Related Experiment Video
Updated: Aug 28, 2026

Enzymatic Isolation of Skeletal Muscle Interstitial Extracellular Vesicles
Published on: February 7, 2025
Skeletal Muscle Dysfunction and Exercise Intolerance in COPD and Idiopathic Pulmonary Fibrosis: Extracellular
Georgios I Barkas1,2, Zoe Daniil2, Ourania S Kotsiou1,2
1Laboratory of Human Pathophysiology, Department of Nursing, School of Health Sciences, University of Thessaly, 41500 Larissa, Greece.
Abstract:
Skeletal muscle dysfunction and exercise intolerance are major extrapulmonary manifestations of chronic obstructive pulmonary disease (COPD) and idiopathic pulmonary fibrosis (IPF), yet their severity is not fully predicted by pulmonary impairment. This narrative review examines extracellular vesicles (EVs) as candidate mediators of lung-muscle communication within a broader network of inflammatory, metabolic, vascular, nutritional, and inactivity-related mechanisms. The evidence is asymmetrical. COPD provides direct human skeletal muscle evidence for quadriceps microRNA dysregulation, impaired protein synthesis and mitochondrial function, oxidative stress, and abnormalities of the regenerative microvascular niche; however, none of these observations demonstrates delivery of pathogenic cargo from the lung by EVs. In IPF, EV-mediated epithelial-mesenchymal signalling, fibroblast activation, and profibrotic remodelling are well supported within the lung, whereas skeletal muscle effects remain indirect. Accordingly, the lung-muscle EV axis should be viewed as a biologically plausible, evidence-weighted hypothesis rather than an established causal pathway. Progress will require experiments that identify the cellular source of EVs, trace their vascular transit and skeletal muscle uptake, and demonstrate functional cargo transfer using EV-depletion, rescue, and integrated muscle readouts. Conventional size and morphology measurements do not reliably distinguish muscle- from lung-derived EVs; source discrimination currently depends more on molecular cargo and cell-associated markers. Hypoxia and transient or sustained oxygen desaturation may modify EV release and cargo through HIF- and redox-sensitive signalling, but disease-specific evidence connecting these changes to lung-to-muscle transfer in COPD or IPF remains limited.
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