CD24 expression indicates healthier phenotype and less tendency of cellular senescence in human nucleus pulposus cells
ARTIFICIAL CELLS NANOMEDICINE AND BIOTECHNOLOGY
Authors: Yang, Shu-Hua; Hu, Ming-Hsiao; Wu, Chang-Chin; Chen, Chih-Wei; Sun, Yuan-Hui; Yang, Kai-Chiang
Abstract
Identification of specific cell markers is crucial for recognizing functionally healthy nucleus pulposus (NP) cells. The objective of this study was to investigate the role of CD24 expression in adult human NP cells. Cells were retrieved from NP tissues of 20 patients (aged 17-44) operated on for lumbar disc herniation. Based on CD24 expression, NP cells were separated by sorting and then used to examine phenotypic behavior, the effects of culture conditions and cellular senescence pathway related proteins. CD24 expression was positive in 35.5 +/- 3.7% (range 9.1-65.2%) of NP cells. Consistently, normoxic expansion and serial passages in monolayers decreased percentage positivity for CD24 in NP cells. CD24(-) NP cells showed a markedly decreased GSK-3 beta activity and increased mitogen-activated protein kinase phosphorylation accompanying by an increased beta-catenin expression. Higher levels of matrix metalloproteinases, as well as lower levels of ACAN and COL2 in CD24(-) cells, indicated the breakdown and reduced the formation of key extracellular matrix components. CD24(+) NP cells presented a more favorable phenotype while CD24(-) cells showed a more prominent cellular senescence fate. CD24 in NP cells may be a surrogate marker of healthy cells, in the cell-based therapeutic treatment of degenerative disc disorders.
Rapamycin-Induced Hypoxia Inducible Factor 2A Is Essential for Chondrogenic Differentiation of Amniotic Fluid Stem Cells
STEM CELLS TRANSLATIONAL MEDICINE
Authors: Preitschopf, Andrea; Schoerghofer, David; Kinslechner, Katharina; Schuetz, Birgit; Zwickl, Hannes; Rosner, Margit; Joo, Jozsef Gabor; Nehrer, Stefan; Hengstschlaeger, Markus; Mikula, Mario
Abstract
Amniotic Amniotic fluid stem (AFS) cells represent a major source of donor cells for cartilage repair. Recently, it became clear that mammalian target of rapamycin (mTOR) inhibition has beneficial effects on cartilage homeostasis, but the effect of mTOR on chondrogenic differentiation is still elusive. Therefore, the objectives of this study were to investigate the effects of mammalian target of rapamycin complex 1 (mTORC1) modulation on the expression of SOX9 and on its downstream targets during chondrogenic differentiation of AFS cells. We performed three-dimensional pellet culturing of AFS cells and of in vitro-expanded, human-derived chondrocytes in the presence of chondrogenic factors. Inhibition of mTORC1 by rapamycin or by small interfering RNA-mediated targeting of raptor (gene name, RPTOR) led to increased AKT activation, upregulation of hypoxia inducible factor (HIF) 2A, and an increase in SOX9, COL2A1, and ACAN abundance. Here we show that HIF2A expression is essential for chondrogenic differentiation and that AKT activity regulates HIF2A amounts. Importantly, engraftment of AFS cells in cell pellets composed of human chondrocytes revealed an advantage of raptor knockdown cells compared with control cells in their ability to express SOX9. Our results demonstrate that mTORC1 inhibition leads to AKT activation and an increase in HIF2A expression. Therefore, we suggest that mTORC1 inhibition is a powerful tool for enhancing chondrogenic differentiation of AFS cells and also of in vitro-expanded adult chondrocytes before transplantation.