| Literature DB >> 34042215 |
Zhenshuo Zhu1, Xiaolong Wu1, Qun Li2, Juqing Zhang1, Shuai Yu1, Qiaoyan Shen1, Zhe Zhou1, Qin Pan1, Wei Yue1, Dezhe Qin1, Ying Zhang1, Wenxu Zhao1, Rui Zhang1, Sha Peng1, Na Li1, Shiqiang Zhang1, Anmin Lei1, Yi-Liang Miao3, Zhonghua Liu4, Xingqi Chen5, Huayan Wang1, Mingzhi Liao2, Jinlian Hua1.
Abstract
The pluripotency gene regulatory network of porcine induced pluripotent stem cells(piPSCs), especially in epigenetics, remains elusive. To determine the biological function of epigenetics, we cultured piPSCs in different culture conditions. We found that activation of pluripotent gene- and pluripotency-related pathways requires the erasure of H3K9 methylation modification which was further influenced by mouse embryonic fibroblast (MEF) served feeder. By dissecting the dynamic change of H3K9 methylation during loss of pluripotency, we demonstrated that the H3K9 demethylases KDM3A and KDM3B regulated global H3K9me2/me3 level and that their co-depletion led to the collapse of the pluripotency gene regulatory network. Immunoprecipitation-mass spectrometry (IP-MS) provided evidence that KDM3A and KDM3B formed a complex to perform H3K9 demethylation. The genome-wide regulation analysis revealed that OCT4 (O) and SOX2 (S), the core pluripotency transcriptional activators, maintained the pluripotent state of piPSCs depending on the H3K9 hypomethylation. Further investigation revealed that O/S cooperating with histone demethylase complex containing KDM3A and KDM3B promoted pluripotency genes expression to maintain the pluripotent state of piPSCs. Together, these data offer a unique insight into the epigenetic pluripotency network of piPSCs.Entities:
Keywords: H3K9 methylation; KDM3A/3B; histone demethylase complexes; pluripotency
Year: 2021 PMID: 34042215 DOI: 10.1096/fj.202100230R
Source DB: PubMed Journal: FASEB J ISSN: 0892-6638 Impact factor: 5.191