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H3.3K27M 致癌组蛋白拮抗果蝇中的重编程。

The H3.3K27M oncohistone antagonizes reprogramming in Drosophila.

作者信息

Ahmad Kami, Henikoff Steven

机构信息

Basic Sciences Division, Fred Hutchinson Cancer Research Center, Seattle, Washington, United States of America.

Howard Hughes Medical Institute, Seattle, Washington, United States of America.

出版信息

PLoS Genet. 2021 Jul 19;17(7):e1009225. doi: 10.1371/journal.pgen.1009225. eCollection 2021 Jul.

DOI:10.1371/journal.pgen.1009225
PMID:34280185
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8320987/
Abstract

Development proceeds by the activation of genes by transcription factors and the inactivation of others by chromatin-mediated gene silencing. In certain cases development can be reversed or redirected by mis-expression of master regulator transcription factors. This must involve the activation of previously silenced genes, and such developmental aberrations are thought to underlie a variety of cancers. Here, we express the wing-specific Vestigial master regulator to reprogram the developing eye, and test the role of silencing in reprogramming using an H3.3K27M oncohistone mutation that dominantly inhibits histone H3K27 trimethylation. We find that production of the oncohistone blocks eye-to-wing reprogramming. CUT&Tag chromatin profiling of mutant tissues shows that H3K27me3 of domains is generally reduced upon oncohistone production, suggesting that a previous developmental program must be silenced for effective transformation. Strikingly, Vg and H3.3K27M synergize to stimulate overgrowth of eye tissue, a phenotype that resembles that of mutations in Polycomb silencing components. Transcriptome profiling of elongating RNA Polymerase II implicates the mis-regulation of signaling factors in overgrowth. Our results demonstrate that growth dysregulation can result from the simple combination of crippled silencing and transcription factor mis-expression, an effect that may explain the origins of oncohistone-bearing cancers.

摘要

发育过程是通过转录因子激活基因以及通过染色质介导的基因沉默使其他基因失活来进行的。在某些情况下,通过主调控转录因子的错误表达,发育可以被逆转或重定向。这必然涉及到激活先前沉默的基因,而这种发育异常被认为是多种癌症的基础。在这里,我们表达翅膀特异性的残翅主调控因子来对发育中的眼睛进行重编程,并使用一种主要抑制组蛋白H3K27三甲基化的H3.3K27M癌组蛋白突变来测试沉默在重编程中的作用。我们发现癌组蛋白的产生会阻止眼睛向翅膀的重编程。对突变组织进行的CUT&Tag染色质分析表明,癌组蛋白产生后,结构域的H3K27me3普遍减少,这表明为了实现有效的转化,先前的发育程序必须被沉默。令人惊讶的是,Vg和H3.3K27M协同作用以刺激眼组织过度生长,这种表型类似于多梳沉默成分中的突变。对延伸的RNA聚合酶II进行转录组分析表明,信号因子的错误调控与过度生长有关。我们的结果表明,生长失调可能源于沉默缺陷和转录因子错误表达的简单组合,这种效应可能解释了携带癌组蛋白的癌症的起源。

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Efficient low-cost chromatin profiling with CUT&Tag.利用 CUT&Tag 进行高效、低成本的染色质谱分析。
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Histone deposition pathways determine the chromatin landscapes of H3.1 and H3.3 K27M oncohistones.
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Chromosome-specific maturation of the epigenome in the male germline.精子发生过程中基因组在染色体上的特异性成熟。
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