Molecular and cell-based therapies for muscle degenerations: a road under construction

Emanuele Berardi1, Daniela Annibali2, Marco Cassano3

  • 1Translational Cardiomyology Laboratory, Department of Development and Reproduction, KUL University of Leuven Leuven, Belgium ; Interuniversity Institute of Myology Italy.

Insights

Effective treatments for muscle degeneration, including muscular dystrophies and muscle wasting, are needed. This review explores molecular and gene/stem cell therapies, highlighting microRNAs and future clinical translation potential.

Area of Science:

  • Muscle biology and regenerative medicine
  • Molecular and cell therapy for neuromuscular disorders

Background:

  • Current treatments for muscular dystrophies offer limited benefits, primarily managing inflammation.
  • Cachexia and sarcopenia involve significant muscle degeneration, with promising preclinical treatments like myostatin inhibition.
  • Existing therapies for muscular degeneration are insufficient, necessitating novel therapeutic strategies.

Purpose of the Study:

  • To review molecular administrations and gene/stem cell therapy for treating muscular degenerations.
  • To analyze past cell delivery trials, including donor myoblasts and satellite cells.
  • To explore the potential of novel stem/progenitor cells and microRNAs in muscle regeneration.

Main Methods:

  • Review of existing literature on cell therapy and molecular treatments for muscular degeneration.
  • Analysis of clinical trials and preclinical studies in animal models.
  • Comparison of stem cell features and their myogenic potential.

Main Results:

  • Previous myoblast transplantation studies showed limited success due to various factors.
  • Satellite cell research offers renewed hope for muscle regeneration.
  • Emerging stem cells, including pluripotent stem cells, demonstrate potential for muscle repair.
  • MicroRNAs are identified as key regulators of myogenic commitment.

Conclusions:

  • Stem cell biology advancements are paving the way for new therapeutic approaches.
  • Combining cell therapy with molecular treatments holds promise for clinical translation.
  • Further research into stem cell homing and differentiation is crucial for effective treatments.

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