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Disseminated Tuberculosis and Chronic Mucocutaneous Candidiasis in a Patient with a Gain-of-Function Mutation in
Sigifredo Pedraza-Sánchez1, Jose Luis Lezana-Fernández2, Yolanda Gonzalez3
1Unidad de Bioquímica, Instituto Nacional de Ciencias Médicas y Nutrición Salvador Zubirán, México City, México.
Abstract:
In humans, recessive loss-of-function mutations in STAT1 are associated with mycobacterial and viral infections, whereas gain-of-function (GOF) mutations in STAT1 are associated with a type of primary immunodeficiency related mainly, but not exclusively, to chronic mucocutaneous candidiasis (CMC). We studied and established a molecular diagnosis in a pediatric patient with mycobacterial infections, associated with CMC. The patient, daughter of a non-consanguineous mestizo Mexican family, had axillary adenitis secondary to BCG vaccination and was cured with resection of the abscess at 1-year old. At the age of 4 years, she had a supraclavicular abscess with acid-fast-staining bacilli identified in the soft tissue and bone, with clinical signs of disseminated infection and a positive Gene-X-pert test, which responded to anti-mycobacterial drugs. Laboratory tests of the IL-12/interferon gamma (IFN-γ) circuit showed a higher production of IL-12p70 in the whole blood from the patient compared to healthy controls, when stimulated with BCG and BCG + IFN-γ. The whole blood of the patient produced 35% less IFN-γ compared to controls assessed by ELISA and flow cytometry, but IL-17 producing T cells from patient were almost absent in PBMC stimulated with PMA plus ionomycin. Signal transduction and activator of transcription 1 (STAT1) was hyperphosphorylated at tyrosine 701 in response to IFN-γ and -α, as demonstrated by flow cytometry and Western blotting in fresh blood mononuclear cells and in Epstein-Barr virus lymphoblastoid cell lines (EBV-LCLs); phosphorylation of STAT1 in EBV-LCLs from the patient was resistant to inhibition by staurosporine but sensitive to ruxolitinib, a Jak phosphorylation inhibitor. Genomic DNA sequencing showed a de novo mutation in STAT1 in cells from the patient, absent in her parents and brother; a known T385M missense mutation in the DNA-binding domain of the transcription factor was identified, and it is a GOF mutation. Therefore, GOF mutations in STAT1 can induce susceptibility not only to fungal but also to mycobacterial infections by mechanisms to be determined.
Insights
Gain-of-function mutations in Signal Transduction and Activator of Transcription 1 (STAT1) cause immunodeficiency, leading to susceptibility to fungal and mycobacterial infections. This study identified a novel STAT1 mutation in a pediatric patient with severe mycobacterial disease and chronic mucocutaneous candidiasis.
Area of Science:
- Immunology
- Genetics
- Infectious Diseases
Background:
- Recessive STAT1 loss-of-function mutations are linked to infections.
- Gain-of-function (GOF) STAT1 mutations cause primary immunodeficiency, primarily chronic mucocutaneous candidiasis (CMC).
Purpose of the Study:
- To establish a molecular diagnosis in a pediatric patient with mycobacterial infections and CMC.
- To investigate the mechanism of STAT1 GOF mutations in susceptibility to infections.
Main Methods:
- Clinical case study of a pediatric patient.
- Laboratory analysis of IL-12/IFN-γ circuit, T cell function (IL-17), and STAT1 phosphorylation.
- Genetic sequencing to identify STAT1 mutations.
- Functional studies using Epstein-Barr virus lymphoblastoid cell lines (EBV-LCLs).
Main Results:
- The patient presented with disseminated mycobacterial infections and CMC.
- Elevated IL-12p70 production and reduced IFN-γ production were observed.
- STAT1 was hyperphosphorylated in response to IFN-γ and -α, resistant to staurosporine but sensitive to ruxolitinib.
- A de novo T385M missense mutation in STAT1, a known GOF mutation, was identified.
Conclusions:
- GOF STAT1 mutations can confer susceptibility to both fungal and mycobacterial infections.
- The identified T385M mutation contributes to a severe immunodeficiency phenotype.
- Further research is needed to elucidate the precise mechanisms underlying STAT1 GOF-induced susceptibility to mycobacterial infections.
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