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Amniotic Membrane-Derived Stromal Cells Release Extracellular Vesicles That Favor Regeneration of Dystrophic Skeletal Muscles

Overview
Journal Int J Mol Sci
Publisher MDPI
Date 2023 Aug 12
PMID 37569832
Authors
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Abstract

Duchenne muscular dystrophy (DMD) is a muscle disease caused by mutations in the dystrophin gene characterized by myofiber fragility and progressive muscle degeneration. The genetic defect results in a reduced number of self-renewing muscle stem cells (MuSCs) and an impairment of their activation and differentiation, which lead to the exhaustion of skeletal muscle regeneration potential and muscle replacement by fibrotic and fatty tissue. In this study, we focused on an unexplored strategy to improve MuSC function and to preserve their niche based on the regenerative properties of mesenchymal stromal cells from the amniotic membrane (hAMSCs), that are multipotent cells recognized to have a role in tissue repair in different disease models. We demonstrate that the hAMSC secretome (CM hAMSC) and extracellular vesicles (EVs) isolated thereof directly stimulate the in vitro proliferation and differentiation of human myoblasts and mouse MuSC from dystrophic muscles. Furthermore, we demonstrate that hAMSC secreted factors modulate the muscle stem cell niche in dystrophic--mice. Interestingly, local injection of EV hAMSC in muscles correlated with an increase in the number of activated Pax7+/Ki67+ MuSCs and in new fiber formation. EV hAMSCs also significantly reduced muscle collagen deposition, thus counteracting fibrosis and MuSCs exhaustion, two hallmarks of DMD. Herein for the first time we demonstrate that CM hAMSC and EVs derived thereof promote muscle regeneration by supporting proliferation and differentiation of resident muscle stem cells. These results pave the way for the development of a novel treatment to counteract DMD progression by reducing fibrosis and enhancing myogenesis in dystrophic muscles.

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References
1.
Mozzetta C, Consalvi S, Saccone V, Tierney M, Diamantini A, Mitchell K . Fibroadipogenic progenitors mediate the ability of HDAC inhibitors to promote regeneration in dystrophic muscles of young, but not old Mdx mice. EMBO Mol Med. 2013; 5(4):626-39. PMC: 3628105. DOI: 10.1002/emmm.201202096. View

2.
Umezawa A, Hasegawa A, Inoue M, Tanuma-Takahashi A, Kajiwara K, Makino H . Amnion-derived cells as a reliable resource for next-generation regenerative medicine. Placenta. 2019; 84:50-56. DOI: 10.1016/j.placenta.2019.06.381. View

3.
Kosaka N, Iguchi H, Yoshioka Y, Takeshita F, Matsuki Y, Ochiya T . Secretory mechanisms and intercellular transfer of microRNAs in living cells. J Biol Chem. 2010; 285(23):17442-52. PMC: 2878508. DOI: 10.1074/jbc.M110.107821. View

4.
Balbi C, Piccoli M, Barile L, Papait A, Armirotti A, Principi E . First Characterization of Human Amniotic Fluid Stem Cell Extracellular Vesicles as a Powerful Paracrine Tool Endowed with Regenerative Potential. Stem Cells Transl Med. 2017; 6(5):1340-1355. PMC: 5442724. DOI: 10.1002/sctm.16-0297. View

5.
Charge S, Rudnicki M . Cellular and molecular regulation of muscle regeneration. Physiol Rev. 2004; 84(1):209-38. DOI: 10.1152/physrev.00019.2003. View