Department of Molecular Biology, Massachusetts General Hospital, Boston, MA, USA.
Center for Regenerative Medicine, Massachusetts General Hospital, Boston, MA, USA.
Nat Cell Biol. 2023 Aug;25(8):1121-1134. doi: 10.1038/s41556-023-01191-z. Epub 2023 Jul 17.
The epigenetic mechanisms that maintain differentiated cell states remain incompletely understood. Here we employed histone mutants to uncover a crucial role for H3K36 methylation in the maintenance of cell identities across diverse developmental contexts. Focusing on the experimental induction of pluripotency, we show that H3K36M-mediated depletion of H3K36 methylation endows fibroblasts with a plastic state poised to acquire pluripotency in nearly all cells. At a cellular level, H3K36M facilitates epithelial plasticity by rendering fibroblasts insensitive to TGFβ signals. At a molecular level, H3K36M enables the decommissioning of mesenchymal enhancers and the parallel activation of epithelial/stem cell enhancers. This enhancer rewiring is Tet dependent and redirects Sox2 from promiscuous somatic to pluripotency targets. Our findings reveal a previously unappreciated dual role for H3K36 methylation in the maintenance of cell identity by integrating a crucial developmental pathway into sustained expression of cell-type-specific programmes, and by opposing the expression of alternative lineage programmes through enhancer methylation.
维持细胞分化状态的表观遗传机制仍不完全清楚。在这里,我们利用组蛋白突变体来揭示 H3K36 甲基化在不同发育环境中维持细胞身份的关键作用。我们专注于诱导多能性的实验,表明 H3K36M 介导的 H3K36 甲基化耗竭赋予成纤维细胞一种可塑性状态,使几乎所有细胞都能够获得多能性。在细胞水平上,H3K36M 通过使成纤维细胞对 TGFβ信号不敏感来促进上皮细胞可塑性。在分子水平上,H3K36M 能够使间充质增强子失活,并平行激活上皮/干细胞增强子。这种增强子重布线依赖于 Tet,并将 Sox2 从混杂的体细胞重新定向到多能性靶标。我们的发现揭示了 H3K36 甲基化在维持细胞身份方面的一个以前未被认识的双重作用,它通过将一个关键的发育途径整合到持续表达细胞类型特异性程序中,以及通过增强子甲基化来对抗替代谱系程序的表达,从而维持细胞身份。