Preterm Birth Conditions Alter Muscle Stem Cells and Their Niche, Causing Lasting Impairments in Muscle Regeneration

Alyson Deprez1,2, Thomas Molina1,2, Gael Cagnone1

  • 1CHU Sainte-Justine Azrieli Research Center, Montreal, Canada.

Insights

Preterm birth impairs muscle stem cell function and reduces their pool size, leading to muscle atrophy. Targeting the TNF-α pathway with Infliximab can restore muscle stem cell regeneration after injury.

Area of Science:

  • Muscle stem cell biology
  • Developmental biology
  • Regenerative medicine

Background:

  • Preterm birth affects multiple organ systems, including skeletal muscle.
  • Long-term consequences include altered organ function and increased comorbidity risk.
  • Mechanisms of skeletal muscle changes post-preterm birth are not fully understood.

Purpose of the Study:

  • Investigate the impact of preterm birth on muscle stem cells.
  • Determine the mechanisms underlying muscle stem cell dysfunction.
  • Explore potential therapeutic interventions.

Main Methods:

  • Utilized a rodent model of neonatal hyperoxia and human preterm infant muscle samples.
  • Employed single-cell transcriptomics, in vitro cell cultures, and ex vivo muscle function tests.
  • Assessed in vivo muscle regeneration capacity following injury.

Main Results:

  • Preterm birth conditions significantly reduced muscle stem cell pool size in rats and suggested a similar trend in humans.
  • Impaired myogenic capacity, reduced self-renewal, and smaller myotube size were observed.
  • Enriched TNF-α/NF-κB signaling pathway in muscle stem cells, influenced by macrophage interactions, impacting regeneration.

Conclusions:

  • Preterm birth creates an inflammatory environment disrupting muscle stem cell function and pool.
  • This disruption may explain muscle atrophy and weakness in preterm individuals.
  • Inhibiting TNF-α (e.g., with Infliximab) shows promise for restoring muscle stem cell function and regeneration.
Abstract

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