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Metabolic control of T(H)17 and induced T-reg cell balance by an epigenetic mechanism

机译:通过表观遗传机制对T(H)17的代谢控制和诱导的T-reg细胞平衡

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摘要

Metabolism has been shown to integrate with epigenetics and transcription to modulate cell fate and function(1-3). Beyond meeting the bioenergetic and biosynthetic demands of T-cell differentiation(4-8), whether metabolism might control T-cell fate by an epigenetic mechanism is unclear. Here, through the discovery and mechanistic characterization of a small molecule, (aminooxy) acetic acid, that reprograms the differentiation of T helper 17 (T(H)17) cells towards induced regulatory T (iT(reg)) cells, we show that increased transamination, mainly catalysed by GOT1, leads to increased levels of 2-hydroxyglutarate in differentiating T(H)17 cells. The accumulation of 2-hydroxyglutarate resulted in hypermethylation of the Foxp3 gene locus and inhibited Foxp3 transcription, which is essential for fate determination towards T(H)17 cells. Inhibition of the conversion of glutamate to a-ketoglutaric acid prevented the production of 2-hydroxyglutarate, reduced methylation of the Foxp3 gene locus, and increased Foxp3 expression. This consequently blocked the differentiation of T(H)17 cells by antagonizing the function of transcription factor ROR gamma t and promoted polarization into iT(reg) cells. Selective inhibition of GOT1 with (aminooxy) acetic acid ameliorated experimental autoimmune encephalomyelitis in a therapeutic mouse model by regulating the balance between T(H)17 and iT(reg) cells. Targeting a glutamate-dependent metabolic pathway thus represents a new strategy for developing therapeutic agents against T(H)17-mediated autoimmune diseases.
机译:代谢已被证明与表观遗传学和转录整合在一起,以调节细胞的命运和功能(1-3)。除了满足T细胞分化的生物能和生物合成要求外(4-8),新陈代谢是否可能通过表观遗传机制控制T细胞的命运。在这里,通过对小分子(氨氧基)乙酸的发现和机制表征,该分子重新编程了T辅助17(T(H)17)细胞向诱导性调节性T(iT(reg))细胞的分化,增加的转氨作用(主要由GOT1催化)导致分化的T(H)17细胞中2-羟基戊二酸水平升高。 2-羟基戊二酸的积累导致Foxp3基因位点的高度甲基化并抑制Foxp3转录,这对于确定T(H)17细胞的命运至关重要。谷氨酸向α-酮戊二酸转化的抑制作用阻止了2-羟基戊二酸的产生,减少了Foxp3基因位点的甲基化,并增加了Foxp3的表达。因此,这通过拮抗转录因子ROR gamma t的功能来阻止T(H)17细胞的分化,并促进了极化进入iT(reg)细胞。通过调节T(H)17和iT(reg)细胞之间的平衡,用(氨氧基)乙酸对GOT1的选择性抑制改善了治疗性小鼠模型中的实验性自身免疫性脑脊髓炎。因此,靶向谷氨酸依赖的代谢途径代表了开发针对T(H)17介导的自身免疫性疾病的治疗剂的新策略。

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  • 来源
    《Nature》 |2017年第7666期|228-233|共6页
  • 作者单位

    J David Gladstone Inst, 1650 Owens St, San Francisco, CA 94158 USA;

    Agios Pharmaceut, 38 Sidney St, Cambridge, MA 02139 USA;

    Tsinghua Univ, Inst Immunol, Beijing 100084, Peoples R China|Tsinghua Univ, Sch Med, Beijing 100084, Peoples R China;

    J David Gladstone Inst, 1650 Owens St, San Francisco, CA 94158 USA;

    J David Gladstone Inst, 1650 Owens St, San Francisco, CA 94158 USA;

    J David Gladstone Inst, 1650 Owens St, San Francisco, CA 94158 USA;

    J David Gladstone Inst, 1650 Owens St, San Francisco, CA 94158 USA;

    J David Gladstone Inst, 1650 Owens St, San Francisco, CA 94158 USA|Tsinghua Univ, Sch Pharmaceut Sci, Beijing 100084, Peoples R China;

    J David Gladstone Inst, 1650 Owens St, San Francisco, CA 94158 USA;

    Tsinghua Univ, Inst Immunol, Beijing 100084, Peoples R China|Tsinghua Univ, Sch Med, Beijing 100084, Peoples R China;

    J David Gladstone Inst, 1650 Owens St, San Francisco, CA 94158 USA;

    J David Gladstone Inst, 1650 Owens St, San Francisco, CA 94158 USA;

    Agios Pharmaceut, 38 Sidney St, Cambridge, MA 02139 USA;

    J David Gladstone Inst, 1650 Owens St, San Francisco, CA 94158 USA;

    J David Gladstone Inst, 1650 Owens St, San Francisco, CA 94158 USA|Univ Calif San Francisco, Dept Neurol, San Francisco, CA 94143 USA;

    Tsinghua Univ, Inst Immunol, Beijing 100084, Peoples R China|Tsinghua Univ, Sch Med, Beijing 100084, Peoples R China;

    Agios Pharmaceut, 38 Sidney St, Cambridge, MA 02139 USA|Gen Metabol LLC, 3 Huntington Rd, Arlington, MA 02474 USA;

    J David Gladstone Inst, 1650 Owens St, San Francisco, CA 94158 USA|Tsinghua Univ, Sch Pharmaceut Sci, Beijing 100084, Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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