School of Biology and Ecology, University of Maine, Orono, ME, 04469, USA.
Graduate School of Biomedical Sciences and Engineering, University of Maine, Orono, ME, 04469, USA.
Skelet Muscle. 2018 Mar 7;8(1):9. doi: 10.1186/s13395-018-0154-1.
Skeletal muscle enables posture, breathing, and locomotion. Skeletal muscle also impacts systemic processes such as metabolism, thermoregulation, and immunity. Skeletal muscle is energetically expensive and is a major consumer of glucose and fatty acids. Metabolism of fatty acids and glucose requires NAD+ function as a hydrogen/electron transfer molecule. Therefore, NAD+ plays a vital role in energy production. In addition, NAD+ also functions as a cosubstrate for post-translational modifications such as deacetylation and ADP-ribosylation. Therefore, NAD+ levels influence a myriad of cellular processes including mitochondrial biogenesis, transcription, and organization of the extracellular matrix. Clearly, NAD+ is a major player in skeletal muscle development, regeneration, aging, and disease. The vast majority of studies indicate that lower NAD+ levels are deleterious for muscle health and higher NAD+ levels augment muscle health. However, the downstream mechanisms of NAD+ function throughout different cellular compartments are not well understood. The purpose of this review is to highlight recent studies investigating NAD+ function in muscle development, homeostasis, disease, and regeneration. Emerging research areas include elucidating roles for NAD+ in muscle lysosome function and calcium mobilization, mechanisms controlling fluctuations in NAD+ levels during muscle development and regeneration, and interactions between targets of NAD+ signaling (especially mitochondria and the extracellular matrix). This knowledge should facilitate identification of more precise pharmacological and activity-based interventions to raise NAD+ levels in skeletal muscle, thereby promoting human health and function in normal and disease states.
骨骼肌使身体能够保持姿势、进行呼吸和移动。骨骼肌还会影响代谢、体温调节和免疫等全身过程。骨骼肌的能量消耗很大,是葡萄糖和脂肪酸的主要消耗者。脂肪酸和葡萄糖的代谢需要 NAD+作为氢/电子转移分子发挥功能。因此,NAD+在能量产生中起着至关重要的作用。此外,NAD+还作为翻译后修饰(如去乙酰化和 ADP-核糖基化)的辅助底物发挥作用。因此,NAD+水平会影响包括线粒体生物发生、转录和细胞外基质组织在内的众多细胞过程。显然,NAD+是骨骼肌发育、再生、衰老和疾病的主要参与者。绝大多数研究表明,较低的 NAD+水平对肌肉健康有害,而较高的 NAD+水平则增强肌肉健康。然而,NAD+在不同细胞区室中的功能的下游机制尚不清楚。本文的目的是强调最近研究 NAD+在肌肉发育、稳态、疾病和再生中的作用的研究。新兴的研究领域包括阐明 NAD+在肌肉溶酶体功能和钙动员中的作用、控制肌肉发育和再生过程中 NAD+水平波动的机制,以及 NAD+信号转导靶点(特别是线粒体和细胞外基质)之间的相互作用。这些知识应该有助于确定更精确的药理学和基于活性的干预措施来提高骨骼肌中的 NAD+水平,从而促进人类在正常和疾病状态下的健康和功能。