首页> 外文期刊>The Journal of biological chemistry >Cardiomyocyte ATP Production, Metabolic Flexibility, and Survival Require Calcium Flux through Cardiac Ryanodine Receptors in Vivo
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Cardiomyocyte ATP Production, Metabolic Flexibility, and Survival Require Calcium Flux through Cardiac Ryanodine Receptors in Vivo

机译:心肌细胞ATP生产,代谢柔韧性,生存需要通过体内心脏ryanodine受体需要钙助焊剂

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Ca2+ fluxes between adjacent organelles are thought to control many cellular processes, including metabolism and cell survival. In vitro evidence has been presented that constitutive Ca2+ flux from intracellular stores into mitochondria is required for basal cellular metabolism, but these observations have not been made in vivo. We report that controlled in vivo depletion of cardiac RYR2, using a conditional gene knock-out strategy (cRyr2KO mice), is sufficient to reduce mitochondrial Ca2+ and oxidative metabolism, and to establish a pseudohypoxic state with increased autophagy. Dramatic metabolic reprogramming was evident at the transcriptional level via Sirt1/Foxo1/Pgc1α, Atf3, and Klf15 gene networks. Ryr2 loss also induced a non-apoptotic form of programmed cell death associated with increased calpain-10 but not caspase-3 activation or endoplasmic reticulum stress. Remarkably, cRyr2KO mice rapidly exhibited many of the structural, metabolic, and molecular characteristics of heart failure at a time when RYR2 protein was reduced 50%, a similar degree to that which has been reported in heart failure. RYR2-mediated Ca2+ fluxes are therefore proximal controllers of mitochondrial Ca2+, ATP levels, and a cascade of transcription factors controlling metabolism and survival.
机译:认为相邻细胞器之间的助熔剂被认为控制许多细胞过程,包括代谢和细胞存活。已经介绍了基础细胞代谢需要从细胞内储存到线粒体中的组成型Ca2 +通量,但这些观察结果尚未在体内进行。我们报告,使用条件基因敲除策略(Cryr2Ko小鼠)在体内耗尽心脏Ryr2中,足以降低线粒体Ca2 +和氧化代谢,并建立伪血清毒性,随着自噬增加。通过SIRT1 / FOXO1 /PGC1α,ATF3和KLF15基因网络在转录水平下显而易见的代谢重编程。 Ryr2损失还诱导了与增加的Calpain-10增加而不是Caspase-3活化或内质网胁迫相关的非凋亡形式的编程细胞死亡。值得注意的是,当Ryr2蛋白减少50%时,Cryr2Ko小鼠在Ryr2蛋白减少了50%的时间内,迅速表现出很多结构,代谢和心力衰竭的分子特征,这是在心力衰竭中报告的类似程度。因此,Ryr2介导的Ca2 +通量是线粒体Ca2 +,ATP水平的近端控制器,以及控制代谢和存活的转录因子级联。

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