An autoimmune transcriptional circuit drives FOXP3<sup>+</sup> regulatory T cell dysfunction.

Sumida, Tomokazu S; Lincoln, Matthew R; He, Liang; Park, Yongjin; Ota, Mineto; Oguchi, Akiko; Son, Raku; Yi, Alice et al. · Sci Transl Med · 2024

basic_science · Level V

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Abstract

Autoimmune diseases, among the most common disorders of young adults, are mediated by genetic and environmental factors. Although CD4<sup>+</sup>FOXP3<sup>+</sup> regulatory T cells (T<sub>regs</sub>) play a central role in preventing autoimmunity, the molecular mechanism underlying their dysfunction is unknown. Here, we performed comprehensive transcriptomic and epigenomic profiling of T<sub>regs</sub> in the autoimmune disease multiple sclerosis (MS) to identify critical transcriptional programs regulating human autoimmunity. We found that up-regulation of a primate-specific short isoform of PR domain zinc finger protein 1 (PRDM1-S) induces expression of serum and glucocorticoid-regulated kinase 1 (SGK1) independent from the evolutionarily conserved long <i>PRDM1</i>, which led to destabilization of forkhead box P3 (FOXP3) and T<sub>reg</sub> dysfunction. This aberrant <i>PRDM1-S/SGK1</i> axis is shared among other autoimmune diseases. Furthermore, the chromatin landscape profiling in T<sub>regs</sub> from individuals with MS revealed enriched activating protein-1 (AP-1)/interferon regulatory factor (IRF) transcription factor binding as candidate upstream regulators of <i>PRDM1-S</i> expression and T<sub>reg</sub> dysfunction. Our study uncovers a mechanistic model where the evolutionary emergence of <i>PRDM1-S</i> and epigenetic priming of AP-1/IRF may be key drivers of dysfunctional T<sub>regs</sub> in autoimmune diseases.

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