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Histone H3.3 基因的差异表达及其在调节. 温度应激反应中的作用

Differential Expression of Histone H3.3 Genes and Their Role in Modulating Temperature Stress Response in .

机构信息

Department of Molecular Biology, Institute of Genetics and Genomics in Geneva, University of Geneva, 1211, Switzerland.

Department of Molecular Biology, Institute of Genetics and Genomics in Geneva, University of Geneva, 1211, Switzerland

出版信息

Genetics. 2018 Jun;209(2):551-565. doi: 10.1534/genetics.118.300909. Epub 2018 Apr 10.

Abstract

Replication-independent variant histones replace canonical histones in nucleosomes and act as important regulators of chromatin function. H3.3 is a major variant of histone H3 that is remarkably conserved across taxa and is distinguished from canonical H3 by just four key amino acids. Most genomes contain two or more genes expressing H3.3, and complete loss of the protein usually causes sterility or embryonic lethality. Here, we investigate the developmental expression patterns of the five H3.3 homologs and identify two previously uncharacterized homologs to be restricted to the germ line. Despite these specific expression patterns, we find that neither loss of individual H3.3 homologs nor the knockout of all five H3.3-coding genes causes sterility or lethality. However, we demonstrate an essential role for the conserved histone chaperone HIRA in the nucleosomal loading of all H3.3 variants. This requirement can be bypassed by mutation of the H3.3-specific residues to those found in H3. While even removal of all H3.3 homologs does not result in lethality, it leads to reduced fertility and viability in response to high-temperature stress. Thus, our results show that H3.3 is nonessential in but is critical for ensuring adequate response to stress.

摘要

复制独立的变体组蛋白取代核小体中的经典组蛋白,并作为染色质功能的重要调节剂。H3.3 是组蛋白 H3 的主要变体,在分类群中高度保守,仅通过四个关键氨基酸与经典 H3 区分开来。大多数基因组包含两个或更多表达 H3.3 的基因,而该蛋白的完全缺失通常会导致不育或胚胎致死。在这里,我们研究了五个 H3.3 同源物的发育表达模式,并确定了两个以前未被表征的同源物局限于生殖系。尽管存在这些特定的表达模式,但我们发现单个 H3.3 同源物的缺失或所有五个 H3.3 编码基因的敲除都不会导致不育或致死。然而,我们证明了保守的组蛋白伴侣 HIRA 在所有 H3.3 变体的核小体加载中具有重要作用。这种需求可以通过将 H3.3 特有的残基突变为 H3 中的残基来绕过。尽管去除所有 H3.3 同源物本身并不会导致致死,但它会导致在高温应激下生育力和活力降低。因此,我们的结果表明 H3.3 在 中是非必需的,但对于确保对压力的充分反应是至关重要的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/49b3/5972426/5db3b1aaafa4/551fig1.jpg

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