PHF2 regulates genome topology and DNA replication in neural stem cells via cohesinlongmeta

Cohesin plays a crucial role in the organization of topologically-associated domains (TADs), which influence gene expression and DNA replication timing. Whether epigenetic regulators may affect TADs via cohesin to mediate DNA replication remains elusive. Here, we discover that the histone demethylas...

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Veröffentlicht in:Nucleic acids research 2024-05, Vol.52 (12), p.7063-7080
Hauptverfasser: Feng, Jia, Chuah, You Heng, Liang, Yajing, Cipta, Nadia Omega, Zeng, Yingying, Warrier, Tushar, Elfar, Gamal Ahmed Rashed Elsayed, Yoon, Jeehyun, Grinchuk, Oleg V, Tay, Emmy Xue Yun, Lok, Ker-Zhing, Zheng, Zong-Qing, Khong, Zi Jian, Chong, Zheng-Shan, Teo, Jackie, Sanford, Emma May, Neo, Cheryl Jia Yi, Chiu, Hsin Yao, Leung, Jia Yu, Wang, Loo Chien, Lim, Yan Ting, Zhao, Tianyun, Sobota, Radoslaw M, Crasta, Karen Carmelina, Tergaonkar, Vinay, Taneja, Reshma, Ng, Shi-Yan, Cheok, Chit Fang, Ling, Shuo-Chien, Loh, Yuin-Han, Ong, Derrick Sek Tong
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Sprache:eng
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Zusammenfassung:Cohesin plays a crucial role in the organization of topologically-associated domains (TADs), which influence gene expression and DNA replication timing. Whether epigenetic regulators may affect TADs via cohesin to mediate DNA replication remains elusive. Here, we discover that the histone demethylase PHF2 associates with RAD21, a core subunit of cohesin, to regulate DNA replication in mouse neural stem cells (NSC). PHF2 loss impairs DNA replication due to the activation of dormant replication origins in NSC. Notably, the PHF2/RAD21 co-bound genomic regions are characterized by CTCF enrichment and epigenomic features that resemble efficient, active replication origins, and can act as boundaries to separate adjacent domains. Accordingly, PHF2 loss weakens TADs and chromatin loops at the co-bound loci due to reduced RAD21 occupancy. The observed topological and DNA replication defects in PHF2 KO NSC support a cohesin-dependent mechanism. Furthermore, we demonstrate that the PHF2/RAD21 complex exerts little effect on gene regulation, and that PHF2’s histone-demethylase activity is dispensable for normal DNA replication and proliferation of NSC. We propose that PHF2 may serve as a topological accessory to cohesin for cohesin localization to TADs and chromatin loops, where cohesin represses dormant replication origins directly or indirectly, to sustain DNA replication in NSC. Graphical Abstract
ISSN:0305-1048
1362-4962
DOI:10.1093/nar/gkae457