Ni Dan, Lin Xiaofang, Deng Chuanhuan, Yuan Ludong, Li Jing, Liu Yuxuan, Liang Pengfei, Jiang Bimei
Department of Pathophysiology, Sepsis Translational Medicine Key Laboratory of Hunan Province, Xiangya School of Medicine, Central South University, Changsha, Hunan, China; National Medicine Functional Experimental Teaching Center, Central South University, Changsha, Hunan, China.
Department of Burns and Plastic Surgery, Xiangya Hospital, Central South University, Changsha, Hunan, China.
Hellenic J Cardiol. 2024 Nov-Dec;80:96-106. doi: 10.1016/j.hjc.2024.05.010. Epub 2024 May 10.
Sepsis is a systemic inflammatory response syndrome caused by a variety of dysregulated responses to host infection with life-threatening multi-organ dysfunction. Among the injuries or dysfunctions involved in the course of sepsis, cardiac injury and dysfunction often occur and are associated with the pathogenesis of hemodynamic disturbances, also defined as sepsis-induced cardiomyopathy (SIC). The process of myocardial metabolism is tightly regulated and adapts to various cardiac output demands. The heart is a metabolically flexible organ capable of utilizing all classes of energy substrates, including carbohydrates, lipids, amino acids, and ketone bodies, to produce ATP. The demand of cardiac cells for energy metabolism changes substantially in septic cardiomyopathy, with distinct etiological causes and different times. This review describes changes in cardiomyocyte energy metabolism under normal physiological conditions and some features of myocardial energy metabolism in septic cardiomyopathy and briefly outlines the role of the mitochondria as a center of energy metabolism in the septic myocardium, revealing that changes in energy metabolism can serve as a potential future therapy for infectious cardiomyopathy.
脓毒症是由宿主感染引发的多种失调反应导致的全身炎症反应综合征,伴有危及生命的多器官功能障碍。在脓毒症病程中涉及的损伤或功能障碍中,心脏损伤和功能障碍经常发生,并与血流动力学紊乱的发病机制相关,也被定义为脓毒症诱导的心肌病(SIC)。心肌代谢过程受到严格调控,并能适应各种心输出量需求。心脏是一个代谢灵活的器官,能够利用所有类型的能量底物,包括碳水化合物、脂质、氨基酸和酮体,来产生三磷酸腺苷(ATP)。在脓毒症心肌病中,心肌细胞对能量代谢的需求会因不同的病因和时间而发生显著变化。本综述描述了正常生理条件下心肌细胞能量代谢的变化以及脓毒症心肌病中心肌能量代谢的一些特征,并简要概述了线粒体作为脓毒症心肌能量代谢中心的作用,揭示能量代谢变化有望成为未来感染性心肌病的潜在治疗方法。