首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Distinct Cellular Assembly Stoichiometry of Polycomb Complexes on Chromatin Revealed by Single-molecule Chromatin Immunoprecipitation Imaging
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Distinct Cellular Assembly Stoichiometry of Polycomb Complexes on Chromatin Revealed by Single-molecule Chromatin Immunoprecipitation Imaging

机译:单分子染色质免疫沉淀成像揭示了染色质上多梳复合物的不同细胞组装化学计量学。

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摘要

Epigenetic complexes play an essential role in regulating chromatin structure, but information about their assembly stoichiometry on chromatin within cells is poorly understood. The cellular assembly stoichiometry is critical for appreciating the initiation, propagation, and maintenance of epigenetic inheritance during normal development and in cancer. By combining genetic engineering, chromatin biochemistry, and single-molecule fluorescence imaging, we developed a novel and sensitive approach termed single-molecule chromatin immunoprecipitation imaging (Sm-ChIPi) to enable investigation of the cellular assembly stoichiometry of epigenetic complexes on chromatin. Sm-ChIPi was validated by using chromatin complexes with known stoichiometry. The stoichiometry of subunits within a polycomb complex and the assembly stoichiometry of polycomb complexes on chromatin have been extensively studied but reached divergent views. Moreover, the cellular assembly stoichiometry of polycomb complexes on chromatin remains unexplored. Using Sm-ChIPi, we demonstrated that within mouse embryonic stem cells, one polycomb repressive complex (PRC) 1 associates with multiple nucleosomes, whereas two PRC2s can bind to a single nucleosome. Furthermore, we obtained direct physical evidence that the nucleoplasmic PRC1 is monomeric, whereas PRC2 can dimerize in the nucleoplasm. We showed that ES cell differentiation induces selective alteration of the assembly stoichiometry of Cbx2 on chromatin but not other PRC1 components. We additionally showed that the PRC2-mediated trimethylation of H3K27 is not required for the assembly stoichiometry of PRC1 on chromatin. Thus, these findings uncover that PRC1 and PRC2 employ distinct mechanisms to assemble on chromatin, and the novel Sm-ChIPi technique could provide single-molecule insight into other epigenetic complexes.
机译:表观遗传复合物在调节染色质结构中起着至关重要的作用,但是关于它们在细胞内对染色质的组装化学计量的信息知之甚少。细胞组装化学计量对于在正常发育和癌症中了解表观遗传的起始,繁殖和维持至关重要。通过将基因工程,染色质生物化学和单分子荧光成像相结合,我们开发了一种称为单分子染色质免疫沉淀成像(Sm-ChIPi)的新颖且灵敏的方法,以能够研究染色质上表观遗传复合物的细胞组装化学计量。 Sm-ChIPi通过使用已知化学计量的染色质复合物进行验证。已经对聚梳复合物内的亚基的化学计量和染色质上聚梳复合物的组装化学计量进行了广泛研究,但意见分歧。此外,染色质上的多梳复合物的细胞组装化学计量仍未探索。使用Sm-ChIPi,我们证明了在小鼠胚胎干细胞中,一个多梳抑制复合物(PRC)1与多个核小体缔合,而两个PRC2可以与单个核小体结合。此外,我们获得了直接的物理证据,表明核质PRC1是单体的,而PRC2可以在核质中二聚。我们显示ES细胞分化诱导染色质上Cbx2的组装化学计量的选择性改变,但不影响其他PRC1组件。我们还显示,PRC1在染色质上的组装化学计量不需要PRC2介导的H3K27三甲基化。因此,这些发现揭示了PRC1和PRC2采用不同的机制在染色质上组装,并且新颖的Sm-ChIPi技术可以提供对其他表观遗传复合物的单分子洞察力。

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