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Generation of allogeneic and xenogeneic functional muscle stem cells for intramuscular transplantation
Ajda Lenardič, Seraina A. Domenig, Joel Zvick, Nicola Bundschuh, Monika Tarnowska-Sengül, Regula Furrer, Falko Noé, Christine L. Trautmann, Adhideb Ghosh, Giada Bacchin, Pjeter Gjonlleshaj, Xhem Qabrati, Evi Masschelein, Katrien De Bock, Christoph Handschin, Ori Bar-Nur
Ajda Lenardič, Seraina A. Domenig, Joel Zvick, Nicola Bundschuh, Monika Tarnowska-Sengül, Regula Furrer, Falko Noé, Christine L. Trautmann, Adhideb Ghosh, Giada Bacchin, Pjeter Gjonlleshaj, Xhem Qabrati, Evi Masschelein, Katrien De Bock, Christoph Handschin, Ori Bar-Nur
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Research Article Muscle biology

Generation of allogeneic and xenogeneic functional muscle stem cells for intramuscular transplantation

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Abstract

Satellite cells, the stem cells of skeletal muscle tissue, hold a remarkable regeneration capacity and therapeutic potential in regenerative medicine. However, low satellite cell yield from autologous or donor-derived muscles hinders the adoption of satellite cell transplantation for the treatment of muscle diseases, including Duchenne muscular dystrophy (DMD). To address this limitation, here we investigated whether satellite cells can be derived in allogeneic or xenogeneic animal hosts. First, injection of CRISPR/Cas9-corrected Dmdmdx mouse induced pluripotent stem cells (iPSCs) into mouse blastocysts carrying an ablation system of host satellite cells gave rise to intraspecies chimeras exclusively carrying iPSC-derived satellite cells. Furthermore, injection of genetically corrected DMD iPSCs into rat blastocysts resulted in the formation of interspecies rat-mouse chimeras harboring mouse satellite cells. Notably, iPSC-derived satellite cells or derivative myoblasts produced in intraspecies or interspecies chimeras restored dystrophin expression in DMD mice following intramuscular transplantation and contributed to the satellite cell pool. Collectively, this study demonstrates the feasibility of producing therapeutically competent stem cells across divergent animal species, raising the possibility of generating human muscle stem cells in large animals for regenerative medicine purposes.

Authors

Ajda Lenardič, Seraina A. Domenig, Joel Zvick, Nicola Bundschuh, Monika Tarnowska-Sengül, Regula Furrer, Falko Noé, Christine L. Trautmann, Adhideb Ghosh, Giada Bacchin, Pjeter Gjonlleshaj, Xhem Qabrati, Evi Masschelein, Katrien De Bock, Christoph Handschin, Ori Bar-Nur

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Figure 5

Generation of iPSC-derived mouse satellite cells in rat-mouse chimeras.

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Generation of iPSC-derived mouse satellite cells in rat-mouse chimeras.
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(A) A schematic overview of the experimental design. (B) A photo of rat-mouse chimera no. 1. (C) Images of RFP expression in organs derived from rat-mouse chimera no. 1. Scale bars: 1 cm. (D) PCR for rat and mouse dystrophin using DNA from digested muscles of the indicated animals. (E) Uniform manifold approximation and projection (UMAP) based on scRNA-seq of all cells in SD rat–derived muscles colored by species. (F) UMAP of all cells in SD rat–derived muscle colored by different cell types. MPs, myogenic progenitors; cMPs, cycling myogenic progenitors; VaECs, vascular endothelial cells; LyECs, lymphatic endothelial cells; FAPs, fibro-adipogenic progenitors. (G) Dot plot for individual gene expression in various SD rat–derived cell populations shown in F. (H) UMAP of all cells in rat-mouse chimera–derived muscles colored by species. (I) UMAP of all cells in rat-mouse chimera–derived muscles colored by different cell types. ECs, endothelial cells. The letters “r” and “m” indicate rat and mouse, respectively. (J) Dot plot for individual gene expression in the rat-mouse chimera cell populations shown in I.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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