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本文引用的文献

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Characterization of potential S-nitrosylation sites in the myocardium.心肌中潜在 S-亚硝基化位点的表征。
Am J Physiol Heart Circ Physiol. 2011 Apr;300(4):H1327-35. doi: 10.1152/ajpheart.00997.2010. Epub 2011 Jan 28.
2
Simultaneous measurement of protein oxidation and S-nitrosylation during preconditioning and ischemia/reperfusion injury with resin-assisted capture.用树脂辅助捕获技术在预处理和缺血/再灌注损伤期间同时测量蛋白质氧化和 S-亚硝基化。
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Cardioprotective pathways during reperfusion: focus on redox signaling and other modalities of cell signaling.再灌注期间的心脏保护途径:聚焦于氧化还原信号和细胞信号的其他模式。
Antioxid Redox Signal. 2011 Mar 1;14(5):833-50. doi: 10.1089/ars.2010.3245. Epub 2010 Nov 30.
4
On the mechanisms of phenothiazine-induced mitochondrial permeability transition: Thiol oxidation, strict Ca2+ dependence, and cyt c release.苯并二氮䓬类诱导的线粒体通透性转换的机制:巯基氧化、严格的 Ca2+ 依赖性和细胞色素 c 释放。
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Protein S-nitrosylation and cardioprotection.蛋白质 S-亚硝基化与心脏保护。
Circ Res. 2010 Feb 5;106(2):285-96. doi: 10.1161/CIRCRESAHA.109.209452.
6
Redox characterization of human cyclophilin D: identification of a new mammalian mitochondrial redox sensor?人亲环素D的氧化还原特性:一种新的哺乳动物线粒体氧化还原传感器的鉴定?
Arch Biochem Biophys. 2009 Nov;491(1-2):39-45. doi: 10.1016/j.abb.2009.09.002. Epub 2009 Sep 6.
7
Estrogen receptor-beta activation results in S-nitrosylation of proteins involved in cardioprotection.雌激素受体-β激活导致参与心脏保护的蛋白质发生S-亚硝基化。
Circulation. 2009 Jul 21;120(3):245-54. doi: 10.1161/CIRCULATIONAHA.109.868729. Epub 2009 Jul 6.
8
Cyclophilin D gene ablation protects mice from ischemic renal injury.亲环素D基因敲除可保护小鼠免受缺血性肾损伤。
Am J Physiol Renal Physiol. 2009 Sep;297(3):F749-59. doi: 10.1152/ajprenal.00239.2009. Epub 2009 Jun 24.
9
What is the mitochondrial permeability transition pore?什么是线粒体通透性转换孔?
J Mol Cell Cardiol. 2009 Jun;46(6):821-31. doi: 10.1016/j.yjmcc.2009.02.021. Epub 2009 Mar 3.
10
PERP, a p53 proapoptotic target, mediates apoptotic cell death in renal ischemia.PERP是一种p53促凋亡靶点,介导肾缺血中的凋亡性细胞死亡。
Am J Physiol Renal Physiol. 2009 Apr;296(4):F847-58. doi: 10.1152/ajprenal.90438.2008. Epub 2009 Jan 21.

亲环素 D 的半胱氨酸 203 对于亲环素 D 激活线粒体通透性转换孔至关重要。

Cysteine 203 of cyclophilin D is critical for cyclophilin D activation of the mitochondrial permeability transition pore.

机构信息

Systems Biology Center, NHLBI, National Institutes of Health, Bethesda, Maryland 20892, USA.

出版信息

J Biol Chem. 2011 Nov 18;286(46):40184-92. doi: 10.1074/jbc.M111.243469. Epub 2011 Sep 19.

DOI:10.1074/jbc.M111.243469
PMID:21930693
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3220546/
Abstract

The mitochondrial permeability transition pore (mPTP) opening plays a critical role in mediating cell death during ischemia/reperfusion (I/R) injury. Our previous studies have shown that cysteine 203 of cyclophilin D (CypD), a critical mPTP mediator, undergoes protein S-nitrosylation (SNO). To investigate the role of cysteine 203 in mPTP activation, we mutated cysteine 203 of CypD to a serine residue (C203S) and determined its effect on mPTP opening. Treatment of WT mouse embryonic fibroblasts (MEFs) with H(2)O(2) resulted in an 50% loss of the mitochondrial calcein fluorescence, suggesting substantial activation of the mPTP. Consistent with the reported role of CypD in mPTP activation, CypD null (CypD(-/-)) MEFs exhibited significantly less mPTP opening. Addition of a nitric oxide donor, GSNO, to WT but not CypD(-/-) MEFs prior to H(2)O(2) attenuated mPTP opening. To test whether Cys-203 is required for this protection, we infected CypD(-/-) MEFs with a C203S-CypD vector. Surprisingly, C203S-CypD reconstituted MEFs were resistant to mPTP opening in the presence or absence of GSNO, suggesting a crucial role for Cys-203 in mPTP activation. To determine whether mutation of C203S-CypD would alter mPTP in vivo, we injected a recombinant adenovirus encoding C203S-CypD or WT CypD into CypD(-/-) mice via tail vein. Mitochondria isolated from livers of CypD(-/-) mice or mice expressing C203S-CypD were resistant to Ca(2+)-induced swelling as compared with WT CypD-reconstituted mice. Our results indicate that the Cys-203 residue of CypD is necessary for redox stress-induced activation of mPTP.

摘要

线粒体通透性转换孔(mPTP)的开放在介导缺血/再灌注(I/R)损伤中的细胞死亡中起着关键作用。我们之前的研究表明,亲环素 D(CypD)是 mPTP 的关键介质,其 203 位半胱氨酸发生蛋白 S-亚硝基化(SNO)。为了研究 203 位半胱氨酸在 mPTP 激活中的作用,我们将 CypD 的 203 位半胱氨酸突变为丝氨酸残基(C203S),并确定其对 mPTP 开放的影响。用 H2O2 处理 WT 小鼠胚胎成纤维细胞(MEFs)导致线粒体钙黄绿素荧光丧失 50%,表明 mPTP 大量激活。与 CypD 在 mPTP 激活中的作用一致,CypD 缺失(CypD(-/-))MEFs 显示出明显较少的 mPTP 开放。在 H2O2 之前向 WT 而非 CypD(-/-) MEFs 添加一氧化氮供体 GSNO 可减轻 mPTP 开放。为了测试 Cys-203 是否是这种保护所必需的,我们用 C203S-CypD 载体感染 CypD(-/-) MEFs。令人惊讶的是,在存在或不存在 GSNO 的情况下,C203S-CypD 重组 MEFs 对 mPTP 开放具有抗性,这表明 Cys-203 在 mPTP 激活中起着关键作用。为了确定 C203S-CypD 的突变是否会改变体内的 mPTP,我们通过尾静脉将编码 C203S-CypD 或 WT CypD 的重组腺病毒注入 CypD(-/-) 小鼠体内。与 WT CypD 重建小鼠相比,从 CypD(-/-) 小鼠或表达 C203S-CypD 的小鼠肝脏中分离的线粒体对 Ca2+诱导的肿胀具有抗性。我们的结果表明,CypD 的 Cys-203 残基是还原应激诱导的 mPTP 激活所必需的。