Hypochlorous acid exposure impairs skeletal muscle function and Ca2+ signalling: implications for Duchenne muscular

Thomas A Lea1, Peter M Panizza1, Peter G Arthur2

  • 1School of Human Sciences, University of Western Australia, Perth, Western Australia, Australia.

The Journal of Physiology
|October 21, 2023
PubMed

Insights

Hypochlorous acid (HOCl) impairs skeletal muscle function and calcium signaling in Duchenne muscular dystrophy (DMD). This reactive oxidant, elevated in dystrophic muscle, may link inflammation and oxidative stress, offering a potential therapeutic target for DMD.

Area of Science:

  • Muscle Physiology
  • Oxidative Stress Biology
  • Molecular Medicine

Background:

  • Duchenne muscular dystrophy (DMD) involves muscle wasting, inflammation, oxidative stress, and impaired calcium (Ca2+) signaling.
  • Hypochlorous acid (HOCl), a reactive oxidant produced by neutrophils via myeloperoxidase, is elevated in dystrophic muscle.
  • HOCl may oxidize Ca2+-handling proteins, contributing to DMD pathology.

Purpose of the Study:

  • To investigate the effects of HOCl on skeletal muscle function.
  • To determine HOCl's potential role in DMD pathology.
  • To elucidate the mechanisms of HOCl-induced muscle dysfunction.

Main Methods:

  • Surgical isolation of extensor digitorum longus (EDL), soleus, and interosseous muscles from wild-type and mdx (dystrophic) mice.
  • Measurement of ex vivo force production and intracellular Ca2+ concentration.
  • Application of HOCl and pharmacological agents (dithiothreitol, tetracaine, Gd3+, streptomycin).

Main Results:

  • HOCl (200 μM) significantly decreased maximal force and increased resting tension in EDL muscles.
  • HOCl's effects on force were less pronounced in slow-twitch soleus compared to fast-twitch EDL.
  • HOCl (10 μM) increased resting intracellular Ca2+ and decreased Ca2+ transient amplitude in single myofibers, implicating ryanodine receptors and TRP channels.

Conclusions:

  • HOCl exerts potent effects on skeletal muscle function, likely through oxidation of Ca2+ signaling proteins.
  • HOCl may bridge the gap between inflammation, oxidative stress, and impaired Ca2+ handling in DMD.
  • Targeting HOCl production presents a potential therapeutic strategy for Duchenne muscular dystrophy.

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