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Updated: Jun 5, 2026

Direct Reprogramming of Human Fibroblasts into Myoblasts to Investigate Therapies for Neuromuscular Disorders
Published on: April 3, 2021
Mesoangioblasts from facioscapulohumeral muscular dystrophy display in vivo a variable myogenic ability predictable
Roberta Morosetti1, Teresa Gidaro, Aldobrando Broccolini
1Department of Neurosciences, Catholic University School of Medicine A. Gemelli, Rome, Italy. Mirabella@rm.unicatt.it
Abstract:
Facioscapulohumeral muscular dystrophy (FSHD) is the third most frequent inherited myopathy. We previously demonstrated that mesoangioblasts can be efficiently isolated from FSHD muscles, although their differentiation ability into skeletal muscle was variably impaired. This correlates with overall disease severity and degree of histopathologic abnormalities, since mesoangioblasts from morphologically normal muscles did not show any myogenic differentiation block. The aim of our present study was to verify whether mesoangioblasts from differentially affected FSHD muscles reproduce in vivo the same differentiation ability shown in vitro by studying their capability to form new muscle fibers during muscle regeneration of experimentally damaged muscles. We show that a diverse ability of FSHD mesoangioblasts to engraft and differentiate into skeletal muscle of SCID mice is strictly related to the characteristics of the muscle of origin, closely replicating in vivo what was previously observed in vitro. Moreover, we demonstrate that mesoangioblasts obtained from severely affected muscles scarcely integrate into muscle fibers, remaining mainly localized in the connective tissue. This suggests a defective migration in response to chemoattractants released by damaged fibers, as indicated by cell migration assays in response to HMGB1 and very low levels of RAGE expression, along with a decreased ability to fuse or to appropriately trigger the myogenic program. Our study indicates that FSHD mesoangioblasts from unaffected muscles can be used as selective treatment to halt muscle degeneration in severely affected muscles, and suggests that pharmacological and molecular interventions aimed to ameliorate homing and engraftment of transplanted autologous mesoangioblasts may open the way to cell therapy for FSHD patients, without requiring immunosuppression or genetic correction in vitro.
Insights
Mesoangioblasts from unaffected Facioscapulohumeral muscular dystrophy (FSHD) muscles can treat degeneration in affected muscles. Interventions to improve cell homing may enable cell therapy for FSHD patients.
Area of Science:
- Muscle regeneration
- Cellular biology
- Inherited myopathies
Background:
- Facioscapulohumeral muscular dystrophy (FSHD) is a common inherited myopathy.
- Mesoangioblasts from FSHD muscles show impaired skeletal muscle differentiation.
- Differentiation capacity correlates with muscle pathology severity.
Purpose of the Study:
- To investigate in vivo the differentiation potential of FSHD mesoangioblasts from differentially affected muscles.
- To determine if in vitro observed myogenic defects are replicated in vivo.
- To explore the potential of FSHD mesoangioblasts for cell therapy.
Main Methods:
- Transplantation of FSHD mesoangioblasts into SCID mice with experimentally damaged muscles.
- Assessment of mesoangioblast engraftment and differentiation into new muscle fibers.
- In vitro cell migration assays using HMGB1 and RAGE expression analysis.
Main Results:
- FSHD mesoangioblast engraftment and differentiation in vivo mirrored in vitro findings, depending on the muscle of origin.
- Mesoangioblasts from severely affected muscles showed poor integration and localization in connective tissue.
- Defective migration, fusion, and myogenic program initiation were observed in mesoangioblasts from affected muscles.
Conclusions:
- FSHD mesoangioblasts from unaffected muscles show therapeutic potential for degenerating muscles.
- Pharmacological or molecular interventions targeting mesoangioblast homing and engraftment could advance cell therapy for FSHD.
- This approach may offer a treatment option without requiring immunosuppression or in vitro genetic correction.
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