Related Experiment Video
Updated: Jun 19, 2026

Skeletal Muscle Neurovascular Coupling, Oxidative Capacity, and Microvascular Function with 'One Stop Shop' Near-infrared Spectroscopy
Published on: February 20, 2018
Reactive oxygen species are signalling molecules for skeletal muscle adaptation
Scott K Powers1, Jose Duarte, Andreas N Kavazis
1Department of Applied Physiology and Kinesiology, University of Florida, Room 25, Florida Gym, Gainesville, FL 32611, USA. spowers@hhp.ufl.edu
Abstract:
Increased reactive oxygen species (ROS) production is crucial to the remodelling that occurs in skeletal muscle in response to both exercise training and prolonged periods of disuse. This review discusses the redox-sensitive signalling pathways that are responsible for this ROS-induced skeletal muscle adaptation. We begin with a discussion of the sites of ROS production in skeletal muscle fibres. This is followed by an overview of the putative redox-sensitive signalling pathways that promote skeletal muscle adaptation. Specifically, this discussion highlights redox-sensitive kinases, phosphatases and the transcription factor nuclear factor-B. We also discuss the evidence that connects redox signalling to skeletal muscle adaptation in response to increased muscular activity (i.e. exercise training) and during prolonged periods of muscular inactivity (i.e. immobilization). In an effort to stimulate further research, we conclude with a discussion of unanswered questions about redox signalling in skeletal muscle.
More Related Videos
08:11Isolation of Mitochondria from Mouse Skeletal Muscle for Respirometric Assays
Published on: February 10, 2022
10:05Stimulation of Stem Cell Niches and Tissue Regeneration in Mouse Skin by Switchable Protoporphyrin IX-Dependent Photogeneration of Reactive Oxygen Species In Situ
Published on: May 8, 2020
Related Concept Videos
Oxygen Requirements and Growth Patterns
Muscle Recovery and Fatigue
Paracrine Signaling
Cellular Adaptation II: Hypertrophy
Energy Supply for Muscle Contraction
Nitric Oxide Signaling Pathway