4.8 Article

Mesodermal iPSC-derived progenitor cells functionally regenerate cardiac and skeletal muscle

期刊

JOURNAL OF CLINICAL INVESTIGATION
卷 125, 期 12, 页码 4463-4482

出版社

AMER SOC CLINICAL INVESTIGATION INC
DOI: 10.1172/JCI82735

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资金

  1. Opening The Future Campaign [EJJ-OPTFUT-02010]
  2. Cardio Repair European Multidisciplinary Initiative (CARE-MI FP7)
  3. Association Francaise contre les Myopathies (AFM)
  4. Cassa di Risparmio delle Provincie Lombarde (CARIPLO)
  5. Fonds voor Wetenschappelijk Onderzoek (FWO) [G060612N, G0A8813N, G088715N]
  6. Geconcerteerde Onderzoeksacties (GOA) [11-012]
  7. Interuniversity Poles of Attraction (IUAP) [VII/07]
  8. Onderzoek Traject (OT) [09-053]
  9. FWO [1263314N, V448715N]
  10. AFM (Trampoline grant) [18373]

向作者/读者索取更多资源

Conditions such as muscular dystrophies (MDs) that affect both cardiac and skeletal muscles would benefit from therapeutic strategies that enable regeneration of both of these striated muscle types. Protocols have been developed to promote induced pluripotent stem cells (iPSCs) to differentiate toward cardiac or skeletal muscle; however, there are currently no strategies to simultaneously target both muscle types. Tissues exhibit specific epigenetic alterations; therefore, source-related lineage biases have the potential to improve iPSC-driven multilineage differentiation. Here, we determined that differential myogenic propensity influences the commitment of isogenic iPSCs and a specifically isolated pool of mesodermal iPSC-derived progenitors (MiPs) toward the striated muscle lineages. Differential myogenic propensity did not influence pluripotency, but did selectively enhance chimerism of MiP-derived tissue in both fetal and adult skeletal muscle. When injected into dystrophic mice, MiPs engrafted and repaired both skeletal and cardiac muscle, reducing functional defects. Similarly, engraftment into dystrophic mice of canine MiPs from dystrophic dogs that had undergone TALEN-mediated correction of the MD-associated mutation also resulted in functional striatel muscle regeneration. Moreover, human MiPs exhibited the same capacity for the dual differentiation observed in murine and canine MiPs. The findings of this study suggest that MiPs should be further explored for combined therapy of cardiac and skeletal muscles.

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