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Nuclear envelope alterations generate an aging-like epigenetic pattern in mice deficient in Zmpste24 metalloprotease.核膜改变会导致缺乏 Zmpste24 金属蛋白酶的小鼠产生类似衰老的表观遗传模式。
Aging Cell. 2010 Dec;9(6):947-57. doi: 10.1111/j.1474-9726.2010.00621.x. Epub 2010 Oct 21.
3
MOF and H4 K16 acetylation play important roles in DNA damage repair by modulating recruitment of DNA damage repair protein Mdc1.多器官衰竭和组蛋白 H4 K16 乙酰化在 DNA 损伤修复中发挥重要作用,通过调节 DNA 损伤修复蛋白 Mdc1 的募集来实现。
Mol Cell Biol. 2010 Nov;30(22):5335-47. doi: 10.1128/MCB.00350-10. Epub 2010 Sep 13.
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Defective DSB repair correlates with abnormal nuclear morphology and is improved with FTI treatment in Hutchinson-Gilford progeria syndrome fibroblasts.DSB 修复缺陷与核形态异常相关,并在 Hutchinson-Gilford 早衰综合征成纤维细胞中通过 FTI 治疗得到改善。
Exp Cell Res. 2010 Oct 15;316(17):2747-59. doi: 10.1016/j.yexcr.2010.05.015. Epub 2010 Jun 25.
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MOF and histone H4 acetylation at lysine 16 are critical for DNA damage response and double-strand break repair.多器官衰竭和组蛋白 H4 赖氨酸 16 乙酰化对于 DNA 损伤反应和双链断裂修复至关重要。
Mol Cell Biol. 2010 Jul;30(14):3582-95. doi: 10.1128/MCB.01476-09. Epub 2010 May 17.
6
Prelamin A acts to accelerate smooth muscle cell senescence and is a novel biomarker of human vascular aging.原层蛋白 A 可加速平滑肌细胞衰老,是人类血管衰老的新型生物标志物。
Circulation. 2010 May 25;121(20):2200-10. doi: 10.1161/CIRCULATIONAHA.109.902056. Epub 2010 May 10.
7
Altered histone acetylation is associated with age-dependent memory impairment in mice.组蛋白乙酰化的改变与小鼠年龄相关性记忆障碍有关。
Science. 2010 May 7;328(5979):753-6. doi: 10.1126/science.1186088.
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Aging and disease: connections to sirtuins.衰老与疾病:与 Sirtuins 的关联。
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9
Chromatin modifications: the driving force of senescence and aging?染色质修饰:衰老和老化的驱动力?
Aging (Albany NY). 2009 Feb 13;1(2):182-90. doi: 10.18632/aging.100023.
10
gammaH2AX foci analysis for monitoring DNA double-strand break repair: strengths, limitations and optimization.γH2AX 焦点分析监测 DNA 双链断裂修复:优势、局限性和优化。
Cell Cycle. 2010 Feb 15;9(4):662-9. doi: 10.4161/cc.9.4.10764. Epub 2010 Mar 2.

组蛋白 H4 赖氨酸 16 低乙酰化与 Zmpste24 缺陷小鼠中 DNA 修复缺陷和过早衰老有关。

Histone H4 lysine 16 hypoacetylation is associated with defective DNA repair and premature senescence in Zmpste24-deficient mice.

机构信息

Department of Biochemistry, University of Hong Kong, Hong Kong.

出版信息

Proc Natl Acad Sci U S A. 2011 Jul 26;108(30):12325-30. doi: 10.1073/pnas.1102789108. Epub 2011 Jul 11.

DOI:10.1073/pnas.1102789108
PMID:21746928
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3145730/
Abstract

Specific point mutations in lamin A gene have been shown to accelerate aging in humans and mice. Particularly, a de novo mutation at G608G position impairs lamin A processing to produce the mutant protein progerin, which causes the Hutchinson Gilford progeria syndrome. The premature aging phenotype of Hutchinson Gilford progeria syndrome is largely recapitulated in mice deficient for the lamin A-processing enzyme, Zmpste24. We have previously reported that Zmpste24 deficiency results in genomic instability and early cellular senescence due to the delayed recruitment of repair proteins to sites of DNA damage. Here, we further investigate the molecular mechanism underlying delayed DNA damage response and identify a histone acetylation defect in Zmpste24(-/-) mice. Specifically, histone H4 was hypoacetylated at a lysine 16 residue (H4K16), and this defect was attributed to the reduced association of a histone acetyltransferase, Mof, to the nuclear matrix. Given the reversible nature of epigenetic changes, rescue experiments performed either by Mof overexpression or by histone deacetylase inhibition promoted repair protein recruitment to DNA damage sites and substantially ameliorated aging-associated phenotypes, both in vitro and in vivo. The life span of Zmpste24(-/-) mice was also extended with the supplementation of a histone deacetylase inhibitor, sodium butyrate, to drinking water. Consistent with recent data showing age-dependent buildup of unprocessable lamin A in physiological aging, aged wild-type mice also showed hypoacetylation of H4K16. The above results shed light on how chromatin modifications regulate the DNA damage response and suggest that the reversal of epigenetic marks could make an attractive therapeutic target against laminopathy-based progeroid pathologies.

摘要

特定的核纤层蛋白 A 基因突变已被证明可加速人类和小鼠的衰老。特别是在 G608G 位置的新突变会损害核纤层蛋白 A 的加工,从而产生导致哈钦森-吉尔福德早衰综合征的突变蛋白 progerin。哈钦森-吉尔福德早衰综合征的过早衰老表型在缺乏核纤层蛋白 A 加工酶 Zmpste24 的小鼠中得到了很大程度的再现。我们之前报道过,Zmpste24 缺乏会导致基因组不稳定和早期细胞衰老,这是由于修复蛋白向 DNA 损伤部位的募集延迟所致。在这里,我们进一步研究了延迟 DNA 损伤反应的分子机制,并在 Zmpste24(-/-) 小鼠中发现了组蛋白乙酰化缺陷。具体而言,组蛋白 H4 在赖氨酸 16 残基(H4K16)处被低乙酰化,并且这种缺陷归因于组蛋白乙酰转移酶 Mof 与核基质的结合减少。鉴于表观遗传变化的可逆性质,通过 Mof 过表达或组蛋白去乙酰化酶抑制进行的挽救实验促进了修复蛋白向 DNA 损伤部位的募集,并在体外和体内都显著改善了与衰老相关的表型。Zmpste24(-/-) 小鼠的寿命也通过在饮用水中添加组蛋白去乙酰化酶抑制剂丁酸钠而延长。与最近显示生理衰老中不可处理的核纤层蛋白 A 积累随年龄增长的研究数据一致,老年野生型小鼠也显示出 H4K16 的低乙酰化。上述结果阐明了染色质修饰如何调节 DNA 损伤反应,并表明表观遗传标记的逆转可能成为基于核纤层蛋白病的早衰病理的有吸引力的治疗靶点。