Repeated hyperbaric oxygen exposure accelerates fatigue and impairs SR-calcium release in mice.

Loading...

Date

2025-02

Journal Title

Journal ISSN

Volume Title

Citation Stats

Attention Stats

Abstract

Breathing hyperoxic gas is common in diving and accelerates fatigue after prolonged and repeated exposure. The mechanism(s) remain unknown but may be related to increased oxidants that interfere with skeletal muscle calcium trafficking or impaired aerobic ATP production. To determine these possibilities, C57BL/6J mice were exposed to hyperbaric oxygen (HBO2) for 4 h on three consecutive days or remained in room air. Postfinal exposure, fatigue was determined by grip strength and run-to-exhaustion tests. Other measurements included indices of oxidant stress and antioxidant defenses, mitochondrial bioenergetics, caffeine-induced sarcoplasmic reticulum-calcium release, and S-nitrosylation of ryanodine receptor 1 (RyR1). Despite grip strength being unaffected by repeated HBO2 exposure, mean running time was reduced by 50%. In skeletal muscle from HBO2 exposed mice, superoxide production was significantly increased, resulting in elevated lipid and DNA (nuclear and mitochondrial) oxidation. Accompanying increased oxidant stress was a reduction in glutathione content and increased Sod1 and Hmox1 gene expression; Ucp3 mRNA was reduced. Mitochondrial respiration, mitochondrial membrane potential, and NAD+/NADH were not influenced by HBO2. In contrast, caffeine-induced sarcoplasmic reticulum (SR)-calcium release was reduced by 66% and S-nitrosylation of RyR1 was increased by 45%. Exposing mice to repeated HBO2 increases oxidant stress that activates some antioxidant defenses. Mitochondrial function is not altered and could be related to decreased production of UCP3 that serves to maintain the electrochemical proton gradient. S-nitrosylation of RyR1 may promote SR-calcium leak and reduce content, a potential mechanism for repeated HBO2-induced fatigue.NEW & NOTEWORTHY Breathing hyperoxic gas during prolonged and repeated dives causes fatigue but the mechanisms are unknown. Here, we show in mice exposed to repeated hyperbaric oxygen that running fatigue is accelerated and accompanied by increased skeletal muscle oxidant stress and reduced caffeine-induced sarcoplasmic reticulum (SR)-calcium release. The latter may be due to increased S-nitrosylation of ryanodine receptor 1 (RyR1) and be a mechanism for impaired physical performance after repeated oxygen diving.

Department

Description

Provenance

Subjects

Muscle, Skeletal, Sarcoplasmic Reticulum, Mitochondria, Muscle, Animals, Mice, Inbred C57BL, Mice, Fatigue, Oxygen, Calcium, Caffeine, Ryanodine Receptor Calcium Release Channel, Hyperbaric Oxygenation, Oxidative Stress, Muscle Fatigue, Male

Citation

Published Version (Please cite this version)

10.1152/japplphysiol.00723.2024

Publication Info

Gasier, Heath G, Jack Kovach and Kris Porter (2025). Repeated hyperbaric oxygen exposure accelerates fatigue and impairs SR-calcium release in mice. Journal of applied physiology (Bethesda, Md. : 1985), 138(2). pp. 415–425. 10.1152/japplphysiol.00723.2024 Retrieved from https://hdl.handle.net/10161/34236.

This is constructed from limited available data and may be imprecise. To cite this article, please review & use the official citation provided by the journal.

Scholars@Duke

Gasier

Heath Gasier

Associate Professor in Anesthesiology

Dr. Gasier is a physiologist and nutritionist. His research is focused on understanding how breathing altered PO2 impacts cell physiology in the lung, brain, and skeletal muscle. Emphasis is placed on mitochondrial quality control (dynamics, mitophagy, and biogenesis) and bioenergetics. He uses in vivo and in vitro models, and employs an array of methods (e.g., confocal and electron microscopy, Seahorse respiration, immunoblotting, RT-qPCR, ELISA’s, isotope tracers, and 10X genomics) for hypothesis testing. The goal of his research is to improve the operational capacity of divers and safety of hyperoxia in hyperbaric and critical care medicine. Dr. Gasier believes in a hands-on mentoring approach and individualized training plans based on mentee’s aspirations. He is committed to lifetime learning and contributing to knowledge advancement. 


Unless otherwise indicated, scholarly articles published by Duke faculty members are made available here with a CC-BY-NC (Creative Commons Attribution Non-Commercial) license, as enabled by the Duke Open Access Policy. If you wish to use the materials in ways not already permitted under CC-BY-NC, please consult the copyright owner. Other materials are made available here through the author’s grant of a non-exclusive license to make their work openly accessible.