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ITGA6+ Human Testicular Cell Populations Acquire a Mesenchymal Rather than Germ Cell Transcriptional Signature during Long-Term Culture

Autologous spermatogonial stem cell transplantation is an experimental technique aimed at restoring fertility in infertile men. Although effective in animal models, in vitro propagation of human spermatogonia prior to transplantation has proven to be difficult. A major limiting factor is endogenous...

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Autores principales: Struijk, Robert B., Mulder, Callista L., van Daalen, Saskia K. M., de Winter-Korver, Cindy M., Jongejan, Aldo, Repping, Sjoerd, van Pelt, Ans M. M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7672582/
https://www.ncbi.nlm.nih.gov/pubmed/33158248
http://dx.doi.org/10.3390/ijms21218269
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author Struijk, Robert B.
Mulder, Callista L.
van Daalen, Saskia K. M.
de Winter-Korver, Cindy M.
Jongejan, Aldo
Repping, Sjoerd
van Pelt, Ans M. M.
author_facet Struijk, Robert B.
Mulder, Callista L.
van Daalen, Saskia K. M.
de Winter-Korver, Cindy M.
Jongejan, Aldo
Repping, Sjoerd
van Pelt, Ans M. M.
author_sort Struijk, Robert B.
collection PubMed
description Autologous spermatogonial stem cell transplantation is an experimental technique aimed at restoring fertility in infertile men. Although effective in animal models, in vitro propagation of human spermatogonia prior to transplantation has proven to be difficult. A major limiting factor is endogenous somatic testicular cell overgrowth during long-term culture. This makes the culture both inefficient and necessitates highly specific cell sorting strategies in order to enrich cultured germ cell fractions prior to transplantation. Here, we employed RNA-Seq to determine cell type composition in sorted integrin alpha-6 (ITGA6+) primary human testicular cells (n = 4 donors) cultured for up to two months, using differential gene expression and cell deconvolution analyses. Our data and analyses reveal that long-term cultured ITGA6+ testicular cells are composed mainly of cells expressing markers of peritubular myoid cells, (progenitor) Leydig cells, fibroblasts and mesenchymal stromal cells and only a limited percentage of spermatogonial cells as compared to their uncultured counterparts. These findings provide valuable insights into the cell type composition of cultured human ITGA6+ testicular cells during in vitro propagation and may serve as a basis for optimizing future cell sorting strategies as well as optimizing the current human testicular cell culture system for clinical use.
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spelling pubmed-76725822020-11-19 ITGA6+ Human Testicular Cell Populations Acquire a Mesenchymal Rather than Germ Cell Transcriptional Signature during Long-Term Culture Struijk, Robert B. Mulder, Callista L. van Daalen, Saskia K. M. de Winter-Korver, Cindy M. Jongejan, Aldo Repping, Sjoerd van Pelt, Ans M. M. Int J Mol Sci Article Autologous spermatogonial stem cell transplantation is an experimental technique aimed at restoring fertility in infertile men. Although effective in animal models, in vitro propagation of human spermatogonia prior to transplantation has proven to be difficult. A major limiting factor is endogenous somatic testicular cell overgrowth during long-term culture. This makes the culture both inefficient and necessitates highly specific cell sorting strategies in order to enrich cultured germ cell fractions prior to transplantation. Here, we employed RNA-Seq to determine cell type composition in sorted integrin alpha-6 (ITGA6+) primary human testicular cells (n = 4 donors) cultured for up to two months, using differential gene expression and cell deconvolution analyses. Our data and analyses reveal that long-term cultured ITGA6+ testicular cells are composed mainly of cells expressing markers of peritubular myoid cells, (progenitor) Leydig cells, fibroblasts and mesenchymal stromal cells and only a limited percentage of spermatogonial cells as compared to their uncultured counterparts. These findings provide valuable insights into the cell type composition of cultured human ITGA6+ testicular cells during in vitro propagation and may serve as a basis for optimizing future cell sorting strategies as well as optimizing the current human testicular cell culture system for clinical use. MDPI 2020-11-04 /pmc/articles/PMC7672582/ /pubmed/33158248 http://dx.doi.org/10.3390/ijms21218269 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Struijk, Robert B.
Mulder, Callista L.
van Daalen, Saskia K. M.
de Winter-Korver, Cindy M.
Jongejan, Aldo
Repping, Sjoerd
van Pelt, Ans M. M.
ITGA6+ Human Testicular Cell Populations Acquire a Mesenchymal Rather than Germ Cell Transcriptional Signature during Long-Term Culture
title ITGA6+ Human Testicular Cell Populations Acquire a Mesenchymal Rather than Germ Cell Transcriptional Signature during Long-Term Culture
title_full ITGA6+ Human Testicular Cell Populations Acquire a Mesenchymal Rather than Germ Cell Transcriptional Signature during Long-Term Culture
title_fullStr ITGA6+ Human Testicular Cell Populations Acquire a Mesenchymal Rather than Germ Cell Transcriptional Signature during Long-Term Culture
title_full_unstemmed ITGA6+ Human Testicular Cell Populations Acquire a Mesenchymal Rather than Germ Cell Transcriptional Signature during Long-Term Culture
title_short ITGA6+ Human Testicular Cell Populations Acquire a Mesenchymal Rather than Germ Cell Transcriptional Signature during Long-Term Culture
title_sort itga6+ human testicular cell populations acquire a mesenchymal rather than germ cell transcriptional signature during long-term culture
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7672582/
https://www.ncbi.nlm.nih.gov/pubmed/33158248
http://dx.doi.org/10.3390/ijms21218269
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