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p53 对心肌死亡或存活的选择:通过调节 p53-Lys(118)乙酰化,氧在 NOS3 启动子上募集 p53,从而保护梗死心肌。

p53's choice of myocardial death or survival: Oxygen protects infarct myocardium by recruiting p53 on NOS3 promoter through regulation of p53-Lys(118) acetylation.

机构信息

Dorothy M. Davis Heart and Lung Research Institute, Division of Cardiovascular Medicine, Department of Internal Medicine, Ohio State University Wexner Medical Center, Columbus, OH, USA.

出版信息

EMBO Mol Med. 2013 Nov;5(11):1662-83. doi: 10.1002/emmm.201202055. Epub 2013 Oct 1.

Abstract

Myocardial infarction, an irreversible cardiac tissue damage, involves progressive loss of cardiomyocytes due to p53-mediated apoptosis. Oxygenation is known to promote cardiac survival through activation of NOS3 gene. We hypothesized a dual role for p53, which, depending on oxygenation, can elicit apoptotic death signals or NOS3-mediated survival signals in the infarct heart. p53 exhibited a differential DNA-binding, namely, BAX-p53RE in the infarct heart or NOS3-p53RE in the oxygenated heart, which was regulated by oxygen-induced, post-translational modification of p53. In the infarct heart, p53 was heavily acetylated at Lys(118) residue, which was exclusively reversed in the oxygenated heart, apparently regulated by oxygen-dependent expression of TIP60. The inhibition of Lys(118) acetylation promoted the generation of NOS3-promoting prosurvival form of p53. Thus, oxygenation switches p53-DNA interaction by regulating p53 core-domain acetylation, promoting a prosurvival transcription activity of p53. Understanding this novel oxygen-p53 survival pathway will open new avenues in cardioprotection molecular therapy.

摘要

心肌梗死是一种不可逆转的心肌组织损伤,涉及由于 p53 介导的细胞凋亡导致的进行性心肌细胞丧失。已知氧合作用通过激活 NOS3 基因促进心脏存活。我们假设 p53 具有双重作用,根据氧合作用的不同,它可以在梗死心脏中引发凋亡死亡信号或 NOS3 介导的存活信号。p53 表现出不同的 DNA 结合,即在梗死心脏中的 BAX-p53RE 或在充氧心脏中的 NOS3-p53RE,这是由 p53 的氧诱导的、翻译后修饰调节的。在梗死心脏中,p53 在赖氨酸(118)残基上高度乙酰化,这在充氧心脏中仅被逆转,显然受 TIP60 的氧依赖性表达调节。抑制赖氨酸(118)乙酰化促进了生成促进 NOS3 的促生存形式的 p53。因此,氧合作用通过调节 p53 核心结构域乙酰化来切换 p53-DNA 相互作用,促进 p53 的促生存转录活性。了解这种新的氧-p53 存活途径将为心脏保护分子治疗开辟新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ba42/3840484/8045ba86a3b8/emmm0005-1662-f1.jpg

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