| Literature DB >> 29738956 |
Sadegh Davoudi1, Chih-Ying Chin1, Michael J Cooke2, Roger Y Tam2, Molly S Shoichet2, Penney M Gilbert3.
Abstract
Adult skeletal muscle tissue harbors the capacity for self-repair due to the presence of tissue resident muscle stem cells (MuSCs). Advances in the area of prospective MuSC isolation demonstrated the potential of cell transplantation therapy as a regenerative medicine strategy to restore strength and long-term regenerative capacity to aged, injured, or diseased skeletal muscle tissue. However, cell loss during ejection, limits to post-injection proliferation, and poor donor cell dispersion distal to the injection site are amongst hurdles to overcome to maximize MuSC transplant impact. Here, we assess a physical blend of hyaluronan and methylcellulose (HAMC) as a bioactive, shear thinning hydrogel cell delivery system to improve MuSC transplantation efficiency. Using in vivo transplantation studies, we found that the HAMC delivery system results in a >45% increase in the number of donor-derived fibers as compared to saline delivery. We demonstrate that increases in donor-derived fibers when using HAMC are attributed to increased MuSC proliferation via a CD44-independent mechanism, preventing injected cell active clearance, and supporting in vivo expansion by delaying differentiation. Furthermore, we observed a significant improvement in donor fiber dispersion when MuSCs were delivered in HAMC. Our study results suggest that HAMC is a promising muscle stem cell delivery vehicle.Entities:
Keywords: Bioactive; Hyaluronan; Injectable hydrogel; Methylcellulose; Muscle stem cells; Skeletal muscle; Transplantation
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Year: 2018 PMID: 29738956 DOI: 10.1016/j.biomaterials.2018.04.048
Source DB: PubMed Journal: Biomaterials ISSN: 0142-9612 Impact factor: 12.479