Center for Stem Cell Biology and Regenerative Medicine, MOE Key Laboratory of Bioinformatics, New Cornerstone Science Laboratory, School of Life Sciences, Tsinghua University, Beijing, China.
Tsinghua-Peking Center for Life Sciences, Beijing, China.
Nat Genet. 2024 Oct;56(10):2185-2198. doi: 10.1038/s41588-024-01897-2. Epub 2024 Sep 10.
X chromosome inactivation triggers a dramatic reprogramming of transcription and chromosome architecture. However, how the chromatin organization of inactive X chromosome is established de novo in vivo remains elusive. Here, we identified an Xist-separated megadomain structure (X-megadomains) on the inactive X chromosome in mouse extraembryonic lineages and extraembryonic endoderm (XEN) cell lines, and transiently in the embryonic lineages, before Dxz4-delineated megadomain formation at later stages in a strain-specific manner. X-megadomain boundary coincides with strong enhancer activities and cohesin binding in an Xist regulatory region required for proper Xist activation in early embryos. Xist regulatory region disruption or cohesin degradation impaired X-megadomains in extraembryonic endoderm cells and caused ectopic activation of regulatory elements and genes near Xist, indicating that cohesin loading at regulatory elements promotes X-megadomains and confines local gene activities. These data reveal stepwise X chromosome folding and transcriptional regulation to achieve both essential gene activation and global silencing during the early stages of X chromosome inactivation.
X 染色体失活引发转录和染色体结构的剧烈重编程。然而,体内无活性 X 染色体的染色质组织如何从头建立仍然难以捉摸。在这里,我们在小鼠胚胎外谱系和胚胎外内胚层 (XEN) 细胞系中鉴定了无活性 X 染色体上的 Xist 分离的巨域结构 (X-megadomains),并在胚胎谱系中短暂出现,随后在稍后阶段以特定于品系的方式形成 Dxz4 划定的巨域。X-megadomain 边界与强增强子活性和黏合素结合一致,这是 Xist 在早期胚胎中正确激活所必需的 Xist 调节区。Xist 调节区的破坏或黏合素的降解破坏了胚胎外内胚层细胞中的 X-megadomains,并导致 Xist 附近的调节元件和基因的异位激活,表明黏合素在调节元件上的加载促进了 X-megadomains 的形成,并限制了局部基因活性。这些数据揭示了 X 染色体折叠和转录调控的逐步进行,以在 X 染色体失活的早期阶段实现必需基因的激活和全局沉默。