首页> 外文期刊>Journal of molecular cell biology >The histone H3 lysine-27 demethylase Jmjd3 plays a critical role in specific regulation of Th17 cell differentiation.
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The histone H3 lysine-27 demethylase Jmjd3 plays a critical role in specific regulation of Th17 cell differentiation.

机译:组蛋白H3赖氨酸-27脱甲基酶JMJD3在Th17细胞分化的具体调节中起着关键作用。

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Interleukin (IL) 17-producing T helper (Th17) cells play critical roles in the clearance of extracellular bacteria and fungi as well as the pathogenesis of various autoimmune diseases, such as multiple sclerosis, psoriasis, and ulcerative colitis. Although a global transcriptional regulatory network of Th17 cell differentiation has been mapped recently, the participation of epigenetic modifications in the differentiation process has yet to be elucidated. We demonstrated here that histone H3 lysine-27 (H3K27) demethylation, predominantly mediated by the H3K27 demethylase Jmjd3, crucially regulated Th17 cell differentiation. Activation of na?ve CD4(+) T cells immediately induced high expression of Jmjd3. Genetic depletion of Jmjd3 in CD4(+) T cells specifically impaired Th17 cell differentiation both in vitro and in vivo. Ectopic expression of Jmjd3 largely rescued the impaired differentiation of Th17 cells in vitro in Jmjd3-deficient CD4(+) T cells. Importantly, Jmjd3-deficient mice were resistant to the induction of experimental autoimmune encephalomyelitis (EAE). Furthermore, inhibition of the H3K27 demethylase activity with the specific inhibitor GSK-J4 dramatically suppressed Th17 cell differentiation in vitro. At the molecular level, Jmjd3 directly bound to and reduced the level of H3K27 trimethylation (me3) at the genomic sites of Rorc, which encodes the master Th17 transcription factor Rorγt, and Th17 cytokine genes such as Il17, Il17f, and Il22. Therefore, our studies established a critical role of Jmjd3-mediated H3K27 demethylation in Th17 cell differentiation and suggest that Jmjd3 can be a novel therapeutic target for suppressing autoimmune responses.
机译:Interleukin(IL)17-产生的T Helper(Th17)细胞在细胞外细菌和真菌的间隙中发挥着关键作用,以及各种自身免疫疾病的发病机制,例如多发性硬化,牛皮癣和溃疡性结肠炎。尽管最近映射了Th17细胞分化的全局转录调节网络,但表观遗传修饰在分化过程中的参与尚未得到阐明。在此证明,组蛋白H3赖氨酸-27(H3K27)去甲基化,主要由H3K27脱甲基酶JMJD3介导,至关重要的Th17细胞分化。 Na've CD4(+)T细胞的活化立即诱导JMJD3的高表达。 CD4(+)T细胞中JMJD3的遗传耗竭在体外和体内特异性地受损Th17细胞分化。 JMJD3的异位表达在很大程度上拯救了在JMJD3缺陷CD4(+)T细胞体外体外的Th17细胞的受损分化。重要的是,JMJD3缺陷小鼠对实验性自身免疫脑脊髓炎(EAE)的诱导抗性。此外,抑制H3K27去甲基酶活性与特异性抑制剂GSK-J4显着抑制了体外抑制Th17细胞分化。在分子水平,JMJD3在RORC基因组位点直接结合并降低H3K27三甲基化(ME3)的水平,其编码母动TH17转录因子RORγT,以及TH17细胞因子基因,如IL17,IL17F和IL22。因此,我们的研究在Th17细胞分化中建立了JMJD3介导的H3K27去甲基化的关键作用,并表明JMJD3可以是抑制自身免疫反应的新疗法靶标。

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