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First published online November 10, 2005
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2005-0247v1
24/3/568    most recent
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Submitted on June 1, 2005
Accepted on October 31, 2005

Original Article

Basic FGF Support of Human Embryonic Stem Cell Self-Renewal

Mark E. Levenstein 1, Tenneille E. Ludwig 2, Ren-He Xu 1, Rachel A. Llanas 1, Kaitlyn VanDenHeuvel-Kramer 1, Daisy Manning 1, James A. Thomson 1*

1 WiCell Research Institute, Madison, Wisconsin
2 Wisconsin National Primate Research Center, Madison, Wisconsin

* To whom correspondence should be addressed. E-mail: thomson{at}primate.wisc.edu.


   Abstract

Human embryonic stem (ES) cells have most commonly been cultured in the presence of basic FGF (FGF2) either on fibroblast feeder layers or in fibroblast-conditioned medium. Recently, it has been reported that elevated concentrations of FGF2 permit the culture of human ES cells in the absence of fibroblasts or fibroblast-conditioned medium. Here we compare the ability of unconditioned medium (UM) supplemented with 4, 24, 40, 80, 100 and 250 ng/ml FGF2 to sustain low-density human ES cell cultures through multiple passages. In these stringent culture conditions, 4, 24, and 40 ng/ml FGF2 failed to sustain human ES cells through three passages, but 100 ng/ml sustained human ES cells with an effectiveness comparable to conditioned medium (CM). Two human ES cell lines (H1 and H9) were maintained for up to 164 population doublings (7 and 4 months) in UM supplemented with 100 ng/ml FGF2. After prolonged culture the cells formed teratomas when injected into SCID-beige mice, and expressed markers characteristic of undifferentiated human ES cells. We also demonstrate that FGF2 is degraded more rapidly in UM than in CM, partly explaining the need for higher concentrations of FGF2 in UM. These results further facilitate the large-scale, routine culture of human ES cells, and suggest that fibroblasts and fibroblast-conditioned medium sustain human ES cells in part by stabilizing FGF signaling above a critical threshold.

Key Words. human embryonic stem cell, fibroblast growth factor




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