Aug 2026· Experimental and Molecular Medicine· Vol 58, pp. 2746 - 2761· 0 citations· 51 references
Medicine
TL;DR
Meloxicam (Mcam) is identified as a small molecule inducer of Cdon that enhances myogenic differentiation, increases muscle mass and function in young mice and mitigates age-related muscle atrophy, and is identified as a potential therapeutic target for age-associated skeletal muscle degeneration.
Abstract
Sarcopenia is characterized by progressive decline in skeletal muscle mass and function, driven in part by impaired mitochondrial homeostasis and redox imbalance. However, the upstream regulators that integrate metabolic resilience with muscle integrity during ageing remain poorly defined. Here, we identify the cell adhesion molecule Cdon as a conserved determinant of adult muscle maintenance whose expression declines with human aging, sarcopenia and muscle-wasting disease. Reduced Cdon expression was associated with transcriptional atrophy signatures, metabolic insufficiency and reduced myofibre size. Using a Cdon promoter-based screen, we identified meloxicam (Mcam) as a small molecule inducer of Cdon that enhances myogenic differentiation, increases muscle mass and function in young mice and mitigates age-related muscle atrophy. Mcam treatment also improved neuromuscular conduction and systemic metabolic parameters, including blood glucose regulation and hepatic lipid accumulation. In aged muscle, Mcam normalized cysteine accumulation, restored redox balance, improved mitochondrial metabolism and reduced oxidative stress. Mechanistically, Mcam activated Ampk signalling to preserve Cdon expression under oxidative challenge and support antioxidant and mitochondrial quality control pathways. Together, these findings identify Cdon decline as a hallmark of muscle ageing and demonstrate that Mcam preserves muscle integrity by reestablishing redox and metabolic homeostasis through Ampk-dependent maintenance of Cdon. Age-related decline of Cdon is a key molecular feature of skeletal muscle dysfunction. In this study, meloxicam restored Cdon expression through Ampk activation, thereby preserving muscle integrity and functional capacity in aged muscle. Mechanistically, meloxicam normalized cysteine metabolism and elevates Gpx4 expression, improving glutathione buffering and suppressing excessive reactive oxygen species accumulation. Activation of the Ampk–Cdon axis was associated with maintenance of mitochondrial homeostasis and redox balance. Together, these findings identify Cdon as a potential therapeutic target for age-associated skeletal muscle degeneration. Age-related decline of Cdon is a key molecular feature of skeletal muscle dysfunction. In this study, meloxicam restored Cdon expression through Ampk activation, thereby preserving muscle integrity and functional capacity in aged muscle. Mechanistically, meloxicam normalized cysteine metabolism and elevates Gpx4 expression, improving glutathione buffering and suppressing excessive reactive oxygen species accumulation. Activation of the Ampk–Cdon axis was associated with maintenance of mitochondrial homeostasis and redox balance. Together, these findings identify Cdon as a potential therapeutic target for age-associated skeletal muscle degeneration. Sarcopenia, the age-related loss of muscle mass and strength, significantly impacts older adults’ health, yet its regulatory mechanisms remain elusive. This study identifies Cdon, a protein whose expression declines with age, as a crucial factor in muscle maintenance. Researchers discovered meloxicam (Mcam), a compound that induces Cdon expression, through a chemical screen. Mcam enhances myogenesis, muscle mass, and function in both young and aged mice by activating AMP-activated protein kinase (Ampk), which supports mitochondrial function and redox balance. Mcam treatment improved mitochondrial bioenergetics, reduced oxidative stress and normalized cysteine metabolism, crucial for maintaining muscle integrity. These findings suggest that targeting the Ampk-Cdon pathway could offer therapeutic potential for combating age-related muscle degeneration, positioning Cdon as a promising target for future interventions in sarcopenia and related muscle diseases. This summary was initially drafted using artificial intelligence, then revised and fact-checked by the author.
Ageing is a major risk factor for degenerative diseases, including sarcopenia, which is characterized by a progressive loss of skeletal muscle mass and function, frailty, and is associated with increased mortality. Skeletal muscle regeneration relies on muscle stem cells and efficient communication with cellular microenvironment. With ageing, skeletal muscle regenerative capacity declines, and sarcopenia results from complex, multitissue dysregulation involving mitochondrial dysfunction, immune ageing, chronic inflammation, senescence, extracellular matrix modification, disruption of neuromuscular junctions and muscle‐specific vulnerability. This review summarizes current knowledge contributing to sarcopenia and inefficient muscle repair during ageing from cell‐autonomous metabolic dysregulation to age‐associated changes in the local and systemic cellular environment. We also explore recent insights into important role of exercise on muscle tissue health. Overall, emerging technologies, including human muscle atlases and spatial transcriptomics, together with exercise‐based interventions, will help to identify of novel biomarkers and therapeutic targets to better prevent and treat sarcopenia.
J. D. Hernández-Camacho, Marielle Saclier· Journal of Cellular Physiolo...· 0 citations
This review proposes that tailored exercise strategies targeting mitophagy may provide a scalable, non‐pharmacological approach to preserve mitochondrial quality and functional resilience during aging.
Peng Ran, Li-Fang Yang· IUBMB Life - A Journal of th...· 0 citations
A spatial transcriptomic atlas of skeletal muscle from young and aged mice is presented, resolving transcriptional reprogramming across fiber types and tissue compartments and revealing alterations in sarcomeric organization, excitation-contraction coupling, oxidative stress responses, and fiber type-specific metabolic rewiring.
Veronica Ruggieri, Andrea Bracaglia, Lorenza Esposito et al.· iScience· 0 citations
Sarcopenia is an age-related progressive degenerative disorder of skeletal muscle characterized by declining muscle mass, strength, and function. Increasing evidence indicates that chronic low-grade inflammation plays an important contributory role in its pathogenesis. The inflammatory microenvironment contributes to sarcopenia through complex interactions involving cellular senescence, mitochondrial dysfunction, and sustained inflammatory signaling, forming a self-reinforcing pathological cycle within skeletal muscle. This review synthesizes current evidence on the molecular mechanisms underlying inflammation-driven sarcopenia, with particular emphasis on how inflammatory signaling disrupts protein turnover and satellite cell metabolism. In addition, exercise is examined as a precision "hormone-like" intervention tailored to different sarcopenia phenotypes, highlighting the distinct mechanisms through which resistance training, aerobic exercise, and combined training modulate the senescence-associated phenotype and inflammatory responses. The review further evaluates anti-inflammatory therapeutic strategies, including nutritional interventions, pharmacotherapy, and acupuncture. These approaches improve muscle health by restoring immune balance, enhancing mitochondrial function, modulating the gut-muscle axis, reducing oxidative stress, and promoting the clearance of senescent cells. Finally, emerging precision medicine frameworks and multi-omics strategies that may support individualized sarcopenia management are discussed. Overall, this review provides an integrated perspective on inflammatory signaling in sarcopenia and outlines potential therapeutic strategies targeting the inflammatory microenvironment, offering insights for future research and clinical management.
Xuesong Wang, Shannah Erasmus, Zewen Chu et al.· Aging and Disease· 0 citations
Skeletal muscle aging is associated with increased lipid accumulation, or myosteatosis, leading to lipotoxicity and loss of muscle function. Here, we report that loss of the lactate receptor GPR81 in cellular and progeroid models of muscle aging is associated with impaired lipid oxidation and enhanced lipid accumulation. Knockdown of GPR81 in young healthy myoblasts led to an increase in senescence hallmarks such as DNA damage, accumulation of reactive oxygen species (ROS), impaired mitochondrial activity, and autophagy. Conversely, treatment of senescent myoblasts with GPR81 agonists enhanced lipid oxidation, leading to a decrease in lipid accumulation, ultimately resulting in decreased DNA damage, ROS accumulation, and enhanced ability to form myotubes. In agreement with our in vitro findings, we observed significant improvement in muscle regeneration and overall health of progeric mice that were treated with GPR81 agonists. Our findings suggest that GPR81 plays a key role in skeletal muscle lipid metabolism, and agonists of GPR81 might play a promising role in reversing age‐associated lipid accumulation and loss of muscle function.
Pihu Mehrotra, Sai Harsha Bhamidipati, P. Lei et al.· Aging Cell· 0 citations
The objective was to elucidate the molecular mechanisms through which exercise confers anti-aging effects and mitigates degenerative functional decline by restoring mitochondrial homeostasis.
Zhuoyang Zhou, Jianhong Gao, Minghui Wang et al.· iScience· 0 citations
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