Abstract
Mesenchymal stem cells (MSCs) have been shown to contribute to the recovery of tissues through homing to injured areas, especially to hypoxic, apoptotic, or inflamed areas and releasing factors that hasten endogenous repair. In some cases genetic engineering of the MSC is desired, since they are excellent delivery vehicles. We have derived MSCs from the human embryonic stem cell (hESC) line H9 (H9-MSCs). They expressed CD105, CD90, CD73, and CD146, and lacked expression of CD45, CD34, CD14, CD31, and HLA-DR, the hESC pluripotency markers SSEA-4 and Tra-1-81, and the hESC early differentiation marker SSEA-1. Marrow-derived MSCs showed a similar phenotype. H9-MSCs did not form teratoma in our initial studies, whereas the parent H9 line did so robustly. H9-MSCs differentiated into bone, cartilage, and adipocytes in vitro, and displayed increased migration under hypoxic conditions. Finally, using a hindlimb ischemia model, H9-MSCs were shown to home to the hypoxic muscle, but not the contralateral limb, by 48 h after IV injection. In summary, we have defined methods for differentiation of hESCs into MSCs and have defined their characteristics and in vivo migratory properties.
MeSH Terms
Animals
Cell Culture Techniques/methods
Cell Differentiation
Cell Hypoxia
Cell Line
Cell Lineage
Cell Movement
Cell Shape
Cells, Cultured
Embryonic Stem Cells/cytology
Flow Cytometry
Hindlimb/blood supply,pathology
Humans
Ischemia/pathology,therapy
Karyotyping
Mesenchymal Stem Cell Transplantation
Mesenchymal Stem Cells/cytology
Mice
Teratoma/pathology
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Gruenloh William
Stem Cell Program, Division of Hematology/Oncology, Department of Internal Medicine, University of California, Davis, Sacramento, California 95817, USA.
Kambal Amal
Sondergaard Claus
McGee Jeannine
Nacey Catherine
Kalomoiris Stefanos
Pepper Karen
Olson Scott
Fierro Fernando
Nolta Jan A
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