Zhu Wengen, Guo Siyu, Sun Junyi, Zhao Yudan, Liu Chen
Department of Cardiology, the First Affiliated Hospital of Sun Yat-Sen University, Guangzhou 510080, PR China; Key Laboratory of Assisted Circulation and Vascular Diseases, Chinese Academy of Medical Sciences, Guangzhou 510080, PR China.
Department of Cardiology, the First Affiliated Hospital of Sun Yat-Sen University, Guangzhou 510080, PR China; Key Laboratory of Assisted Circulation and Vascular Diseases, Chinese Academy of Medical Sciences, Guangzhou 510080, PR China.
Metabolism. 2024 Sep;158:155957. doi: 10.1016/j.metabol.2024.155957. Epub 2024 Jun 20.
Cardiovascular diseases (CVDs) are often linked to structural and functional impairments, such as heart defects and circulatory dysfunction, leading to compromised peripheral perfusion and heightened morbidity risks. Metabolic remodeling, particularly in the context of cardiac fibrosis and inflammation, is increasingly recognized as a pivotal factor in the pathogenesis of CVDs. Metabolic syndromes further predispose individuals to these conditions, underscoring the need to elucidate the metabolic underpinnings of CVDs. Lactate, a byproduct of glycolysis, is now recognized as a key molecule that connects cellular metabolism with the regulation of cellular activity. The transport of lactate between different cells is essential for metabolic homeostasis and signal transduction. Disruptions to lactate dynamics are implicated in various CVDs. Furthermore, lactylation, a novel post-translational modification, has been identified in cardiac cells, where it influences protein function and gene expression, thereby playing a significant role in CVD pathogenesis. In this review, we summarized recent advancements in understanding the role of lactate and lactylation in CVDs, offering fresh insights that could guide future research directions and therapeutic interventions. The potential of lactate metabolism and lactylation as innovative therapeutic targets for CVD is a promising avenue for exploration.
心血管疾病(CVDs)通常与结构和功能损伤有关,如心脏缺陷和循环功能障碍,导致外周灌注受损和发病风险增加。代谢重塑,尤其是在心脏纤维化和炎症的背景下,越来越被认为是心血管疾病发病机制中的一个关键因素。代谢综合征进一步使个体易患这些疾病,凸显了阐明心血管疾病代谢基础的必要性。乳酸是糖酵解的副产物,现在被认为是连接细胞代谢与细胞活动调节的关键分子。乳酸在不同细胞之间的转运对于代谢稳态和信号转导至关重要。乳酸动态的破坏与各种心血管疾病有关。此外,乳酰化是一种新的翻译后修饰,已在心脏细胞中被发现,它影响蛋白质功能和基因表达,从而在心血管疾病发病机制中发挥重要作用。在这篇综述中,我们总结了在理解乳酸和乳酰化在心血管疾病中的作用方面的最新进展,提供了可能指导未来研究方向和治疗干预的新见解。乳酸代谢和乳酰化作为心血管疾病创新治疗靶点的潜力是一个有前景的探索途径。