Neurotrophin receptor p75NTR characterizes human esophageal keratinocyte stem cells in vitro

T Okumura, Y Shimada, M Imamura, S Yasumoto - Oncogene, 2003 - nature.com
T Okumura, Y Shimada, M Imamura, S Yasumoto
Oncogene, 2003nature.com
We report here that human esophageal keratinocyte stem cells are characterized by the
expression of the low-affinity neurotrophin receptor p75 NTR and differentially expressed
cell adhesion molecules, the β1 and β4 integrins. The candidate stem cells could be
fractionated from keratinocytes as a minor cell subset by means of immunocytochemical cell
sorting based on the different levels of expression of these cell surface molecules. Flow
cytometric analysis revealed that this minor cell subset retained a relatively slow-cycling …
Abstract
We report here that human esophageal keratinocyte stem cells are characterized by the expression of the low-affinity neurotrophin receptor p75 NTR and differentially expressed cell adhesion molecules, the β1 and β4 integrins. The candidate stem cells could be fractionated from keratinocytes as a minor cell subset by means of immunocytochemical cell sorting based on the different levels of expression of these cell surface molecules. Flow cytometric analysis revealed that this minor cell subset retained a relatively slow-cycling phenotype in vitro. These cells expressed low levels of involucrin and cytokeratin 13, indicating that the p75 NTR-positive cell subset is immature relative to the other predominant subpopulations coexpressing β1 integrin at higher levels. The p75 NTR-positive cell subset was crucial for achieving longevity and the greatest output of keratinocytes comprising all distinguishable subpopulations in vitro. This process was associated with self-renewal and self-amplification of the p75 NTR-positive cell subset. These findings strongly implicate p75 NTR as a stem cell marker, which will be valuable for prospectively investigating stem cell regulation in association with different biological processes including neoplastic transformation of regenerative epithelia.
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