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Biologic properties of mesenchymal stem cells derived from bone marrow and adipose tissue

Journal of Cellular Biochemistry · 2006 · Vol. 99(5) · pp. 1285–1297
Reza IzadpanahCynthia B. TryggBindiya PatelChristopher KriedtJason DufourJ. M. GimbleBruce A. Bunnell

Abstract

The biologic characteristics of mesenchymal stem cells (MSCs) isolated from two distinct tissues, bone marrow and adipose tissue were evaluated in these studies. MSCs derived from human and non-human primate (rhesus monkey) tissue sources were compared. The data indicate that MSCs isolated from rhesus bone marrow (rBMSCs) and human adipose tissue (hASCs) had more similar biologic properties than MSCs of rhesus adipose tissue (rASCs) and human bone marrow MSCs (hBMSCs). Analyses of in vitro growth kinetics revealed shorter doubling time for rBMSCs and hASCs. rBMSCs and hASCs underwent significantly more population doublings than the other MSCs. MSCs from all sources showed a marked decrease in telomerase activity over extended culture; however, they maintained their mean telomere length. All of the MSCs expressed embryonic stem cell markers, Oct-4, Rex-1, and Sox-2 for at least 10 passages. Early populations of MSCs types showed similar multilineage differentiation capability. However, only the rBMSCs and hASCs retain greater differentiation efficiency at higher passages. Overall in vitro characterization of MSCs from these two species and tissue sources revealed a high level of common biologic properties. However, the results demonstrate clear biologic distinctions, as well.

Mesenchymal stem cell researchTissue Engineering and Regenerative MedicineTelomeres, Telomerase, and SenescenceAdipose tissueMesenchymal stem cellStem cell transplantation for articular cartilage repairBone marrowStem cellClinical uses of mesenchymal stem cellsCell biologyBiologyPathologyChemistry

MeSH terms

Adipose TissueAnimalsBone Marrow CellsCell DifferentiationCells, CulturedHumansMacaca mulattaOsteogenesisTranscription FactorsBiomarkersTelomereCell LineageTelomeraseChondrogenesisMesenchymal Stem Cell Transplantation

Funding

  • Tulane University
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