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应激诱导的细胞周期蛋白 C 易位调节心脏线粒体动力学。

Stress-Induced Cyclin C Translocation Regulates Cardiac Mitochondrial Dynamics.

机构信息

Abboud Cardiovascular Research Center Division of Cardiovascular Medicine Department of Internal Medicine Carver College of Medicine University of Iowa Iowa City IA.

Interdisciplinary Graduate Program in Genetics University of Iowa Iowa City IA.

出版信息

J Am Heart Assoc. 2020 Apr 7;9(7):e014366. doi: 10.1161/JAHA.119.014366. Epub 2020 Apr 4.

Abstract

Background Nuclear-to-mitochondrial communication regulating gene expression and mitochondrial function is a critical process following cardiac ischemic injury. In this study, we determined that cyclin C, a component of the Mediator complex, regulates cardiac and mitochondrial function in part by modifying mitochondrial fission. We tested the hypothesis that cyclin C functions as a transcriptional cofactor in the nucleus and a signaling molecule stimulating mitochondrial fission in response to stimuli such as cardiac ischemia. Methods and Results We utilized gain- and loss-of-function mouse models in which the (cyclin C) gene was constitutively expressed (transgenic, CycC cTg) or deleted (knockout, CycC cKO) in cardiomyocytes. The knockout and transgenic mice exhibited decreased cardiac function and altered mitochondria morphology. The hearts of knockout mice had enlarged mitochondria with increased length and area, whereas mitochondria from the hearts of transgenic mice were significantly smaller, demonstrating a role for cyclin C in regulating mitochondrial dynamics in vivo. Hearts from knockout mice displayed altered gene transcription and metabolic function, suggesting that cyclin C is essential for maintaining normal cardiac function. In vitro and in vivo studies revealed that cyclin C translocates to the cytoplasm, enhancing mitochondria fission following stress. We demonstrated that cyclin C interacts with Cdk1 (cyclin-dependent kinase 1) in vivo following ischemia/reperfusion injury and that, consequently, pretreatment with a Cdk1 inhibitor results in reduced mitochondrial fission. This finding suggests a potential therapeutic target to regulate mitochondrial dynamics in response to stress. Conclusions Our study revealed that cyclin C acts as a nuclear-to-mitochondrial signaling factor that regulates both cardiac hypertrophic gene expression and mitochondrial fission. This finding provides new insights into the regulation of cardiac energy metabolism following acute ischemic injury.

摘要

背景

核-线粒体通讯调节基因表达和线粒体功能是心脏缺血损伤后的一个关键过程。在这项研究中,我们确定细胞周期蛋白 C(Mediator 复合物的一个组成部分)通过修饰线粒体裂变来调节心脏和线粒体功能。我们检验了这样一个假设,即细胞周期蛋白 C 作为核内转录共因子和信号分子发挥作用,以响应心脏缺血等刺激来刺激线粒体裂变。

方法和结果

我们利用组成型表达(转基因,CycC cTg)或缺失(敲除,CycC cKO)细胞周期蛋白 C 基因的获得功能和丧失功能的小鼠模型。敲除和转基因小鼠表现出心脏功能下降和线粒体形态改变。敲除小鼠的心脏线粒体增大,长度和面积增加,而转基因小鼠的心脏线粒体明显较小,表明细胞周期蛋白 C 在体内调节线粒体动力学方面发挥作用。敲除小鼠的心脏显示出转录和代谢功能改变,表明细胞周期蛋白 C 对于维持正常心脏功能是必不可少的。体内外研究表明,细胞周期蛋白 C 在应激后向细胞质易位,增强线粒体裂变。我们证明,细胞周期蛋白 C 在缺血/再灌注损伤后体内与 Cdk1(细胞周期蛋白依赖性激酶 1)相互作用,因此,预先用 Cdk1 抑制剂处理会导致线粒体裂变减少。这一发现为调节应激下的线粒体动力学提供了一个潜在的治疗靶点。

结论

我们的研究表明,细胞周期蛋白 C 作为核-线粒体信号因子发挥作用,调节心脏肥厚基因表达和线粒体裂变。这一发现为急性缺血性损伤后心脏能量代谢的调节提供了新的见解。

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