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Indirect Effects of Wnt3a/β-Catenin Signalling Support Mouse Spermatogonial Stem Cells In Vitro
by
Zhang, Xiangfan
, Yeh, Jonathan R.
, Nagano, Makoto C.
in
Animals
/ beta Catenin - metabolism
/ Biology
/ Cell culture
/ Cell self-renewal
/ Cells (biology)
/ Communities
/ Dehydrogenases
/ Drosophila
/ Fibroblast growth factor 2
/ Genes
/ Germ cells
/ Glial cell line-derived neurotrophic factor
/ Gynecology
/ In Vitro Techniques
/ Insects
/ Male
/ Medicine
/ Mice
/ Neuronal-glial interactions
/ Obstetrics
/ Paracrine signalling
/ Rodents
/ Signal Transduction
/ Sperm
/ Spermatogenesis
/ Spermatogonia
/ Spermatogonia - metabolism
/ Stem cell transplantation
/ Stem cells
/ Stem Cells - cytology
/ Stem Cells - metabolism
/ Studies
/ Wnt protein
/ Wnt3A Protein - metabolism
/ Xenopus
/ β-Catenin
2012
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Indirect Effects of Wnt3a/β-Catenin Signalling Support Mouse Spermatogonial Stem Cells In Vitro
by
Zhang, Xiangfan
, Yeh, Jonathan R.
, Nagano, Makoto C.
in
Animals
/ beta Catenin - metabolism
/ Biology
/ Cell culture
/ Cell self-renewal
/ Cells (biology)
/ Communities
/ Dehydrogenases
/ Drosophila
/ Fibroblast growth factor 2
/ Genes
/ Germ cells
/ Glial cell line-derived neurotrophic factor
/ Gynecology
/ In Vitro Techniques
/ Insects
/ Male
/ Medicine
/ Mice
/ Neuronal-glial interactions
/ Obstetrics
/ Paracrine signalling
/ Rodents
/ Signal Transduction
/ Sperm
/ Spermatogenesis
/ Spermatogonia
/ Spermatogonia - metabolism
/ Stem cell transplantation
/ Stem cells
/ Stem Cells - cytology
/ Stem Cells - metabolism
/ Studies
/ Wnt protein
/ Wnt3A Protein - metabolism
/ Xenopus
/ β-Catenin
2012
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Do you wish to request the book?
Indirect Effects of Wnt3a/β-Catenin Signalling Support Mouse Spermatogonial Stem Cells In Vitro
by
Zhang, Xiangfan
, Yeh, Jonathan R.
, Nagano, Makoto C.
in
Animals
/ beta Catenin - metabolism
/ Biology
/ Cell culture
/ Cell self-renewal
/ Cells (biology)
/ Communities
/ Dehydrogenases
/ Drosophila
/ Fibroblast growth factor 2
/ Genes
/ Germ cells
/ Glial cell line-derived neurotrophic factor
/ Gynecology
/ In Vitro Techniques
/ Insects
/ Male
/ Medicine
/ Mice
/ Neuronal-glial interactions
/ Obstetrics
/ Paracrine signalling
/ Rodents
/ Signal Transduction
/ Sperm
/ Spermatogenesis
/ Spermatogonia
/ Spermatogonia - metabolism
/ Stem cell transplantation
/ Stem cells
/ Stem Cells - cytology
/ Stem Cells - metabolism
/ Studies
/ Wnt protein
/ Wnt3A Protein - metabolism
/ Xenopus
/ β-Catenin
2012
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Indirect Effects of Wnt3a/β-Catenin Signalling Support Mouse Spermatogonial Stem Cells In Vitro
Journal Article
Indirect Effects of Wnt3a/β-Catenin Signalling Support Mouse Spermatogonial Stem Cells In Vitro
2012
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Overview
Proper regulation of spermatogonial stem cells (SSCs) is crucial for sustaining steady-state spermatogenesis. Previous work has identified several paracrine factors involved in this regulation, in particular, glial cell line-derived neurotrophic factor and fibroblast growth factor 2, which promote long-term SSC self-renewal. Using a SSC culture system, we have recently reported that Wnt5a promotes SSC self-renewal through a β-catenin-independent Wnt mechanism whereas the β-catenin-dependent Wnt pathway is not active in SSCs. In contrast, another study has reported that Wnt3a promotes SSC self-renewal through the β-catenin-dependent pathway, as it can stimulate the proliferation of a spermatogonia cell line. To reconcile these two contradictory reports, we assessed Wnt3a effects on SSCs and progenitor cells, rather than a cell line, in vitro. We observed that Wnt3a induced β-catenin-dependent signalling in a large subset of germ cells and increased SSC numbers. However, further investigation revealed that cell populations with greater β-catenin-signalling activity contained fewer SSCs. The increased maintenance of SSCs by Wnt3a coincided with more active cell cycling and the formation of germ cell aggregates, or communities, under feeder-free conditions. Therefore, the results of this study suggest that Wnt3a selectively stimulates proliferation of progenitors that are committed to differentiation or are in the process of exiting the SSC state, leading to enhanced formation of germ cell communities, which indirectly support SSCs and act as an in vitro niche.
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