binding domain). It produces childhood hypogammaglobulinemia with
defective plasma cell differentiation and abnormal T-cell subsets via a
neomorphic mechanism acting at interferon-stimulated response elements (ISREs),
distinct from the DNA-binding-domain T95R multimorphic mechanism of IMD131.
distinguishing_features:
- The F359L variant lies in the interferon activation domain and acts neomorphically at ISREs; the IMD131 T95R variant lies in the DNA-binding domain and is multimorphic (hyper-/hypo-/neomorphic) at canonical and noncanonical DNA sites.
- F359L presents with hypogammaglobulinemia (not full agammaglobulinemia) and defective plasma-cell differentiation; IMD131 presents with agammaglobulinemia and prominent Pneumocystis susceptibility.
evidence:
- reference: PMID:36917008
reference_title: "A neomorphic mutation in the interferon activation domain of IRF4 causes a dominant primary immunodeficiency."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Our findings highlight a novel mechanism for autosomal-dominant primary immunodeficiency through altered protein binding by mutant IRF4 at ISRE, leading to defective plasma cell differentiation."
explanation: >
Documents the distinct ISRE-acting neomorphic mechanism of the F359L
allelic IRF4 immunodeficiency, differentiating it from the DNA-binding-domain
T95R mechanism of IMD131.
references:
- reference: PMID:36662884
title: "A multimorphic mutation in IRF4 causes human autosomal dominant combined immunodeficiency."
- reference: PMID:37683642
title: "Molecular basis for the functional roles of the multimorphic T95R mutation of IRF4 causing human autosomal dominant combined immunodeficiency."
- reference: PMID:40274250
title: "Allogeneic hematopoietic stem cell transplantation in a patient with combined immunodeficiency caused by IRF4 mutation."
- reference: PMID:41424747
title: "IRF4 haploinsufficiency in a multiplex family with Whipple's disease."
- reference: PMID:36917008
title: "A neomorphic mutation in the interferon activation domain of IRF4 causes a dominant primary immunodeficiency."
Question: You are an expert researcher providing comprehensive, well-cited information.
Provide detailed information focusing on: 1. Key concepts and definitions with current understanding 2. Recent developments and latest research (prioritize 2023-2024 sources) 3. Current applications and real-world implementations 4. Expert opinions and analysis from authoritative sources 5. Relevant statistics and data from recent studies
Format as a comprehensive research report with proper citations. Include URLs and publication dates where available. Always prioritize recent, authoritative sources and provide specific citations for all major claims.
Please provide a comprehensive research report on Immunodeficiency 131 covering all of the disease characteristics listed below. This report will be used to populate a disease knowledge base entry. Be thorough and cite primary literature (PMID preferred) for all claims.
For each section, suggested databases/resources are listed. These are the first places you should search for information on each topic.
Search first: OMIM, Orphanet, ICD-10/ICD-11, MeSH, PubMed
Search first: PubMed, Cochrane Library, UpToDate, clinical guidelines, ClinVar, ClinGen, GWAS Catalog, PheGenI, CTD, CDC, WHO, epidemiological databases
Search first: PubMed, Cochrane Library, clinical trial databases, GWAS Catalog, gnomAD, WHO, CDC, nutrition databases
Search first: CTD, PubMed, PheGenI, GxE databases
Search first: HPO (Human Phenotype Ontology), OMIM, Orphanet, PubMed, clinicaltrials.gov, MedDRA, SNOMED CT, DECIPHER, LOINC
For each phenotype, provide: - Phenotype type: symptoms, clinical signs, physical manifestations, behavioral changes, or laboratory abnormalities
For symptoms/signs: HPO, OMIM, Orphanet, PubMed For behavioral changes: HPO, DSM, RDoC (Research Domain Criteria), PubMed For laboratory abnormalities: LOINC, SNOMED CT, LabTests Online, PubMed - Phenotype characteristics: Search first: OMIM, Orphanet, HPO, PubMed - Age of symptom onset (neonatal, childhood, adult-onset, late-onset) - Symptom severity (mild, moderate, severe, variable) - Symptom progression (stable, progressive, episodic, fluctuating) - Frequency among affected individuals (percentage or qualitative) - Quality of life impact: Effects on daily functioning and well-being (per-phenotype when possible) Search first: EQ-5D database, SF-36, WHO QOL databases, PubMed - Suggest HPO (Human Phenotype Ontology) terms for each phenotype
Search first: OMIM, ClinVar, HGMD, Ensembl, NCBI Gene
Search first: ENCODE, Roadmap Epigenomics, MethBase, DiseaseMeth
Search first: DECIPHER, ClinVar, ECARUCA, UCSC Genome Browser
Search first: CTD (Comparative Toxicogenomics Database), TOXNET, PubMed, EPA databases
Search first: CDC databases, WHO, PubMed, NHANES
Search first: NCBI Taxonomy, ViPR, BV-BRC, MicrobeDB, GIDEON
Search first: KEGG, Reactome, WikiPathways, PathBank, BioCyc
Search first: Gene Ontology (GO), Reactome, KEGG, PubMed
Search first: UniProt, PDB (Protein Data Bank), InterPro, Pfam, AlphaFold
Search first: KEGG, BioCyc, HMDB (Human Metabolome Database), BRENDA
Search first: ImmPort, Immunome Database, IEDB, Gene Ontology
Search first: PubMed, Gene Ontology, Reactome
Search first: BRENDA, UniProt, KEGG, OMIM, PubMed
Search first: ENCODE, Roadmap Epigenomics, MethBase, DiseaseMeth
For each mechanism, describe: - The causal chain from initial trigger to clinical manifestation - Which mechanisms are upstream vs downstream - What cell types and biological processes are involved - Suggest GO terms for biological processes and CL terms for cell types
Search first: Uberon, FMA (Foundational Model of Anatomy), OMIM, HPO, ICD-11, MeSH, SNOMED CT
Search first: Uberon, Human Protein Atlas, Cell Ontology, Human Cell Atlas, CellMarker, PanglaoDB
Search first: Gene Ontology (Cellular Component), UniProt, Human Protein Atlas
Search first: OMIM, Orphanet, HPO, PubMed
Search first: Disease registries, longitudinal cohort databases, natural history studies, PubMed, Orphanet, OMIM
Search first: Orphanet, CDC, WHO, GBD (Global Burden of Disease), national registries, SEER, disease registries
Search first: GTR (Genetic Testing Registry), GeneReviews, ClinGen
For each treatment, suggest MAXO (Medical Action Ontology) terms where applicable.
Search first: CDC vaccine schedules, WHO immunization, FDA vaccine database
Search first: CDC, WHO, behavioral intervention databases, Cochrane Library
Search first: NSGC resources, ACMG guidelines, GeneReviews
Search first: Clinical guidelines, FDA approvals, PubMed
Search first: NCBI Taxonomy
Search first: VBO (Vertebrate Breed Ontology)
Search first: NCBI Gene
Structure your response as a comprehensive narrative organized by the sections above. For each section, provide: - Factual content with specific details (numbers, percentages, gene names, variant nomenclature) - Ontology term suggestions (HPO, GO, CL, UBERON, CHEBI, MAXO, MONDO) where applicable - Evidence citations with PMIDs - Direct quotes from abstracts to support key claims - Clear indication when information is not available or not applicable for this disease
This report will be used to populate a disease knowledge base entry with: - Pathophysiology descriptions with causal chains - Gene/protein annotations (HGNC, GO terms) - Phenotype associations (HP terms) with frequencies - Cell type involvement (CL terms) - Anatomical locations (UBERON terms) - Chemical entities (CHEBI terms) - Treatment annotations (MAXO terms) - Evidence items with PMIDs and exact abstract quotes - Epidemiology, prognosis, diagnostic, and prevention information - Animal model descriptions with phenotype recapitulation details
Immunodeficiency 131 (MONDO:0976229) is an ultra-rare, Mendelian inborn error of immunity associated with heterozygous pathogenic variation in IRF4, encoding interferon regulatory factor 4. The strongest match to this numbered disease entity is the severe, infantile-onset disorder caused by recurrent IRF4 c.284C>G (p.Thr95Arg; p.T95R), named multimorphic IRF4 combined immunodeficiency (MICI). It was defined in seven affected individuals from six unrelated families in 2023. Open Targets lists IRF4 as the sole associated target for MONDO:0976229 and links the association to PMID 36662884 and subsequent IRF4 reports. (OpenTargets Search: Immunodeficiency 131, fornes2023amultimorphicmutation pages 2-4)
Two other IRF4 allelic disorders must be distinguished from core p.T95R disease:
Because only seven p.T95R patients were reported in the defining cohort, percentages should not be interpreted as population estimates. Most evidence is aggregated disease-level evidence from research cohorts, pedigrees, and experimental assays—not individual EHR data.
| Domain | Evidence-based finding | Suggested ontology annotations | Best source/date |
|---|---|---|---|
| Identity / identifier | Immunodeficiency 131 is linked to IRF4 and represented in Open Targets as MONDO:0976229. The best-supported core phenotype for this entry is the 2023 autosomal dominant combined immunodeficiency caused by recurrent IRF4 p.T95R, termed multimorphic IRF4 CID (MICI). Distinct allelic IRF4 disorders include F359L dominant primary immunodeficiency/antibody deficiency and R98W haploinsufficiency with Whipple disease susceptibility, which should not be conflated with MICI. (OpenTargets Search: Immunodeficiency 131, fornes2023amultimorphicmutation pages 9-10, fornes2023amultimorphicmutation pages 26-29) | MONDO:0976229; gene: IRF4; suggested disease label: combined immunodeficiency | Open Targets disease-target evidence (accessed via tool context; MONDO association) and Fornes et al., Sci Immunol, Jan 2023 (OpenTargets Search: Immunodeficiency 131, fornes2023amultimorphicmutation pages 9-10) |
| Causal variant and inheritance | Core MICI: recurrent heterozygous IRF4 c.284C>G (p.T95R) in the DNA-binding domain; autosomal dominant, apparently fully penetrant in reported cases; mostly de novo, with one mosaic mother reported. Variant absent from control databases in the cited summaries. Allelic disorders: F359L (c.1075T>C) in the interferon activation domain causes dominant antibody/CID phenotype; R98W causes haploinsufficiency predisposing to Whipple disease with incomplete penetrance. (fornes2023amultimorphicmutation pages 2-4, fornes2023amultimorphicmutation pages 9-10, thouenon2023aneomorphicmutation pages 14-15, constantine2020recentadvancesin pages 3-4) | SO: missense_variant; HP: Autosomal dominant inheritance; gene region suggestion: DNA-binding domain / interferon activation domain | Fornes et al., Sci Immunol, Jan 2023; Thouenon et al., J Exp Med, Mar 2023; Constantine & Lionakis review, Apr 2020 (fornes2023amultimorphicmutation pages 2-4, thouenon2023aneomorphicmutation pages 14-15, constantine2020recentadvancesin pages 3-4) |
| Cohort and onset | Core MICI: 7 patients from 6 unrelated families, with very early onset, often <1 year. One detailed proband presented at 11 months with respiratory failure/infections. F359L: 3 patients across 2 generations; childhood-onset hypogammaglobulinemia, index case symptomatic by 6 months and diagnosed by 11 months. R98W Whipple susceptibility: kindred data summarized as 4 Whipple disease patients among 12 heterozygous carriers; adult onset around mean 55–58 years. (fornes2023amultimorphicmutation pages 2-4, jia2023functionalandbiochemical pages 39-44, thouenon2023aneomorphicmutation pages 2-4, constantine2020recentadvancesin pages 3-4) | HP: Infantile onset; HP: Adult onset; HP: Recurrent infections | Fornes et al., Jan 2023; Thouenon et al., Mar 2023; review summarizing Guérin et al., Apr 2020 (fornes2023amultimorphicmutation pages 2-4, thouenon2023aneomorphicmutation pages 2-4, constantine2020recentadvancesin pages 3-4) |
| Infections | Core MICI: profound susceptibility to opportunistic infections, especially Pneumocystis jirovecii pneumonia, severe viral infections (CMV, EBV), weakly pathogenic mycobacteria including BCG / Mycobacterium bovis, recurrent sinopulmonary infection, and chronic diarrhea. F359L: recurrent ENT and other infections including meningococcal infection, Giardia lamblia, CMV, disseminated varicella zoster virus, fungal infections, Bartonella henselae, conjunctivitis, molluscum contagiosum, and onychomycosis/cutaneous fungal disease. R98W: predisposition is specifically linked to Tropheryma whipplei / Whipple disease and chronic carriage. (fornes2023amultimorphicmutation pages 2-4, jia2023functionalandbiochemical pages 39-44, thouenon2023aneomorphicmutation pages 4-5, constantine2020recentadvancesin pages 3-4) | NCBITaxon: Pneumocystis jirovecii, CMV, EBV, Mycobacterium bovis, Giardia lamblia, Tropheryma whipplei; HP: Opportunistic infections; HP: Recurrent respiratory infections | Fornes et al., Jan 2023; Jia thesis summary, Jan 2023; Thouenon et al., Mar 2023; Constantine & Lionakis, Apr 2020 (fornes2023amultimorphicmutation pages 2-4, jia2023functionalandbiochemical pages 39-44, thouenon2023aneomorphicmutation pages 4-5, constantine2020recentadvancesin pages 3-4) |
| Immune phenotype | Core MICI: agammaglobulinemia or near-complete antibody deficiency with markedly reduced IgG/IgA/IgM, reduced CD19+ B cells, increased naïve B cells, reduced class-switched memory B cells, decreased plasmablasts/plasma cells, reduced T_H17 and T_FH cells, decreased cytokine production, and in one detailed case undetectable vaccine antibodies to tetanus/diphtheria. F359L: panhypogammaglobulinemia, very low plasmablast/plasma cell counts, low naïve CD4/CD8 T cells and increased terminal effector T cells, plus hair/skin pigmentation abnormalities and premature hair graying. R98W: in vitro loss of DNA binding/transcription with impaired helper pathways summarized, but classic broad agammaglobulinemia phenotype not emphasized in the cited review summary. (fornes2023amultimorphicmutation pages 2-4, fornes2023amultimorphicmutation pages 9-10, jia2023functionalandbiochemical pages 39-44, thouenon2023aneomorphicmutation pages 14-15, thouenon2023aneomorphicmutation pages 1-2) | HP: Agammaglobulinemia; HP: Hypogammaglobulinemia; HP: Decreased class-switched memory B cells; HP: Decreased plasmablasts; CL: B cell, plasma cell, CD4-positive T cell, T follicular helper cell, T helper 17 cell | Fornes et al., Jan 2023; Jia thesis summary, Jan 2023; Thouenon et al., Mar 2023 (fornes2023amultimorphicmutation pages 2-4, jia2023functionalandbiochemical pages 39-44, thouenon2023aneomorphicmutation pages 14-15) |
| Mechanism | Core MICI p.T95R: a multimorphic mechanism combining hypermorph (higher DNA-binding affinity), hypomorph (reduced transcription on canonical IRF4 targets), and neomorph (binding to noncanonical DNA sites and altered gene-expression programs). Patient/experimental systems showed altered B-cell maturation, plasma-cell differentiation failure, and reduced T-cell effector programs. F359L: neomorphic / dominant-negative behavior centered on the interferon activation domain, with selective failure of ISRE promoter activation but retained EICE/AICE activity; impaired BLIMP1/XBP1 induction and plasma-cell differentiation. R98W: loss-of-function haploinsufficiency with defective DNA binding/transcription and incomplete penetrance for Whipple disease. (fornes2023amultimorphicmutation pages 1-2, fornes2023amultimorphicmutation pages 10-12, thouenon2023aneomorphicmutation pages 14-15, thouenon2023aneomorphicmutation pages 1-2, constantine2020recentadvancesin pages 3-4) | GO: DNA-binding transcription factor activity; GO: plasma cell differentiation; GO: immunoglobulin production; GO: T-helper 17 cell differentiation; GO: germinal center formation | Fornes et al., Jan 2023; Thouenon et al., Mar 2023; review summary, Apr 2020 (fornes2023amultimorphicmutation pages 1-2, fornes2023amultimorphicmutation pages 10-12, thouenon2023aneomorphicmutation pages 14-15, constantine2020recentadvancesin pages 3-4) |
| Diagnosis | Evidence supports diagnosis by genetic testing identifying heterozygous IRF4 variants in affected patients, alongside immunophenotyping showing antibody deficiency and B/T-cell abnormalities. In MICI, the paper used extensive flow cytometry/CyTOF, scRNA-seq, functional lymphocyte assays, and mechanistic assays including EMSA, HT-SELEX, luciferase, ChIP-seq, surface plasmon resonance, and single-molecule imaging. In a detailed p.T95R case, immunoglobulins were undetectable (IgG <0.3 g/L, IgA <0.04 g/L, IgM <0.03 g/L) with absent tetanus/diphtheria antibodies and 95.2% naïve CD19+ B cells. Standardized disease-specific clinical criteria were not reported in the cited evidence. (fornes2023amultimorphicmutation pages 10-12, jia2023functionalandbiochemical pages 39-44) | MAXO suggestion: genetic testing; HP: Abnormality of humoral immunity; LOINC-style concepts: serum immunoglobulin measurement | Fornes et al., Jan 2023; Jia thesis summary, Jan 2023 (fornes2023amultimorphicmutation pages 10-12, jia2023functionalandbiochemical pages 39-44) |
| Treatment | No disease-specific targeted therapy or interventional trial was identified. Reported real-world care is supportive and anti-infective. Core MICI: detailed p.T95R proband received IVIG and trimethoprim/sulfamethoxazole prophylaxis; CMV was treated with ganciclovir, then foscarnet after antiviral resistance (UL54 L545S, UL97 M460I) as bridge to HSCT. Outcome after HSCT for this proband was not stated in the extracted evidence. F359L: patients required immunoglobulin replacement therapy. A previously reported separate homozygous IRF4 splice case (not MICI 131 core) died 2 days post-HSCT at age 2. (jia2023functionalandbiochemical pages 39-44, thouenon2023aneomorphicmutation pages 2-4, thouenon2023aneomorphicmutation pages 4-5) | MAXO: immunoglobulin replacement therapy; antimicrobial prophylaxis; antiviral therapy; hematopoietic stem cell transplantation | Jia thesis summary, Jan 2023; Thouenon et al., Mar 2023 (jia2023functionalandbiochemical pages 39-44, thouenon2023aneomorphicmutation pages 2-4, thouenon2023aneomorphicmutation pages 4-5) |
| Model organism | Core MICI has direct model support: a heterozygous Irf4 T95R knock-in mouse recapitulated key human features, especially severe defects in antibody production at baseline and after immunization and reduced antigen-specific germinal-center responses. No disease-specific natural veterinary condition was identified in the searched evidence. (fornes2023amultimorphicmutation pages 1-2, fornes2023amultimorphicmutation pages 10-12) | NCBITaxon: 10090; CL: germinal center B cell, plasma cell; GO: antibody production | Fornes et al., Sci Immunol, Jan 2023 (fornes2023amultimorphicmutation pages 1-2, fornes2023amultimorphicmutation pages 10-12) |
| Evidence gaps | Missing or not clearly reported in the extracted evidence: OMIM number for “Immunodeficiency 131,” prevalence/incidence, sex ratio, long-term survival, formal quality-of-life data, penetrance estimates for F359L, variant-specific carrier frequency, established screening guidelines, prenatal/preimplantation counseling studies, environmental/lifestyle risk modifiers beyond pathogen exposure, protective factors, epigenetic biomarkers, and disease-specific clinical trials. Whipple observational studies exist but are not genotype-specific therapeutic trials. (jia2023functionalandbiochemical pages 39-44, OpenTargets Search: Immunodeficiency 131) | Suggested annotation: evidence gap / not reported | Evidence synthesis across extracted sources and trial search contexts (jia2023functionalandbiochemical pages 39-44, OpenTargets Search: Immunodeficiency 131) |
Table: This table summarizes the best-supported evidence for Immunodeficiency 131 as an IRF4-associated disorder, centering on p.T95R multimorphic IRF4 CID while distinguishing the allelic F359L and R98W phenotypes. It also flags where the literature remains sparse or non-specific.
Immunodeficiency 131/MICI is an autosomal dominant combined immunodeficiency in which altered IRF4 DNA recognition disrupts both humoral and cellular adaptive immunity. Hallmarks are infantile opportunistic infections, agammaglobulinemia, failed B-cell maturation and plasma-cell differentiation, reduced T-helper 17 and follicular-helper T-cell populations, and impaired cytokine production. (fornes2023amultimorphicmutation pages 2-4, fornes2023amultimorphicmutation pages 1-2)
A direct quotation from the Fornes et al. abstract captures the principal finding: “We report a recurrent heterozygous mutation in IRF4, p.T95R, causing an autosomal dominant combined immunodeficiency (CID) in seven patients from six unrelated families.” The abstract further states that patients had profound opportunistic-infection susceptibility and agammaglobulinemia. (fornes2023amultimorphicmutation pages 1-2)
The primary cause is a germline heterozygous IRF4 p.T95R missense variant in the DNA-binding domain. It is not a conventional simple loss-of-function allele: it simultaneously increases affinity for some DNA, decreases transcription at canonical IRF4 targets, and creates binding to noncanonical sites. This mixed hypermorphic, hypomorphic, and neomorphic behavior explains the term “multimorphic.” (fornes2023amultimorphicmutation pages 9-10, fornes2023amultimorphicmutation pages 1-2)
Pathogens do not cause the inherited defect but expose its functional consequences. In p.T95R disease, clinically important exposures include Pneumocystis jirovecii, CMV, EBV, environmental or vaccine-strain mycobacteria, and common respiratory organisms. In the distinct R98W disorder, exposure to T. whipplei is necessary but insufficient: among 12 heterozygotes summarized in the literature, four developed Whipple disease, five were chronic carriers, and others did not show disease, illustrating incomplete penetrance and a strong gene–pathogen interaction. (constantine2020recentadvancesin pages 3-4, fornes2023amultimorphicmutation pages 2-4)
No evidence supports toxins, smoking, alcohol, diet, exercise, occupational exposure, radiation, sex, or age as causal modifiers of MICI. No genetic or lifestyle protective factors are established.
| Phenotype | Type and characteristics | Suggested HPO annotation |
|---|---|---|
| Opportunistic/recurrent infection | Clinical sign; severe, infantile onset, chronic/recurrent; observed across the seven-person defining cohort | Opportunistic infection; Recurrent respiratory infections |
| P. jirovecii pneumonia | Infection/respiratory manifestation; prominent presenting infection | Pneumocystis jirovecii pneumonia |
| Agammaglobulinemia | Laboratory abnormality; profound; early onset | HP:0004432 Agammaglobulinemia |
| Reduced IgG, IgA, and IgM | Laboratory abnormality; severe | Hypogammaglobulinemia |
| Reduced class-switched memory B cells | Laboratory abnormality | Decreased class-switched memory B-cell count |
| Reduced plasmablasts/plasma cells | Laboratory/cellular abnormality | Decreased circulating plasmablasts |
| Reduced TH17 and TFH populations | Laboratory/cellular abnormality | Abnormal T-cell subset distribution |
| Impaired cytokine production | Functional laboratory abnormality | Abnormal cytokine secretion |
| Chronic diarrhea | Symptom; infectious or immune-related; variable | HP:0002014 Diarrhea |
| Recurrent sinopulmonary disease | Clinical sign; early and recurrent | Recurrent upper/lower respiratory infection |
The defining seven patients had profound susceptibility to opportunistic organisms, notably P. jirovecii, severe CMV/EBV infection, weakly pathogenic mycobacteria, recurrent sinopulmonary infection, and chronic diarrhea. Their B cells showed impaired maturation, decreased isotype switching, and defective plasma-cell differentiation; T cells had reduced TH17 and TFH compartments and impaired cytokine output. (fornes2023amultimorphicmutation pages 2-4, fornes2023amultimorphicmutation pages 9-10)
One 11-month-old boy had respiratory failure with rhinovirus/enterovirus, P. jirovecii, CMV viremia, and ventilator-associated Escherichia coli pneumonia. His IgG was <0.3 g/L, IgA <0.04 g/L, and IgM <0.03 g/L; tetanus and diphtheria antibodies were undetectable, and 95.2% of CD19-positive cells were naïve B cells. (jia2023functionalandbiochemical pages 39-44)
Three patients across two generations had childhood panhypogammaglobulinemia, extremely low plasmablast/plasma-cell counts, reduced naïve CD4/CD8 T cells, increased terminal-effector T cells, recurrent bacterial, viral, parasitic, and fungal infections, premature hair graying, and skin depigmentation. The index patient developed diarrhea and nasopharyngitis at six months and was diagnosed at 11 months. Reported infections included meningococcal disease, Giardia lamblia, CMV, disseminated varicella-zoster virus, Bartonella henselae, molluscum contagiosum, and cutaneous fungal disease. (thouenon2023aneomorphicmutation pages 2-4, thouenon2023aneomorphicmutation pages 4-5)
For p.T95R, severe antibody deficiency and opportunistic-infection susceptibility appear highly consistent in the seven reported patients, but disease-wide percentages cannot be estimated. Formal EQ-5D, SF-36, PROMIS, disability, behavioral, or neuropsychiatric evaluations have not been reported. Nonetheless, recurrent hospitalization, respiratory failure, prolonged antiviral treatment, dependence on immunoglobulin replacement, and possible HSCT imply major effects on childhood functioning and caregiver burden. This last statement is a clinical inference, not a measured quality-of-life result.
| Variant | Domain | Inheritance/mechanism | Clinical association |
|---|---|---|---|
| NM-dependent c.284C>G, p.Thr95Arg (T95R) | DNA-binding domain | Germline heterozygous AD; multimorphic hypermorph/hypomorph/neomorph | Core MICI/Immunodeficiency 131 |
| c.1075T>C, p.Phe359Leu (F359L) | Interferon activation domain | Germline heterozygous AD; neomorphic/dominant-negative on ISRE activity | Antibody/CID with pigmentation abnormalities |
| p.Arg98Trp (R98W) | DNA-binding domain | Germline heterozygous haploinsufficiency/LOF; incompletely penetrant | Whipple-disease susceptibility |
| Homozygous splice-disrupting allele | Splicing | Germline biallelic; presumed severe loss of function | Severe infantile CID; limited functional evidence |
For p.T95R, normal total IRF4 mRNA and protein levels show that disease results from qualitative transcription-factor dysfunction, not reduced abundance. No somatic origin was reported in affected individuals, although low-level parental germline/somatic mosaicism can permit recurrence. No pathogenic chromosomal rearrangement, copy-number abnormality, repeat expansion, mitochondrial variant, or epigenetic signature is established. (fornes2023amultimorphicmutation pages 2-4, fornes2023amultimorphicmutation pages 26-29)
The p.T95R allele was absent from control databases in the reported analysis and met likely-pathogenic ACMG criteria. A precise gnomAD allele count/frequency was not supplied in the retrieved evidence; therefore, “absent/ultra-rare in referenced controls” is safer than assigning a numerical frequency. (fornes2023amultimorphicmutation pages 2-4, jia2023functionalandbiochemical pages 57-63)
No environmental toxin, pollutant, radiation source, dietary exposure, smoking behavior, alcohol use, or occupational factor is known to cause or materially alter MICI. Infectious agents are clinical triggers, not etiologic causes. Relevant organisms include P. jirovecii, CMV, EBV, BCG/M. bovis, common respiratory viruses and bacteria, and—in the R98W allelic disorder—T. whipplei. No zoonotic transmission peculiar to IRF4 disease is known. (constantine2020recentadvancesin pages 3-4, fornes2023amultimorphicmutation pages 2-4)
A direct abstract quotation states: “The IRF4T95R variant maps to the TF’s DNA binding domain, alters its canonical DNA binding specificities, and results in a simultaneous multimorphic combination of loss, gain, and new functions for IRF4.” (fornes2023amultimorphicmutation pages 1-2)
The defining study used conventional flow cytometry, CyTOF, single-cell RNA sequencing, in-vitro B- and T-cell differentiation, surface-plasmon resonance, electrophoretic mobility-shift assays, high-throughput SELEX, luciferase reporters, ChIP-seq, single-molecule fluorescence microscopy, and computational motif modeling. These convergent methods establish altered DNA affinity/specificity and downstream immune-cell dysfunction. No validated patient metabolomic, lipidomic, spatial-transcriptomic, proteomic biomarker, or diagnostic epigenetic signature has been reported. (fornes2023amultimorphicmutation pages 10-12)
These are suggested mappings and should be checked against current ontology releases before production use.
The disease is fundamentally hematopoietic/immune rather than a fixed structural malformation.
Suggested UBERON annotations include blood, bone marrow, lymph node, spleen, respiratory tract/lung, and intestine. Suggested cellular annotations are germinal-center B cell, plasmablast, plasma cell, CD4 T cell, TH17 cell, and TFH cell. (thouenon2023aneomorphicmutation pages 2-4, fornes2023amultimorphicmutation pages 2-4)
Core p.T95R disease is congenital at the genetic level and usually manifests clinically during infancy, often before one year. It is chronic and lifelong unless immune function is corrected by successful hematopoietic transplantation. Infection severity may fluctuate with pathogen exposure and treatment, but antibody and lymphocyte-differentiation defects are persistent. (fornes2023amultimorphicmutation pages 2-4, jia2023functionalandbiochemical pages 39-44)
A practical stage description, not a validated staging system, is:
There are no validated remission criteria or longitudinal natural-history estimates. In contrast, R98W-associated Whipple disease is an adult-onset, exposure-dependent phenotype, with mean onset reported around 55–58 years. (constantine2020recentadvancesin pages 3-4, jia2023functionalandbiochemical pages 39-44)
Only seven p.T95R patients from six unrelated families were included in the defining international cohort. No population prevalence, incidence, geographic concentration, ethnic enrichment, sex ratio, or age-distribution estimate exists. Accordingly, the condition should be classified as ultra-rare without assigning cases per 100,000. (fornes2023amultimorphicmutation pages 2-4, fornes2023amultimorphicmutation pages 9-10)
Consider IRF4-associated MICI in an infant with:
Important alternatives include X-linked SCID and other combined immunodeficiencies; CD40L/CD40 deficiency; ICOS/ICOSL deficiency; IL21/IL21R defects; NFKB1/NFKB2 disorders; activated PI3K-delta syndrome; CVID; congenital HIV or secondary immunodeficiency; and other transcription-factor IEIs. The combination of circulating but developmentally arrested B cells, near-absent immunoglobulin, opportunistic infection, abnormal helper-T-cell compartments, and an IRF4 p.T95R variant is distinguishing.
No population or newborn screening program exists. T-cell receptor excision-circle screening might detect some severe T-cell abnormalities but has not been validated for MICI and could miss affected infants. Cascade testing is indicated after molecular diagnosis, including sensitive testing for parental mosaicism. Prenatal and preimplantation testing are technically possible once a familial pathogenic variant is established.
No five- or ten-year survival rate, life expectancy, mortality rate, formal disability score, or validated prognostic model is available. Prognosis is plausibly driven by age at diagnosis, infection burden, pulmonary injury, persistent CMV/EBV, antimicrobial resistance, depth of antibody/T-cell dysfunction, access to immunoglobulin replacement, and transplant eligibility, but these have not been statistically validated.
Documented morbidity includes respiratory failure, opportunistic pneumonia, chronic viral infection, diarrhea, repeated antimicrobial exposure, and dependence on immunoglobulin replacement. In one p.T95R patient, CMV acquired UL54 L545S and UL97 M460I resistance variants, requiring foscarnet. A separate homozygous IRF4 splice-deficiency patient—not the core p.T95R entity—died two days after HSCT at age two, illustrating potential severity but not establishing MICI transplant mortality. (jia2023functionalandbiochemical pages 39-44)
There is no approved IRF4-directed drug, gene therapy, RNA therapy, or genome-editing treatment. Current management is extrapolated from combined-immunodeficiency care and reported cases:
The detailed p.T95R proband received IVIG and trimethoprim–sulfamethoxazole. Ganciclovir was used for CMV, but resistance prompted foscarnet as a bridge to HSCT. The retrieved evidence does not provide a disease-wide response rate or definitive post-HSCT outcome. (jia2023functionalandbiochemical pages 39-44)
No IRF4/MICI-specific interventional clinical trial was identified. ClinicalTrials.gov searches found two completed observational Whipple-disease studies—NCT06776484, enrollment 20, and NCT03350685, enrollment 267—but these are not IRF4-genotype-specific treatment studies. Open Targets identifies IRF4 as the disease target but provides no approved or clinical-stage MICI-targeted drug. (OpenTargets Search: Immunodeficiency 131)
Direct IRF4 augmentation or inhibition would be biologically complex: p.T95R has simultaneous gain, loss, and neomorphic functions, so nonspecific IRF4 activation or suppression could worsen some transcriptional abnormalities. HSCT currently offers the most plausible mechanism-based cellular correction, but evidence remains case-level.
The de novo germline disorder cannot generally be prevented through lifestyle modification. For a known familial variant, genetic counseling should explain autosomal-dominant transmission, possible parental mosaicism, and reproductive options including prenatal or preimplantation genetic testing.
No MICI-specific public-health program, behavioral intervention, or environmental remediation strategy exists.
No naturally occurring IRF4 p.T95R-equivalent immunodeficiency has been established in companion animals, livestock, or wildlife. Therefore, no breed association, veterinary prevalence, zoonotic potential, or cross-species transmission applies. The implicated pathogens are acquired conventionally; the genetic disorder itself is not transmissible.
The orthologous mouse gene is Irf4 in Mus musculus (NCBI Taxonomy 10090). IRF4’s lymphocyte-regulatory role is evolutionarily conserved, supporting mouse modeling, but an experimentally engineered model should not be described as natural animal disease.
A heterozygous Irf4 T95R knock-in mouse is the most disease-specific model. It reproduced severe antibody-production defects at baseline and after immunization and showed impaired antigen-specific germinal-center responses, closely matching the human B-cell phenotype. This provides unusually strong in-vivo support for pathogenicity and mechanism. (fornes2023amultimorphicmutation pages 9-10, fornes2023amultimorphicmutation pages 1-2)
A direct abstract quotation states: “A knock-in mouse model of heterozygous T95R showed a severe defect in antibody production both at the steady state and after immunization with different types of antigens, consistent with the CID observed in these patients.” (fornes2023amultimorphicmutation pages 1-2)
Patient B and T cells, transduced lymphoid lines, and reporter systems were used to study differentiation, cytokine production, DNA binding, and promoter activity. These models demonstrated reduced canonical transcription, novel sequence recognition, impaired plasma-cell differentiation, and altered T-cell programs. (fornes2023amultimorphicmutation pages 10-12, jia2023functionalandbiochemical pages 28-34)
The mouse reproduces antibody defects but cannot fully model the human pathogen spectrum, long-term clinical course, or all species-specific transcriptional targets. Cell lines permit mechanistic dissection but do not reproduce multicellular germinal-center architecture or infection physiology.
The decisive advances occurred in 2023, when two independent studies showed that different IRF4-domain variants produce mechanistically distinct dominant immunodeficiencies: p.T95R rewires DNA recognition through a multimorphic mechanism, whereas F359L selectively disrupts ISRE-dependent transcription and plasma-cell differentiation. This establishes IRF4 disease as an allelic and mechanistic spectrum, not a single uniform haploinsufficiency syndrome. (thouenon2023aneomorphicmutation pages 14-15, fornes2023amultimorphicmutation pages 1-2)
Research published in 2024 further reinforced IRF4’s central role in plasma-cell identity and immune-cell transcription, but it did not add a comparably sized MICI clinical cohort or a disease-specific treatment trial. Consequently, the 2023 primary reports remain the authoritative sources for Immunodeficiency 131.
The following remain unavailable or inadequately established: exact prevalence/incidence, sex ratio, population-specific carrier frequency, long-term survival, formal quality-of-life outcomes, standardized diagnostic criteria, validated newborn screening, disease-specific prognostic biomarkers, treatment-response rates, transplant outcomes, natural veterinary disease, protective factors, epigenetic signatures, and targeted clinical trials.
For knowledge-base curation, p.T95R MICI should be the core representation of Immunodeficiency 131, while F359L disease and R98W-associated Whipple susceptibility should be retained as distinct IRF4 allelic phenotypes. Assertions based on p.T95R should not automatically be transferred to all IRF4 variants.
References
(OpenTargets Search: Immunodeficiency 131): Open Targets Query (Immunodeficiency 131, 21 results). Buniello, A. et al. (2025). Open Targets Platform: facilitating therapeutic hypotheses building in drug discovery. Nucleic Acids Research.
(fornes2023amultimorphicmutation pages 2-4): Oriol Fornes, Alicia Jia, Hye Sun Kuehn, Qing Min, Ulrich Pannicke, Nikolai Schleussner, Romane Thouenon, Zhijia Yu, María de los Angeles Astbury, Catherine M. Biggs, Miguel Galicchio, Jorge Alberto Garcia-Campos, Silvina Gismondi, Guadalupe Gonzalez Villarreal, Kyla J. Hildebrand, Manfred Hönig, Jia Hou, Despina Moshous, Stefania Pittaluga, Xiaowen Qian, Jacob Rozmus, Ansgar S. Schulz, Aidé Tamara Staines-Boone, Bijun Sun, Jinqiao Sun, Schauer Uwe, Edna Venegas-Montoya, Wenjie Wang, Xiaochuan Wang, Wenjing Ying, Xiaowen Zhai, Qinhua Zhou, Altuna Akalin, Isabelle André, Thomas F. E. Barth, Bernd Baumann, Anne Brüstle, Gaetan Burgio, Jacinta C. Bustamante, Jean-Laurent Casanova, Marco G. Casarotto, Marina Cavazzana, Loïc Chentout, Ian A. Cockburn, Mariantonia Costanza, Chaoqun Cui, Oliver Daumke, Kate L. Del Bel, Hermann Eibel, Xiaoqian Feng, Vedran Franke, J. Christof M. Gebhardt, Andrea Götz, Stephan Grunwald, Bénédicte Hoareau, Timothy R. Hughes, Eva-Maria Jacobsen, Martin Janz, Arttu Jolma, Chantal Lagresle-Peyrou, Nannan Lai, Yaxuan Li, Susan Lin, Henry Y. Lu, Saul O. Lugo-Reyes, Xin Meng, Peter Möller, Nidia Moreno-Corona, Julie E. Niemela, Gherman Novakovsky, Jareb J. Perez-Caraballo, Capucine Picard, Lucie Poggi, Maria-Emilia Puig-Lombardi, Katrina L. Randall, Anja Reisser, Yohann Schmitt, Sandali Seneviratne, Mehul Sharma, Jennifer Stoddard, Srinivasan Sundararaj, Harry Sutton, Linh Q. Tran, Ying Wang, Wyeth W. Wasserman, Zichao Wen, Wiebke Winkler, Ermeng Xiong, Ally W. H. Yang, Meiping Yu, Lumin Zhang, Hai Zhang, Qian Zhao, Xin Zhen, Anselm Enders, Sven Kracker, Ruben Martinez-Barricarte, Stephan Mathas, Sergio D. Rosenzweig, Klaus Schwarz, Stuart E. Turvey, and Ji-Yang Wang. A multimorphic mutation in irf4 causes human autosomal dominant combined immunodeficiency. Science Immunology, Jan 2023. URL: https://doi.org/10.1126/sciimmunol.ade7953, doi:10.1126/sciimmunol.ade7953. This article has 44 citations and is from a highest quality peer-reviewed journal.
(thouenon2023aneomorphicmutation pages 1-2): Romane Thouenon, Loïc Chentout, Nidia Moreno-Corona, Lucie Poggi, Emilia Puig Lombardi, Benedicte Hoareau, Yohann Schmitt, Chantal Lagresle-Peyrou, Jacinta Bustamante, Isabelle André, Marina Cavazzana, Anne Durandy, Jean-Laurent Casanova, Lionel Galicier, Jehane Fadlallah, Alain Fischer, and Sven Kracker. A neomorphic mutation in the interferon activation domain of irf4 causes a dominant primary immunodeficiency. The Journal of Experimental Medicine, Mar 2023. URL: https://doi.org/10.1084/jem.20221292, doi:10.1084/jem.20221292. This article has 19 citations.
(constantine2020recentadvancesin pages 3-4): Gregory M. Constantine and Michail S. Lionakis. Recent advances in understanding inherited deficiencies in immunity to infections. F1000Research, 9:243, Apr 2020. URL: https://doi.org/10.12688/f1000research.22036.1, doi:10.12688/f1000research.22036.1. This article has 4 citations and is from a peer-reviewed journal.
(fornes2023amultimorphicmutation pages 9-10): Oriol Fornes, Alicia Jia, Hye Sun Kuehn, Qing Min, Ulrich Pannicke, Nikolai Schleussner, Romane Thouenon, Zhijia Yu, María de los Angeles Astbury, Catherine M. Biggs, Miguel Galicchio, Jorge Alberto Garcia-Campos, Silvina Gismondi, Guadalupe Gonzalez Villarreal, Kyla J. Hildebrand, Manfred Hönig, Jia Hou, Despina Moshous, Stefania Pittaluga, Xiaowen Qian, Jacob Rozmus, Ansgar S. Schulz, Aidé Tamara Staines-Boone, Bijun Sun, Jinqiao Sun, Schauer Uwe, Edna Venegas-Montoya, Wenjie Wang, Xiaochuan Wang, Wenjing Ying, Xiaowen Zhai, Qinhua Zhou, Altuna Akalin, Isabelle André, Thomas F. E. Barth, Bernd Baumann, Anne Brüstle, Gaetan Burgio, Jacinta C. Bustamante, Jean-Laurent Casanova, Marco G. Casarotto, Marina Cavazzana, Loïc Chentout, Ian A. Cockburn, Mariantonia Costanza, Chaoqun Cui, Oliver Daumke, Kate L. Del Bel, Hermann Eibel, Xiaoqian Feng, Vedran Franke, J. Christof M. Gebhardt, Andrea Götz, Stephan Grunwald, Bénédicte Hoareau, Timothy R. Hughes, Eva-Maria Jacobsen, Martin Janz, Arttu Jolma, Chantal Lagresle-Peyrou, Nannan Lai, Yaxuan Li, Susan Lin, Henry Y. Lu, Saul O. Lugo-Reyes, Xin Meng, Peter Möller, Nidia Moreno-Corona, Julie E. Niemela, Gherman Novakovsky, Jareb J. Perez-Caraballo, Capucine Picard, Lucie Poggi, Maria-Emilia Puig-Lombardi, Katrina L. Randall, Anja Reisser, Yohann Schmitt, Sandali Seneviratne, Mehul Sharma, Jennifer Stoddard, Srinivasan Sundararaj, Harry Sutton, Linh Q. Tran, Ying Wang, Wyeth W. Wasserman, Zichao Wen, Wiebke Winkler, Ermeng Xiong, Ally W. H. Yang, Meiping Yu, Lumin Zhang, Hai Zhang, Qian Zhao, Xin Zhen, Anselm Enders, Sven Kracker, Ruben Martinez-Barricarte, Stephan Mathas, Sergio D. Rosenzweig, Klaus Schwarz, Stuart E. Turvey, and Ji-Yang Wang. A multimorphic mutation in irf4 causes human autosomal dominant combined immunodeficiency. Science Immunology, Jan 2023. URL: https://doi.org/10.1126/sciimmunol.ade7953, doi:10.1126/sciimmunol.ade7953. This article has 44 citations and is from a highest quality peer-reviewed journal.
(fornes2023amultimorphicmutation pages 26-29): Oriol Fornes, Alicia Jia, Hye Sun Kuehn, Qing Min, Ulrich Pannicke, Nikolai Schleussner, Romane Thouenon, Zhijia Yu, María de los Angeles Astbury, Catherine M. Biggs, Miguel Galicchio, Jorge Alberto Garcia-Campos, Silvina Gismondi, Guadalupe Gonzalez Villarreal, Kyla J. Hildebrand, Manfred Hönig, Jia Hou, Despina Moshous, Stefania Pittaluga, Xiaowen Qian, Jacob Rozmus, Ansgar S. Schulz, Aidé Tamara Staines-Boone, Bijun Sun, Jinqiao Sun, Schauer Uwe, Edna Venegas-Montoya, Wenjie Wang, Xiaochuan Wang, Wenjing Ying, Xiaowen Zhai, Qinhua Zhou, Altuna Akalin, Isabelle André, Thomas F. E. Barth, Bernd Baumann, Anne Brüstle, Gaetan Burgio, Jacinta C. Bustamante, Jean-Laurent Casanova, Marco G. Casarotto, Marina Cavazzana, Loïc Chentout, Ian A. Cockburn, Mariantonia Costanza, Chaoqun Cui, Oliver Daumke, Kate L. Del Bel, Hermann Eibel, Xiaoqian Feng, Vedran Franke, J. Christof M. Gebhardt, Andrea Götz, Stephan Grunwald, Bénédicte Hoareau, Timothy R. Hughes, Eva-Maria Jacobsen, Martin Janz, Arttu Jolma, Chantal Lagresle-Peyrou, Nannan Lai, Yaxuan Li, Susan Lin, Henry Y. Lu, Saul O. Lugo-Reyes, Xin Meng, Peter Möller, Nidia Moreno-Corona, Julie E. Niemela, Gherman Novakovsky, Jareb J. Perez-Caraballo, Capucine Picard, Lucie Poggi, Maria-Emilia Puig-Lombardi, Katrina L. Randall, Anja Reisser, Yohann Schmitt, Sandali Seneviratne, Mehul Sharma, Jennifer Stoddard, Srinivasan Sundararaj, Harry Sutton, Linh Q. Tran, Ying Wang, Wyeth W. Wasserman, Zichao Wen, Wiebke Winkler, Ermeng Xiong, Ally W. H. Yang, Meiping Yu, Lumin Zhang, Hai Zhang, Qian Zhao, Xin Zhen, Anselm Enders, Sven Kracker, Ruben Martinez-Barricarte, Stephan Mathas, Sergio D. Rosenzweig, Klaus Schwarz, Stuart E. Turvey, and Ji-Yang Wang. A multimorphic mutation in irf4 causes human autosomal dominant combined immunodeficiency. Science Immunology, Jan 2023. URL: https://doi.org/10.1126/sciimmunol.ade7953, doi:10.1126/sciimmunol.ade7953. This article has 44 citations and is from a highest quality peer-reviewed journal.
(thouenon2023aneomorphicmutation pages 14-15): Romane Thouenon, Loïc Chentout, Nidia Moreno-Corona, Lucie Poggi, Emilia Puig Lombardi, Benedicte Hoareau, Yohann Schmitt, Chantal Lagresle-Peyrou, Jacinta Bustamante, Isabelle André, Marina Cavazzana, Anne Durandy, Jean-Laurent Casanova, Lionel Galicier, Jehane Fadlallah, Alain Fischer, and Sven Kracker. A neomorphic mutation in the interferon activation domain of irf4 causes a dominant primary immunodeficiency. The Journal of Experimental Medicine, Mar 2023. URL: https://doi.org/10.1084/jem.20221292, doi:10.1084/jem.20221292. This article has 19 citations.
(jia2023functionalandbiochemical pages 39-44): Alicia Jia. Functional and biochemical characterization of novel genetic variants in irak4 and irf4 causing human inborn errors of immunity. Text, Jan 2023. URL: https://doi.org/10.14288/1.0402477, doi:10.14288/1.0402477. This article has 0 citations and is from a peer-reviewed journal.
(thouenon2023aneomorphicmutation pages 2-4): Romane Thouenon, Loïc Chentout, Nidia Moreno-Corona, Lucie Poggi, Emilia Puig Lombardi, Benedicte Hoareau, Yohann Schmitt, Chantal Lagresle-Peyrou, Jacinta Bustamante, Isabelle André, Marina Cavazzana, Anne Durandy, Jean-Laurent Casanova, Lionel Galicier, Jehane Fadlallah, Alain Fischer, and Sven Kracker. A neomorphic mutation in the interferon activation domain of irf4 causes a dominant primary immunodeficiency. The Journal of Experimental Medicine, Mar 2023. URL: https://doi.org/10.1084/jem.20221292, doi:10.1084/jem.20221292. This article has 19 citations.
(thouenon2023aneomorphicmutation pages 4-5): Romane Thouenon, Loïc Chentout, Nidia Moreno-Corona, Lucie Poggi, Emilia Puig Lombardi, Benedicte Hoareau, Yohann Schmitt, Chantal Lagresle-Peyrou, Jacinta Bustamante, Isabelle André, Marina Cavazzana, Anne Durandy, Jean-Laurent Casanova, Lionel Galicier, Jehane Fadlallah, Alain Fischer, and Sven Kracker. A neomorphic mutation in the interferon activation domain of irf4 causes a dominant primary immunodeficiency. The Journal of Experimental Medicine, Mar 2023. URL: https://doi.org/10.1084/jem.20221292, doi:10.1084/jem.20221292. This article has 19 citations.
(fornes2023amultimorphicmutation pages 1-2): Oriol Fornes, Alicia Jia, Hye Sun Kuehn, Qing Min, Ulrich Pannicke, Nikolai Schleussner, Romane Thouenon, Zhijia Yu, María de los Angeles Astbury, Catherine M. Biggs, Miguel Galicchio, Jorge Alberto Garcia-Campos, Silvina Gismondi, Guadalupe Gonzalez Villarreal, Kyla J. Hildebrand, Manfred Hönig, Jia Hou, Despina Moshous, Stefania Pittaluga, Xiaowen Qian, Jacob Rozmus, Ansgar S. Schulz, Aidé Tamara Staines-Boone, Bijun Sun, Jinqiao Sun, Schauer Uwe, Edna Venegas-Montoya, Wenjie Wang, Xiaochuan Wang, Wenjing Ying, Xiaowen Zhai, Qinhua Zhou, Altuna Akalin, Isabelle André, Thomas F. E. Barth, Bernd Baumann, Anne Brüstle, Gaetan Burgio, Jacinta C. Bustamante, Jean-Laurent Casanova, Marco G. Casarotto, Marina Cavazzana, Loïc Chentout, Ian A. Cockburn, Mariantonia Costanza, Chaoqun Cui, Oliver Daumke, Kate L. Del Bel, Hermann Eibel, Xiaoqian Feng, Vedran Franke, J. Christof M. Gebhardt, Andrea Götz, Stephan Grunwald, Bénédicte Hoareau, Timothy R. Hughes, Eva-Maria Jacobsen, Martin Janz, Arttu Jolma, Chantal Lagresle-Peyrou, Nannan Lai, Yaxuan Li, Susan Lin, Henry Y. Lu, Saul O. Lugo-Reyes, Xin Meng, Peter Möller, Nidia Moreno-Corona, Julie E. Niemela, Gherman Novakovsky, Jareb J. Perez-Caraballo, Capucine Picard, Lucie Poggi, Maria-Emilia Puig-Lombardi, Katrina L. Randall, Anja Reisser, Yohann Schmitt, Sandali Seneviratne, Mehul Sharma, Jennifer Stoddard, Srinivasan Sundararaj, Harry Sutton, Linh Q. Tran, Ying Wang, Wyeth W. Wasserman, Zichao Wen, Wiebke Winkler, Ermeng Xiong, Ally W. H. Yang, Meiping Yu, Lumin Zhang, Hai Zhang, Qian Zhao, Xin Zhen, Anselm Enders, Sven Kracker, Ruben Martinez-Barricarte, Stephan Mathas, Sergio D. Rosenzweig, Klaus Schwarz, Stuart E. Turvey, and Ji-Yang Wang. A multimorphic mutation in irf4 causes human autosomal dominant combined immunodeficiency. Science Immunology, Jan 2023. URL: https://doi.org/10.1126/sciimmunol.ade7953, doi:10.1126/sciimmunol.ade7953. This article has 44 citations and is from a highest quality peer-reviewed journal.
(fornes2023amultimorphicmutation pages 10-12): Oriol Fornes, Alicia Jia, Hye Sun Kuehn, Qing Min, Ulrich Pannicke, Nikolai Schleussner, Romane Thouenon, Zhijia Yu, María de los Angeles Astbury, Catherine M. Biggs, Miguel Galicchio, Jorge Alberto Garcia-Campos, Silvina Gismondi, Guadalupe Gonzalez Villarreal, Kyla J. Hildebrand, Manfred Hönig, Jia Hou, Despina Moshous, Stefania Pittaluga, Xiaowen Qian, Jacob Rozmus, Ansgar S. Schulz, Aidé Tamara Staines-Boone, Bijun Sun, Jinqiao Sun, Schauer Uwe, Edna Venegas-Montoya, Wenjie Wang, Xiaochuan Wang, Wenjing Ying, Xiaowen Zhai, Qinhua Zhou, Altuna Akalin, Isabelle André, Thomas F. E. Barth, Bernd Baumann, Anne Brüstle, Gaetan Burgio, Jacinta C. Bustamante, Jean-Laurent Casanova, Marco G. Casarotto, Marina Cavazzana, Loïc Chentout, Ian A. Cockburn, Mariantonia Costanza, Chaoqun Cui, Oliver Daumke, Kate L. Del Bel, Hermann Eibel, Xiaoqian Feng, Vedran Franke, J. Christof M. Gebhardt, Andrea Götz, Stephan Grunwald, Bénédicte Hoareau, Timothy R. Hughes, Eva-Maria Jacobsen, Martin Janz, Arttu Jolma, Chantal Lagresle-Peyrou, Nannan Lai, Yaxuan Li, Susan Lin, Henry Y. Lu, Saul O. Lugo-Reyes, Xin Meng, Peter Möller, Nidia Moreno-Corona, Julie E. Niemela, Gherman Novakovsky, Jareb J. Perez-Caraballo, Capucine Picard, Lucie Poggi, Maria-Emilia Puig-Lombardi, Katrina L. Randall, Anja Reisser, Yohann Schmitt, Sandali Seneviratne, Mehul Sharma, Jennifer Stoddard, Srinivasan Sundararaj, Harry Sutton, Linh Q. Tran, Ying Wang, Wyeth W. Wasserman, Zichao Wen, Wiebke Winkler, Ermeng Xiong, Ally W. H. Yang, Meiping Yu, Lumin Zhang, Hai Zhang, Qian Zhao, Xin Zhen, Anselm Enders, Sven Kracker, Ruben Martinez-Barricarte, Stephan Mathas, Sergio D. Rosenzweig, Klaus Schwarz, Stuart E. Turvey, and Ji-Yang Wang. A multimorphic mutation in irf4 causes human autosomal dominant combined immunodeficiency. Science Immunology, Jan 2023. URL: https://doi.org/10.1126/sciimmunol.ade7953, doi:10.1126/sciimmunol.ade7953. This article has 44 citations and is from a highest quality peer-reviewed journal.
(jia2023functionalandbiochemical pages 57-63): Alicia Jia. Functional and biochemical characterization of novel genetic variants in irak4 and irf4 causing human inborn errors of immunity. Text, Jan 2023. URL: https://doi.org/10.14288/1.0402477, doi:10.14288/1.0402477. This article has 0 citations and is from a peer-reviewed journal.
(jia2023functionalandbiochemical pages 28-34): Alicia Jia. Functional and biochemical characterization of novel genetic variants in irak4 and irf4 causing human inborn errors of immunity. Text, Jan 2023. URL: https://doi.org/10.14288/1.0402477, doi:10.14288/1.0402477. This article has 0 citations and is from a peer-reviewed journal.