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线粒体靶向信号转导子和转录激活子 3(STAT3)可防止缺血引起的电子传递链变化和活性氧的产生。

Mitochondrial-targeted Signal transducer and activator of transcription 3 (STAT3) protects against ischemia-induced changes in the electron transport chain and the generation of reactive oxygen species.

机构信息

Department of Biochemistry and Molecular Biology, Division of Cardiology, Pauley Heart Center, Virginia Commonwealth University, Richmond, Virginia 23298, USA.

出版信息

J Biol Chem. 2011 Aug 26;286(34):29610-20. doi: 10.1074/jbc.M111.226209. Epub 2011 Jun 29.

DOI:10.1074/jbc.M111.226209
PMID:21715323
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3191002/
Abstract

Expression of the STAT3 transcription factor in the heart is cardioprotective and decreases the levels of reactive oxygen species. Recent studies indicate that a pool of STAT3 resides in the mitochondria where it is necessary for the maximal activity of complexes I and II of the electron transport chain. However, it has not been explored whether mitochondrial STAT3 modulates cardiac function under conditions of stress. Transgenic mice with cardiomyocyte-specific overexpression of mitochondria-targeted STAT3 with a mutation in the DNA-binding domain (MLS-STAT3E) were generated. We evaluated the role of mitochondrial STAT3 in the preservation of mitochondrial function during ischemia. Under conditions of ischemia heart mitochondria expressing MLS-STAT3E exhibited modest decreases in basal activities of complexes I and II of the electron transport chain. In contrast to WT hearts, complex I-dependent respiratory rates were protected against ischemic damage in MLS-STAT3E hearts. MLS-STAT3E prevented the release of cytochrome c into the cytosol during ischemia. In contrast to WT mitochondria, ischemia did not augment reactive oxygen species production in MLS-STAT3E mitochondria likely due to an MLS-STAT3E-mediated partial blockade of electron transport through complex I. Given the caveat of STAT3 overexpression, these results suggest a novel protective mechanism mediated by mitochondrial STAT3 that is independent of its canonical activity as a nuclear transcription factor.

摘要

STAT3 转录因子在心脏中的表达具有心脏保护作用,可降低活性氧的水平。最近的研究表明,STAT3 存在于线粒体中,对于电子传递链复合物 I 和 II 的最大活性是必需的。然而,尚未探讨线粒体 STAT3 是否在应激条件下调节心脏功能。生成了具有 DNA 结合域突变的线粒体靶向 STAT3(MLS-STAT3E)在心肌细胞中过表达的转基因小鼠。我们评估了线粒体 STAT3 在缺血期间维持线粒体功能中的作用。在缺血条件下,表达 MLS-STAT3E 的心脏线粒体中电子传递链复合物 I 和 II 的基础活性适度降低。与 WT 心脏相比,在 MLS-STAT3E 心脏中,依赖于复合物 I 的呼吸速率受到保护,免受缺血损伤。MLS-STAT3E 可防止细胞色素 c 在缺血期间释放到细胞质中。与 WT 线粒体不同,由于 MLS-STAT3E 通过部分阻断复合物 I 的电子传递介导,缺血不会增加 MLS-STAT3E 线粒体中的活性氧产生。鉴于 STAT3 过表达的警告,这些结果表明,由线粒体 STAT3 介导的一种新的保护机制与它作为核转录因子的经典活性无关。

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本文引用的文献

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Inhibition of permeability transition pore opening by mitochondrial STAT3 and its role in myocardial ischemia/reperfusion.线粒体 STAT3 抑制通透性转换孔开放及其在心肌缺血/再灌注中的作用。
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Disruption of astrocyte STAT3 signaling decreases mitochondrial function and increases oxidative stress in vitro.星形胶质细胞 STAT3 信号的破坏会降低线粒体功能并增加体外的氧化应激。
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Sildenafil (Viagra) attenuates ischemic cardiomyopathy and improves left ventricular function in mice.西地那非(万艾可)可减轻小鼠缺血性心肌病并改善左心室功能。
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A cathepsin D-cleaved 16 kDa form of prolactin mediates postpartum cardiomyopathy.组织蛋白酶D切割产生的16 kDa催乳素形式介导产后心肌病。
Cell. 2007 Feb 9;128(3):589-600. doi: 10.1016/j.cell.2006.12.036.
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IL-6 signaling via the STAT3/SOCS3 pathway: functional analysis of the conserved STAT3 N-domain.通过STAT3/SOCS3途径的白细胞介素-6信号传导:保守的STAT3 N结构域的功能分析
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