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Author Spotlight: Ex Vivo Protocol for Culturing Quiescent Muscle Stem Cells with Niche Components
Published on: June 2, 2023
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.
Background:
Preterm birth-related conditions affect the development of multiple organs, such as the heart, the lungs and the brain, leading to long-term alterations in their function and a higher risk of comorbidities. Emerging evidence also indicates that the skeletal muscles are affected. We aimed to understand the mechanisms underlying these changes in skeletal muscles.
Methods:
A rodent model of transient neonatal hyperoxia and muscle samples of human babies born at term or preterm were used to investigate the impact of preterm birth-related conditions on muscle stem cells, the engine of muscle growth and repair. Single cell transcriptomics, in vitro culture of myoblasts or single myofibres, ex vivo muscle contractile properties and in vivo experiments (cardiotoxin-induced muscle injury) were performed to determine the impact of preterm birth on muscle stem cell function and regenerative capacity.
Results:
Preterm birth-related conditions reduced the muscle stem cell pool from the newborn stage (-30%, p = 0.0134) until adulthood (-56%, p < 0.0001), along with impaired myogenic capacity and regenerative potential. In vitro analysis from rats showed impaired self-renewal and reduced myotube size (-28.8%, p = 0.004). Human samples suggest a similar trend towards smaller myotube size in muscle stem cells from infants born at the earlier gestational age. Single-cell RNA-seq on rat samples revealed an enriched TNF-α/NF-κB signalling pathway within subsets of muscle stem cells. This pathway, mediated in part by interaction with macrophages, influences muscle stem cell fate decisions and myogenic trajectories. Culture experiments showed that myotubes treated with conditioned medium from macrophages of rats exposed to hyperoxia have reduced diameters (-66.5%, p = 0.0216). Early administration of an inhibitor of TNF-α (Infliximab) restored the muscle stem cell pool postinjury (63%, p = 0.0073) and regenerative capacity.
Conclusions:
Overall, preterm birth-related conditions promote an inflammatory microenvironment that disrupts the muscle stem cell pool and their function. This mechanism could explain the muscle atrophy and weakness observed in individuals born preterm and suggests potential therapeutic strategies to improve overall health outcomes in this population.
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