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Sleep Loss and Post-Exercise Muscle Recovery Hormonal, Inflammatory, Metabolic and Circadian Mechanisms with Practical Implications for Athletes

Agata Wnęk, Julia Smagowska, Paulina Trzaskowska, Ewa Kala - Kaziszyn, Magdalena Tomiczak, Alicja Biskup et al. · Quality in Sport · 2026

This narrative review gathered existing research on how not getting enough sleep affects muscle recovery after exercise. The authors report that sleep loss appears to disrupt growth hormone/IGF-1 signaling, raise cortisol, alter testosterone, increase inflammation, lower muscle protein synthesis, impair mitochondrial function and insulin sensitivity, and disturb muscle circadian rhythms — all of which may blunt repair and training adaptation.
Takeaway: Treat sleep as part of your training plan: protect nightly sleep, bank extra sleep before known late nights or travel, nap strategically, and dial back training load when sleep is short.
Abstract (source)

Introduction: and

Aim: Sleep is essential for skeletal muscle repair, endocrine regulation, immune balance, metabolic homeostasis and adaptation to exercise. In athletes and physically active individuals, insufficient sleep may impair post-exercise recovery and reduce physical performance. The

aim of this review was to analyze the hormonal, inflammatory, metabolic and circadian mechanisms through which sleep deprivation may affect skeletal muscle recovery after exercise.

Materials and methods: This narrative review was based on a literature search conducted in PubMed, Scopus, Web of Science and Google Scholar. The analysis included systematic reviews, meta-analyses, randomized and controlled human studies, experimental sleep restriction studies and selected animal or cellular studies that provided relevant mechanistic explanations. Publications concerning sleep deprivation, exercise recovery, skeletal muscle metabolism, hormonal regulation, inflammation, mitochondrial function, circadian rhythm and physical performance were included.

Results: Available evidence indicates that sleep deprivation may disturb the GH/IGF-1 axis, increase cortisol activity, alter testosterone secretion, promote inflammatory dysregulation, reduce myofibrillar protein synthesis, impair mitochondrial function, decrease insulin sensitivity and disrupt skeletal muscle circadian regulation. These mechanisms may contribute to impaired muscle repair, reduced recovery capacity and less favorable training adaptation.

Conclusions: Sleep should be regarded as an active component of post-exercise recovery rather than a passive period of rest. Sleep optimization, sleep extension before anticipated sleep loss, strategic napping, appropriate training load adjustment and adequate nutrition may support recovery in athletes and physically active individuals. Further studies are needed to clarify dose-response relationships and to identify the most effective recovery strategies in real-world sports settings.

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