柠檬酸循环
线粒体
细胞生物学
柠檬酸合酶
SIRT3
乙酰化
化学
生物
功能(生物学)
乌头酸酶
呼吸链
生物化学
乙酰转移酶
生物能学
苹果酸脱氢酶
平衡
酶
新陈代谢
线粒体呼吸链
线粒体内膜
调解人
氧化磷酸化
细胞呼吸
琥珀酸脱氢酶
能量稳态
作者
Fan Yu,Jingsi Duan,Zhuangwei Lou,Guo‐Ping Shi,Fuzhe Gong,Lingfeng Zhong,Derong Chen,Xu Li,TingTing Hong,Xinyang Hu,Jinghai Chen,Jianan Wang,Deling Yin
标识
DOI:10.1038/s41467-025-64072-z
摘要
Myocardial energy metabolism disorders are essential pathophysiology in sepsis-associated myocardial injury. Yet, the underlying mechanisms involving impaired mitochondrial respiratory function upon myocardial injury remain poorly understood. Here we identify an unannotated and cardiomyocyte-enriched long non-coding RNA, Cpat (cardiac-protector-associated transcript), that plays an important role in regulating the dynamics of cardiomyocyte mitochondrial tricarboxylic acid (TCA) cycle. Cpat is essential to the mitochondrial respiratory function by targeting key metabolic enzymes and modulating TCA cycle flux. Specifically, Cpat enhances the association of TCA cycle core components malate dehydrogenase (MDH2), citrate synthase (CS), and aconitase (ACO2). Acetyltransferase general control non-repressed protein-5 (GCN5) acetylates CS and destabilizes the MDH2-CS-ACO2 complex formation. Cpat inhibits this GCN5 activity and facilitates MDH2-CS-ACO2 complex formation and TCA cycle flux. We reveal that Cpat-mediated mitochondrial metabolic homeostasis is vital in mitigating myocardial injury in sepsis-induced cardiomyopathy, positioning Cpat as a promising therapeutic target for preserving myocardial cellular metabolism and function.
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