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Transcriptome alterations in spermatogonial stem cells exposed to bisphenol Aopen access

Authors
Ahn, Jin SeopWon, Jong-HyunKim, Do-YoungJung, Sang-EunKim, Bang-JinKim, Jun-MoRyu, Buom-Yong
Issue Date
Mar-2022
Publisher
Taylor and Francis Ltd.
Keywords
autophagy; Bisphenol A; RNA sequencing; spermatogonial stem cell
Citation
Animal Cells and Systems, v.26, no.2, pp 70 - 83
Pages
14
Journal Title
Animal Cells and Systems
Volume
26
Number
2
Start Page
70
End Page
83
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/57871
DOI
10.1080/19768354.2022.2061592
ISSN
1976-8354
2151-2485
Abstract
Owing to their self-renewal and differentiation abilities, spermatogonial stem cells (SSCs) are essential for maintaining male fertility and species preservation through spermatogenesis. With an increase in exposure to plasticizers, the risk of endocrine-disrupting chemicals exerting mimetic effects on estrogen receptors, such as bisphenol A (BPA), has also increased. This has led to concerns regarding the preservation of male fertility. BPA impairs spermatogenesis and the maintenance of SSCs; however, the transcriptome differences caused by BPA in SSCs are poorly understood. Thus, this study aimed to investigate the transcriptome differences in SSCs exposed to BPA, using RNA sequencing (RNA-Seq) analysis. We found that cell proliferation and survival were suppressed by SSC exposure to BPA. Therefore, we investigated transcriptome differences through RNA-Seq, functional annotation, and gene set enrichment analysis. Our results showed repetitive and abundant terms related to two genes of lysosomal acidification and five genes of glycosaminoglycan degradation. Furthermore, we validated the transcriptome analyses by detecting mRNA and protein expression levels. The findings confirmed the discovery of differentially expressed genes (DEGs) and the mechanism of SSCs following exposure to BPA. Taken together, we expect that the identified DEGs and lysosomal mechanisms could provide new insights into the preservation of male fertility and related research. © 2022 The Author(s). Published by Informa UK Limited, trading as Taylor & Francis Group.
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Ryu, Buom-Yong
대학원 (동물생명공학과.)
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