Abstract
Stem cells that naturally reside in adult tissues, such as muscle stem cells (MuSCs), exhibit robust regenerative capacity in vivo that is rapidly lost in culture. Using a bioengineered substrate to recapitulate key biophysical and biochemical niche features in conjunction with a highly automated single-cell tracking algorithm, we show that substrate elasticity is a potent regulator of MuSC fate in culture. Unlike MuSCs on rigid plastic dishes (approximately 10(6) kilopascals), MuSCs cultured on soft hydrogel substrates that mimic the elasticity of muscle (12 kilopascals) self-renew in vitro and contribute extensively to muscle regeneration when subsequently transplanted into mice and assayed histologically and quantitatively by noninvasive bioluminescence imaging. Our studies provide novel evidence that by recapitulating physiological tissue rigidity, propagation of adult muscle stem cells is possible, enabling future cell-based therapies for muscle-wasting diseases.
MeSH Terms
Algorithms
Animals
Cell Count
Cell Culture Techniques/methods
Cell Death
Cell Differentiation
Cell Division
Cell Lineage
Cell Separation
Cell Survival
Cells, Cultured
Elastic Modulus
Hydrogels
Mice
Mice, Inbred C57BL
Mice, Inbred NOD
Mice, SCID
Mice, Transgenic
Muscle Fibers, Skeletal/cytology,physiology
Muscle, Skeletal/cytology
Polyethylene Glycols
Regeneration
Satellite Cells, Skeletal Muscle/cytology
Stem Cell Niche/physiology
Stem Cell Transplantation
Stem Cells/cytology,physiology
Chemicals
Hydrogels
Polyethylene Glycols
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Gilbert P M
Baxter Laboratory for Stem Cell Biology, Department of Microbiology and Immunology, Institute for Stem Cell Biology and Regenerative Medicine, Stanford University School of Medicine, Stanford, CA 94305, USA.
Havenstrite K L
Magnusson K E G
Sacco A
Leonardi N A
Kraft P
Nguyen N K
Thrun S
Lutolf M P
Blau H M
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