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Updated: Apr 30, 2026

Direct Reprogramming of Human Fibroblasts into Myoblasts to Investigate Therapies for Neuromuscular Disorders
Published on: April 3, 2021
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.
Abstract:
Despite the advances achieved in understanding the molecular biology of muscle cells in the past decades, there is still need for effective treatments of muscular degeneration caused by muscular dystrophies and for counteracting the muscle wasting caused by cachexia or sarcopenia. The corticosteroid medications currently in use for dystrophic patients merely help to control the inflammatory state and only slightly delay the progression of the disease. Unfortunately, walkers and wheel chairs are the only options for such patients to maintain independence and walking capabilities until the respiratory muscles become weak and the mechanical ventilation is needed. On the other hand, myostatin inhibition, IL-6 antagonism and synthetic ghrelin administration are examples of promising treatments in cachexia animal models. In both dystrophies and cachectic syndrome the muscular degeneration is extremely relevant and the translational therapeutic attempts to find a possible cure are well defined. In particular, molecular-based therapies are common options to be explored in order to exploit beneficial treatments for cachexia, while gene/cell therapies are mostly used in the attempt to induce a substantial improvement of the dystrophic muscular phenotype. This review focuses on the description of the use of molecular administrations and gene/stem cell therapy to treat muscular degenerations. It reviews previous trials using cell delivery protocols in mice and patients starting with the use of donor myoblasts, outlining the likely causes for their poor results and briefly focusing on satellite cell studies that raise new hope. Then it proceeds to describe recently identified stem/progenitor cells, including pluripotent stem cells and in relationship to their ability to home within a dystrophic muscle and to differentiate into skeletal muscle cells. Different known features of various stem cells are compared in this perspective, and the few available examples of their use in animal models of muscular degeneration are reported. Since non coding RNAs, including microRNAs (miRNAs), are emerging as prominent players in the regulation of stem cell fates we also provides an outline of the role of microRNAs in the control of myogenic commitment. Finally, based on our current knowledge and the rapid advance in stem cell biology, a prediction of clinical translation for cell therapy protocols combined with molecular treatments is discussed.
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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