Skeletal muscle is a central determinant of organismal health. Preserving muscle quality is therefore critical for preventing disease and sustaining quality of life across the lifespan. Despite its central role, the field lacks a unifying framework that defines the core properties of skeletal muscle health. Here, we propose a conceptual framework for muscle homeostasis built around seven interconnected hallmarks-metabolism and bioenergetics, proteostasis, genomics, excitability, structure, regeneration and cross-talk-that collectively govern muscle integrity, adaptability and resilience. Each hallmark is mechanistically grounded, quantifiable and potentially modifiable. This framework provides a unifying blueprint for the next generation of precision diagnostics and targeted therapies for preserving skeletal muscle health.
Physical activity produces widespread benefits to physical and mental health, including protection against stress-related behavioral outcomes. However, the peripheral signals through which physical activity is translated into stress resistance remain incompletely understood. Irisin, an exercise-induced myokine cleaved from the transmembrane protein FNDC5 and released into circulation, has been implicated in improved cognition and neuroprotection, but its role in resistance to behavioral consequences of future adversity has not been examined. Here, we tested whether forced peripheral elevation of irisin is sufficient to protect against stress-induced behavioral outcomes. Adult male C57BL/6 mice received adeno-associated viral (AAV)-mediated peripheral expression of irisin or GFP control. AAV-irisin significantly increased circulating irisin levels, and six weeks later, mice were exposed to inescapable stress, a well-characterized model that produces anxiety-like behaviors, including reducing rodents' natural inclination toward sociability. Elevated circulating irisin prevented the stress-induced reduction in social preference without altering general locomotor activity. Moreover, circulating irisin levels positively predicted individual differences in sociability. Additionally, peripheral irisin elevation increased brain-derived neurotrophic factor (Bdnf) expression, which also positively correlated with circulating irisin levels. Finally, we identified expression of the irisin receptor subunit integrin αV within the dorsal raphe nucleus, a key brain region implicated in the behavioral outcomes of inescapable stress that is modulated by prior exercise. Together, these findings identify peripheral irisin as a mediator sufficient to confer resistance to future stress, even in the absence of physical activity. Significance Statement:Physical activity protects against the anxiety-like behavioral outcomes of future stress, but the peripheral mediators of this effect remain unclear. Here we show that forced peripheral elevation of circulating irisin, an exercise-induced myokine, is sufficient to produce behavioral stress resistance in mice. Irisin prevented the stress-induced reduction in social preference and positively correlated with individual differences in sociability. Forced expression of peripheral irisin also increased Bdnf expression in the brain, consistent with engagement of central neuroplasticity pathways that support adaptive behavioral responses. These findings demonstrate that an exercise-induced circulating factor can confer resistance to future stress, identifying irisin as a potential prophylactic target for stress-related mental health disorders.
Whereas visceral adipose tissue (VAT) primarily stores excess energy, brown adipose tissue (BAT) dissipates it in a process termed nonshivering thermogenesis. Several key VAT features, particularly murine epidydimal VAT, are regulated by a distinct population of regulatory T (Treg) cells, raising the question of whether BAT hosts an analogous population. Although Treg cells have been observed in BAT, their properties and mechanisms of action require elucidation. We found BAT Treg cells to be heterogeneous in subtissular localization and subtype composition. Punctual depletion of Treg cells unleashed interferon-γ (IFN-γ)-producing lymphocytes in BAT, but not in subcutaneous or visceral fat depots, leading to IFN-γ-dependent mitochondrial dysfunction and metabolic dysregulation, thereby impeding nonshivering thermogenesis. Cold challenge selectively expanded the IL-18R1+ Treg subtype in BAT; stripping this receptor specifically from Treg cells unleashed IFN-γ-producing lymphocytes and compromised temperature control. Thus, control of local IFN-γ production is a core feature of Treg cell control of tissue homeostasis.
Obesity is associated with systemic inflammation that impairs mitochondrial function. This disruption curtails oxidative metabolism, limiting adipocyte lipid metabolism and thermogenesis, a metabolically beneficial program that dissipates chemical energy as heat. Here, we show that PGC1α, a key governor of mitochondrial biogenesis, is negatively regulated at the level of its mRNA translation by the RNA-binding protein RBM43. RBM43 is induced by inflammatory cytokines and suppresses mitochondrial biogenesis in a PGC1α-dependent manner. In mice, adipocyte-selective Rbm43 disruption elevates PGC1α translation and oxidative metabolism. In obesity, Rbm43 loss improves glucose tolerance, reduces adipose inflammation, and suppresses activation of the innate immune sensor cGAS-STING in adipocytes. We further identify a role for PGC1α in safeguarding against cytoplasmic accumulation of mitochondrial DNA, a cGAS ligand. The action of RBM43 defines a translational regulatory axis by which inflammatory signals dictate cellular energy metabolism and contribute to metabolic disease pathogenesis.
Disclosure: P.A. Dumesic: None. S.E. Wilensky: None. S. Bose: None. J.G. Van Vranken: None. S.P. Gygi: None. B. Spiegelman: None. Obesity is associated with systemic inflammation that impairs mitochondrial function. In adipose tissue, pro-inflammatory cytokines impede oxidative metabolism and lipid handling by adipocytes, contributing to the pathogenesis of type 2 diabetes. We find that the transcriptional coactivator PGC1⍺—a central regulator of mitochondrial biogenesis and oxidative metabolism—is negatively regulated at the level of its mRNA translation by the RNA-binding protein RBM43. In isolated adipocytes and in mice, RBM43 suppresses mitochondrial biogenesis in a PGC1⍺-dependent manner. Rbm43 is itself induced by signals of inflammation and is responsible for a significant portion of TNF⍺’s repressive effects on mitochondrial gene expression and respiratory capacity. In obesity, mice lacking Rbm43 in adipocytes retain PGC1⍺ translation, mitochondrial content, and white fat respiratory capacity as compared to littermate controls. Rbm43 loss also protects against the development of obesity-associated glucose intolerance and adipose inflammation. These salutary changes are associated with reduced activity of the innate immune sensor cGAS-STING in adipocytes, leading us to identify a role for PGC1⍺ in safeguarding against cytoplasmic accumulation of mitochondrial DNA, a cGAS ligand. The action of RBM43 thus defines a translational regulatory axis by which inflammatory signals can influence cellular energy metabolism and contribute to diabetes pathogenesis. Presentation: Sunday, July 13, 2025
Endurance exercise promotes adaptive growth and improved function of myocytes, which is supported by increased mitochondrial activity. In skeletal muscle, these benefits are in part transcriptionally coordinated by peroxisome proliferator-activated receptor gamma coactivator 1-alpha (PGC-1α). The importance of PGC-1α to exercise-induced adaptations in the heart has been unclear. Here we show that deleting PGC-1α specifically in cardiomyocytes prevents the expected benefits from exercise training and instead leads to heart failure after just 6 weeks of training. Consistent with this, in humans, rare genetic variants in PPARGC1A, which encodes PGC-1α, are associated with increased risk of heart failure. In this model, we identify growth differentiation factor 15 (GDF15) as a key heart-secreted mediator that contributes to this dysfunction. Blocking cardiac Gdf15 expression improves cardiac performance and exercise capacity in these mice. Finally, in human heart tissue, lower cardiomyocyte PPARGC1A expression is associated with higher GDF15 expression and reduced cardiomyocyte density. These findings uncover a crucial role for cardiomyocyte PGC-1α in enabling healthy cardiac adaptation to exercise in part through suppression of GDF15. Khetarpal et al. show that the metabolic regulator PGC-1α is essential in heart muscle cells for exercise-driven cardiac growth, and that suppression of the stress-induced myokine GDF15 is required to enable cardiomyocyte adaptations to training.
Adipose tissue can recruit catabolic adipocytes that utilize chemical energy to dissipate heat. This process occurs either by uncoupled respiration through uncoupling protein 1 (UCP1) or by utilizing ATP-dependent futile cycles (FCs). However, it remains unclear how these pathways coexist since both processes rely on the mitochondrial membrane potential. Utilizing single-nucleus RNA sequencing to deconvolute the heterogeneity of subcutaneous adipose tissue in mice and humans, we identify at least 2 distinct subpopulations of beige adipocytes: FC-adipocytes and UCP1-beige adipocytes. Importantly, we demonstrate that the FC-adipocyte subpopulation is highly metabolically active and utilizes FCs to dissipate energy, thus contributing to thermogenesis independent of Ucp1. Furthermore, FC-adipocytes are important drivers of systemic energy homeostasis and linked to glucose metabolism and obesity resistance in humans. Taken together, our findings identify a noncanonical thermogenic adipocyte subpopulation, which could be an important regulator of energy homeostasis in mammals.
Ergothioneine (EGT) is a diet-derived, atypical amino acid that accumulates to high levels in human tissues. Reduced EGT levels have been linked to age-related disorders, including neurodegenerative and cardiovascular diseases, while EGT supplementation is protective in a broad range of disease and aging models in mice. Despite these promising data, the direct and physiologically relevant molecular target of EGT has remained elusive. Here we use a systematic approach to identify how mitochondria remodel their metabolome in response to exercise training. From this data, we find that EGT accumulates in muscle mitochondria upon exercise training. Proteome-wide thermal stability studies identify 3-mercaptopyruvate sulfurtransferase (MPST) as a direct molecular target of EGT; EGT binds to and activates MPST, thereby boosting mitochondrial respiration and exercise training performance in mice. Together, these data identify the first physiologically relevant EGT target and establish the EGT-MPST axis as a molecular mechanism for regulating mitochondrial function and exercise performance.
Irisin, released from exercised muscle, has been shown to have beneficial effects on numerous tissues but its effects on bone are unclear. We found significant sex and genotype differences in bone from wildtype (WT) mice compared to mice lacking Fndc5 (KO), with and without calcium deficiency. Despite their bone being indistinguishable from WT females, KO female mice were partially protected from osteocytic osteolysis and osteoclastic bone resorption when allowed to lactate or when placed on a low-calcium diet. Male KO mice have more but weaker bone compared to WT males, and when challenged with a low-calcium diet lost more bone than WT males. To begin to understand responsible molecular mechanisms, osteocyte transcriptomics was performed. Osteocytes from WT females had greater expression of genes associated with osteocytic osteolysis and osteoclastic bone resorption compared to WT males which had greater expression of genes associated with steroid and fatty acid metabolism. Few differences were observed between female KO and WT osteocytes, but with a low calcium diet, the KO females had lower expression of genes responsible for osteocytic osteolysis and osteoclastic resorption than the WT females. Male KO osteocytes had lower expression of genes associated with steroid and fatty acid metabolism, but higher expression of genes associated with bone resorption compared to male WT. In conclusion, irisin plays a critical role in the development of the male but not the female skeleton and protects male but not female bone from calcium deficiency. We propose irisin ensures the survival of offspring by targeting the osteocyte to provide calcium in lactating females, a novel function for this myokine.
Communication between tissues or different cells within a tissue is often a result of secreted molecules such as metabolites, lipids, nucleic acids, or proteins (referred to as the secretome). These enter the extracellular space and may subsequently pass into the circulation. Depending on their nature, concentration and context, these molecules initiate specific responses in their target cells. Environmental stimuli such as exercise and cold exposure, but also different diseases, are known to significantly alter the secretome and thereby affect whole body homeostasis. Thus, identifying these factors is of great interest. The analysis of secreted proteins, however, represents a unique challenge for the field. This is mainly because mass spectrometry can be limited by the dynamic range problem, whereby the detection of low abundance polypeptides can be masked by the presence of high abundance proteins. Plasma, muscle, and fat all contain specific proteins of very high abundance, making it tremendously challenging to detect low abundance proteins in these biological samples. Thus, secreted, hormone-like polypeptides frequently remain undetected. Because muscle and fat are known to communicate by secretion of myokines and adipokines, respectively, we have sought to develop methods that can circumvent these issues through the isolation of extracellular fluids (EF) which surround these tissues. EFs had previously been isolated for analysis of metabolites; however, whether this method could be made useful for in depth proteomics analysis was not known. Recently, we have developed a method that modifies these procedures and makes it applicable for the study of EF proteins. We have applied this to muscle and fat EFs, but in principle, it can be used to study secreted proteins from almost any tissue in any species, including humans. A step-by-step protocol and methods of quality control are given below.
Objective: Skeletal muscle plasticity and remodeling are critical for adapting tissue function to use, disuse, and regeneration. The aim of this study was to identify genes and molecular pathways that regulate the transition from atrophy to compensatory hypertrophy or recovery from injury. Here, we have used a mouse model of hindlimb unloading and reloading, which causes skeletal muscle atrophy, and compensatory regeneration and hypertrophy, respectively. Methods: We analyzed mouse skeletal muscle at the transition from hindlimb unloading to reloading for changes in transcriptome and extracellular fluid proteome. We then used qRT-PCR, immunohistochemistry, and bulk and single-cell RNA sequencing data to determine Mustn1 gene and protein expression, including changes in gene expression in mouse and human skeletal muscle with different challenges such as exercise and muscle injury. We generated Mustn1-deficient genetic mouse models and characterized them in vivo and ex vivo with regard to muscle function and whole-body metabolism. We isolated smooth muscle cells and functionally characterized them, and performed transcriptomics and proteomics analysis of skeletal muscle and aorta of Mustn1-deficient mice. Results: We show that Mustn1 (Musculoskeletal embryonic nuclear protein 1, also known as Mustang) is highly expressed in skeletal muscle during the early stages of hindlimb reloading. Mustn1 expression is transiently elevated in mouse and human skeletal muscle in response to intense exercise, resistance exercise, or injury. We find that Mustn1 expression is highest in smooth muscle-rich tissues, followed by skeletal muscle fibers. Muscle from heterozygous Mustn1-deficient mice exhibit differences in gene expression related to extracellular matrix and cell adhesion, compared to wild-type littermates. Mustn1-deficient mice have normal muscle and aorta function and whole-body glucose metabolism. We show that Mustn1 is secreted from smooth muscle cells, and that it is present in arterioles of the muscle microvasculature and in muscle extracellular fluid, particularly during the hindlimb reloading phase. Proteomics analysis of muscle from Mustn1-deficient mice confirms differences in extracellular matrix composition, and female mice display higher collagen content after chemically induced muscle injury compared to wild-type littermates. Conclusions: We show that, in addition to its previously reported intracellular localization, Mustn1 is a microprotein secreted from smooth muscle cells into the muscle extracellular space. We explore its role in muscle ECM deposition and remodeling in homeostasis and upon muscle injury. The role
Aims: Skeletal muscle, with its remarkable plasticity and dynamic adaptation, serves as a cornerstone of locomotion and metabolic homeostasis in the human body. Muscle tissue, with its extraordinary capacity for force generation and energy expenditure, plays a fundamental role in the movement, metabolism, and overall health. In this context, we sought to determine the role of p38 alpha in mitochondrial metabolism since mitochondrial dynamics play a crucial role in the development of muscle-related diseases that result in muscle weakness. Methods: We conducted our study using male mice (MCK-cre, p38 alpha(MCK-KO) and PGC1 alpha (MCK-KO)) and mouse primary myoblasts. We analyzed mitochondrial metabolic, physiological parameters as well as proteomics, western blot, RNA-seq analysis from muscle samples. Results: Our findings highlight the critical involvement of muscle p38 alpha in the regulation of mitochondrial function, a key determinant of muscle strength. The absence of p38 alpha triggers changes in mitochondrial dynamics through the activation of PGC1 alpha, a central regulator of mitochondrial biogenesis. These results have substantial implications for understanding the complex interplay between p38 alpha kinase, PGC1 alpha activation, and mitochondrial content, thereby enhancing our knowledge in the control of muscle biology. Conclusions: This knowledge holds relevance for conditions associated with muscle weakness, where disruptions in these molecular pathways are frequently implicated in diminishing physical strength. Our research underscores the potential importance of targeting the p38 alpha and PGC1 alpha pathways within muscle, offering promising avenues for the advancement of innovative treatments. Such interventions hold the potential to improve the quality of life for individuals affected by muscle-related diseases.
Exercise training induces physiological cardiac hypertrophy, enhanced mitochondrial biogenesis and myocardial contractility. In skeletal muscle, the transcriptional coactivator PGC-1α is a key orchestrator of these responses. The heart expresses abundant and exercise-responsive PGC-1α, but it is unclear whether cardiomyocyte PGC-1α is necessary for cardiac adaptation to endurance training. Here we demonstrate that cardiomyocyte PGC-1α is required for physiological cardiac hypertrophy during exercise training in mice. In the absence of cardiomyocyte PGC-1α, voluntary wheel running does not improve exercise capacity and instead confers immune-fibrotic-atrophic heart failure after just 6 weeks of training. We identify cardiomyocyte PGC-1α as a negative regulator of stress-responsive senescence gene expression. The most enriched of these is the myomitokine GDF15. GDF15 is secreted locally but not systemically in PGC-1α-deficient mouse hearts and reduces cardiomyocyte size. Cardiomyocyte-specific reduction of GDF15 expression preserves exercise tolerance and cardiac contractility in PGC-1α-deficient mice during endurance training. Finally, we show that cardiomyocyte PPARGC1A expression correlates with cardiomyocyte number and negatively with GDF15 expression in human cardiomyopathies through single nucleus RNA sequencing. Our data implicate cardiomyocyte PGC-1α as a vital safeguard against stress-induced atrophy and local GDF15-induced dysfunction during exercise.### Competing Interest StatementThe authors have declared no competing interest.
Although uncoupling protein 1 (UCP1) is established as a major contributor to adipose thermogenesis, recent data have illustrated an important role for alternative pathways, particularly the futile creatine cycle (FCC). How these pathways co-exist in cells and tissues has not been explored. Beige cell adipogenesis occurs in vivo but has been difficult to model in vitro; here, we describe the development of a murine beige cell line that executes a robust respiratory response, including uncoupled respiration and the FCC. The key FCC enzyme, tissue-nonspecific alkaline phosphatase (TNAP), is localized almost exclusively to mitochondria in these cells. Surprisingly, single-cell cloning from this cell line shows that cells with the highest levels of UCP1 express little TNAP, and cells with the highest expression of TNAP express little UCP1. Immunofluorescence analysis of subcutaneous fat from cold-exposed mice confirms that the highest levels of these critical thermogenic components are expressed in distinct fat cell populations.
Skeletal muscle has gained recognition as an endocrine organ releasing myokines upon contraction during physical exercise. These myokines exert both local and pleiotropic health benefits, underscoring the crucial role of muscle function in countering obesity and contributing to the overall positive effects of exercise on health. Here, we found that exercise activates muscle p38γ, increasing locomotor activity through the secretion of interleukin-15 (IL-15). IL-15 signals in the motor cortex, stimulating locomotor activity. This activation of muscle p38γ, leading to an increase locomotor activity, plays a crucial role in reducing the risk of diabetes and liver steatosis, unveiling a vital muscle-brain communication pathway with profound clinical implications. The correlation between p38γ activation in human muscle during acute exercise and increased blood IL-15 levels highlights the potential therapeutic relevance of this pathway in treating obesity and metabolic diseases. These findings provide valuable insights into the molecular basis of exercise-induced myokine responses promoting physical activity.
Metabolic flexibility of muscle tissue describes the adaptive capacity to use different energy substrates according to their availability. The disruption of this ability associates with metabolic disease. Here, using a Drosophila model of systemic metabolic dysfunction triggered by yorkie-induced gut tumors, we show that the transcription factor REPTOR is an important regulator of energy metabolism in muscles. We present evidence that REPTOR is activated in muscles of adult flies with gut yorkie-tumors, where it modulates glucose metabolism. Further, in vivo studies indicate that sustained activity of REPTOR is sufficient in wildtype muscles to repress glycolysis and increase tricarboxylic acid (TCA) cycle metabolites. Consistent with the fly studies, higher levels of CREBRF, the mammalian ortholog of REPTOR, reduce glycolysis in mouse myotubes while promoting oxidative metabolism. Altogether, our results define a conserved function for REPTOR and CREBRF as key regulators of muscle energy metabolism.
Exercise has myriad systemic benefits in reducing the incidence from and morbidity of cardio-metabolic diseases. In healthy individuals, aerobic exercise promotes physiologic hypertrophy of the heart, which requires increased mitochondrial numbers and function. In skeletal muscle and heart, a key orchestrator of the adaptation to increased energetic needs is the transcriptional regulator PGC-1α. PGC-1α may mediate cardiac adaptation to physiological stress through its function in mitochondrial biogenesis but also through other mechanisms. The role of cardiac PGC-1α to the systemic training response is poorly understood. We generated PGC-1α cardiomyocyte-specific knockout (cKO) mice to study its role in endurance exercise training. Sedentary cKO mice demonstrated normal cardiac function and no significant differences in acute treadmill exercise tolerance. However, cKO mice demonstrated a lack of ability to augment exercise capacity after 6 weeks of wheel running compared to WT (work achieved 32.9 J in WT [39% increase] vs 23.1 J in cKOs [no change vs baseline], p<0.001, unpaired t-test). This was despite comparable voluntary wheel distance run during training (2.93-3.67 km/day for both over 5 weeks, p=0.58). Unexpectedly, after 6 weeks of training, cKO mice developed a dilated cardiomyopathy at rest and exercise-related dysfunction (contractile reserve [ΔFS stress-rest ] +6.0 in WT vs -6.4% in KO, p<0.05, unpaired t-test). They also demonstrated features of cardiac cachexia as measured by 30% and 21% reductions in inguinal adipose and gastrocnemius mass, respectively (P<0.05, unpaired t-test). Gene expression profiling demonstrated activation of pathological ( Nppa , Nppb , Myh7/Myh6 ) and atrophic pathways ( Gdf11 , Gdf15 , Fstl3 ) in the trained cKOs. In vitro, gain of function studies using adenoviral expression in neonatal rat ventricular myocytes demonstrated that PGC-1α overexpression could abrogate pathologic hypertrophy and atrophy gene expression pathways stimulated by phenylephrine. Our preliminary studies support cardiomyocyte PGC-1α as a key mediator of the adaptive response to exercise training and unveil a key role of this transcriptional activator in protecting from exercise-related cardiac dysfunction in mice.
Irisin is a myokine released from muscle during exercise with distinct signaling effects on tissues throughout the body, including an influence on skeletal remodeling. Our previous work has shown that irisin stimulates resorption, a key first step in bone remodeling, by enhancing osteoclastogenesis. The present study further investigates the action of irisin on the metabolic function of osteoclast progenitors during differentiation. Fluorescent imaging showed increased mitochondrial content and reactive oxygen species production with irisin treatment in osteoclast progenitors after 48 h of osteoclastogenic culture. Mitochondrial stress testing demonstrated a significant increase in maximal oxygen consumption rate and spare capacity after 48 h of preconditioning with irisin treatment. Together, these findings further elucidate the stimulatory action of irisin on osteoclastogenesis, demonstrating an enhancement of metabolism through mitochondrial respiration in the progenitor to support the energy demands of their differentiation into mature osteoclasts.