Exploring NADPH oxidases 2 and 4 in cardiac and skeletal muscle adaptations – A cross-tissue comparison

IF 7.1 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Free Radical Biology and Medicine Pub Date : 2024-07-26 DOI:10.1016/j.freeradbiomed.2024.07.035
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Abstract

Striated muscle cells, encompassing cardiac myocytes and skeletal muscle fibers, are fundamental to athletic performance, facilitating blood circulation and coordinated movement through contraction. Despite their distinct functional roles, these muscle types exhibit similarities in cytoarchitecture, protein expression, and excitation-contraction coupling. Both muscle types also undergo molecular remodeling in energy metabolism and cell size in response to acute and repeated exercise stimuli to enhance exercise performance. Reactive oxygen species (ROS) produced by NADPH oxidase (NOX) isoforms 2 and 4 have emerged as signaling molecules that regulate exercise adaptations. This review systematically compares NOX2 and NOX4 expression, regulation, and roles in cardiac and skeletal muscle responses across exercise modalities. We highlight the many gaps in our knowledge and opportunities to let future skeletal muscle research into NOX-dependent mechanisms be inspired by cardiac muscle studies and vice versa. Understanding these processes could enhance the development of exercise routines to optimize human performance and health strategies that capitalize on the advantages of physical activity.

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探索 NADPH 氧化酶 2 和 4 在心脏和骨骼肌适应性中的作用 - 跨组织比较‡。
横纹肌细胞包括心肌细胞和骨骼肌纤维,是运动表现的基础,通过收缩促进血液循环和协调运动。尽管功能作用各不相同,但这两种肌肉类型在细胞结构、蛋白质表达和兴奋-收缩耦合方面表现出相似性。这两类肌肉还在能量代谢和细胞大小方面发生分子重塑,以应对急性和反复的运动刺激,从而提高运动表现。NADPH 氧化酶(NOX)异构体 2 和 4 产生的活性氧(ROS)已成为调节运动适应性的信号分子。这篇综述系统地比较了 NOX2 和 NOX4 的表达、调节以及在各种运动模式下对心脏和骨骼肌反应的作用。我们强调了我们知识中的许多空白和机会,以便让未来骨骼肌对 NOX 依赖性机制的研究受到心肌研究的启发,反之亦然。了解这些过程可以促进运动程序的开发,从而优化人体表现和健康策略,充分利用体育锻炼的优势。
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来源期刊
Free Radical Biology and Medicine
Free Radical Biology and Medicine 医学-内分泌学与代谢
CiteScore
14.00
自引率
4.10%
发文量
850
审稿时长
22 days
期刊介绍: Free Radical Biology and Medicine is a leading journal in the field of redox biology, which is the study of the role of reactive oxygen species (ROS) and other oxidizing agents in biological systems. The journal serves as a premier forum for publishing innovative and groundbreaking research that explores the redox biology of health and disease, covering a wide range of topics and disciplines. Free Radical Biology and Medicine also commissions Special Issues that highlight recent advances in both basic and clinical research, with a particular emphasis on the mechanisms underlying altered metabolism and redox signaling. These Special Issues aim to provide a focused platform for the latest research in the field, fostering collaboration and knowledge exchange among researchers and clinicians.
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