Inhibiting de novo ceramide synthesis restores mitochondrial and protein homeostasis in muscle aging

蛋白质稳态 生物 神经酰胺 骨骼肌 线粒体 细胞生物学 秀丽隐杆线虫 转录组 鞘脂 肌萎缩 平衡 心肌细胞 生物化学 内分泌学 基因 基因表达 细胞凋亡
作者
Tanes Lima,Pirkka‐Pekka Laurila,Martin Wohlwend,Jean‐David Morel,Ludger J.E. Goeminne,Hao Li,Mario Romani,Xiaoxu Li,Chang‐Myung Oh,Dohyun Park,Sandra Rodríguez-López,Julijana Ivanišević,Héctor Gallart‐Ayala,Bárbara Crisol,Florence Delort,Sabrina Batonnet‐Pichon,Leonardo R. Silveira,Lakshmi Sankabattula Pavani Veera Venkata,Anil K. Padala,Suresh Jain
出处
期刊:Science Translational Medicine [American Association for the Advancement of Science]
卷期号:15 (696) 被引量:35
标识
DOI:10.1126/scitranslmed.ade6509
摘要

Disruption of mitochondrial function and protein homeostasis plays a central role in aging. However, how these processes interact and what governs their failure in aging remain poorly understood. Here, we showed that ceramide biosynthesis controls the decline in mitochondrial and protein homeostasis during muscle aging. Analysis of transcriptome datasets derived from muscle biopsies obtained from both aged individuals and patients with a diverse range of muscle disorders revealed that changes in ceramide biosynthesis, as well as disturbances in mitochondrial and protein homeostasis pathways, are prevalent features in these conditions. By performing targeted lipidomics analyses, we found that ceramides accumulated in skeletal muscle with increasing age across Caenorhabditis elegans, mice, and humans. Inhibition of serine palmitoyltransferase (SPT), the rate-limiting enzyme of the ceramide de novo synthesis, by gene silencing or by treatment with myriocin restored proteostasis and mitochondrial function in human myoblasts, in C. elegans, and in the skeletal muscles of mice during aging. Restoration of these age-related processes improved health and life span in the nematode and muscle health and fitness in mice. Collectively, our data implicate pharmacological and genetic suppression of ceramide biosynthesis as potential therapeutic approaches to delay muscle aging and to manage related proteinopathies via mitochondrial and proteostasis remodeling.
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