Signal Transduction, German Rheumatism Research Center (DRFZ), A Leibniz Institute, Charitéplatz 1, 10117 Berlin, Germany.
Proteome Dynamics, Max Delbrück Center for Molecular Medicine in the Helmholtz Association, Robert-Rössle-Str. 10, 13125 Berlin, Germany.
J Mol Biol. 2019 Sep 6;431(19):3606-3625. doi: 10.1016/j.jmb.2019.07.031. Epub 2019 Jul 27.
Differentiation toward CD4 regulatory T (Treg) cells is essentially dependent on an epigenetic program at Treg signature genes, which involves remodeling of the Treg-specific demethylated regions (TSDRs). In particular, the epigenetic status of the conserved non-coding sequence 2 of Foxp3 (Foxp3 TSDR) determines expression stability of the master transcription factor and thus Treg lineage identity. However, the molecular mechanisms controlling the epigenetic remodeling at TSDRs in Treg and conventional T cells are largely unknown. Using a combined approach of DNA pull-down and mass spectrometric analysis, we report a novel regulatory mechanism in which transcription factor Wiz recruits the histone methyltransferase Ehmt1 to Foxp3 TSDR. We show that both Wiz and Ehmt1 are crucial for shaping the region with the repressive histone modification H3K9me2 in conventional T cells. Consistently, knocking out either Ehmt1 or Wiz by CRISPR/Cas resulted in the loss of H3K9me2 and enhanced Foxp3 expression during iTreg differentiation. Moreover, the essential role of the Wiz-Ehmt1 interaction as observed at several TSDRs indicates a global function of Ehmt1 in the Treg differentiation program.
向 CD4 调节性 T (Treg) 细胞的分化在本质上依赖于 Treg 特征基因的表观遗传程序,其中涉及 Treg 特异性去甲基化区域 (TSDR) 的重塑。特别是,Foxp3 的保守非编码序列 2 (Foxp3 TSDR) 的表观遗传状态决定了主转录因子的表达稳定性,从而决定了 Treg 谱系身份。然而,控制 Treg 和常规 T 细胞中 TSDR 处的表观遗传重塑的分子机制在很大程度上尚不清楚。我们采用 DNA 下拉和质谱分析的联合方法,报告了一种新型的调节机制,其中转录因子 Wiz 将组蛋白甲基转移酶 Ehmt1 募集到 Foxp3 TSDR。我们表明,Wiz 和 Ehmt1 对于在常规 T 细胞中形成具有抑制性组蛋白修饰 H3K9me2 的区域都是至关重要的。一致地,通过 CRISPR/Cas 敲除 Ehmt1 或 Wiz 会导致在 iTreg 分化过程中失去 H3K9me2 和增强 Foxp3 表达。此外,在几个 TSDR 上观察到的 Wiz-Ehmt1 相互作用的重要作用表明 Ehmt1 在 Treg 分化程序中具有全局功能。