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定量剖析和人 SET1/MLL 组蛋白甲基转移酶复合物的化学计量测定。

Quantitative dissection and stoichiometry determination of the human SET1/MLL histone methyltransferase complexes.

机构信息

Molecular Cancer Research, Netherlands Proteomics Center, Utrecht, The Netherlands.

出版信息

Mol Cell Biol. 2013 May;33(10):2067-77. doi: 10.1128/MCB.01742-12. Epub 2013 Mar 18.

Abstract

Methylation of lysine 4 on histone H3 (H3K4) at promoters is tightly linked to transcriptional regulation in human cells. At least six different COMPASS-like multisubunit (SET1/MLL) complexes that contain methyltransferase activity for H3K4 have been described, but a comprehensive and quantitative analysis of these SET1/MLL complexes is lacking. We applied label-free quantitative mass spectrometry to determine the subunit composition and stoichiometry of the human SET1/MLL complexes. We identified both known and novel, unique and shared interactors and determined their distribution and stoichiometry over the different SET1/MLL complexes. In addition to being a core COMPASS subunit, the Dpy30 protein is a genuine subunit of the NURF chromatin remodeling complex. Furthermore, we identified the Bod1 protein as a discriminator between the SET1B and SET1A complexes, and we show that the H3K36me-interactor Psip1 preferentially binds to the MLL2 complex. Finally, absolute protein quantification in crude lysates mirrors many of the observed SET1/MLL complex stoichiometries. Our findings provide a molecular framework for understanding the diversity and abundance of the different SET1/MLL complexes, which together establish the H3K4 methylation landscape in human cells.

摘要

组蛋白 H3 赖氨酸 4 的甲基化(H3K4)与人类细胞中的转录调控密切相关。已经描述了至少六种不同的 COMPASS 样多亚基(SET1/MLL)复合物,它们含有 H3K4 的甲基转移酶活性,但对这些 SET1/MLL 复合物缺乏全面和定量的分析。我们应用无标记定量质谱法来确定人 SET1/MLL 复合物的亚基组成和化学计量。我们鉴定了已知和新的、独特的和共享的相互作用物,并确定了它们在不同 SET1/MLL 复合物中的分布和化学计量。除了作为核心 COMPASS 亚基外,Dpy30 蛋白还是 NURF 染色质重塑复合物的真正亚基。此外,我们鉴定出 Bod1 蛋白是 SET1B 和 SET1A 复合物之间的区分因子,并且我们表明 H3K36me 相互作用物 Psip1 优先结合到 MLL2 复合物。最后,粗裂解物中的绝对蛋白定量反映了许多观察到的 SET1/MLL 复合物化学计量。我们的发现为理解不同 SET1/MLL 复合物的多样性和丰度提供了分子框架,这些复合物共同构成了人类细胞中 H3K4 甲基化景观。

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