Monitoring rapid degradation of NANOG reveals UTP15 maintains pluripotency by regulating nascent transcripts.

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作者:Deng Mingqiang, He Dongmei, Wang Xiwei, Yuan Yuting, Wang Lishen, Hou Yanlin, Zhu Qiuyue, Zhou Chuanman, Mai Zhibiao, Zhang Yulong, Nie Zhengwen, Song Yuling, Wu Qiongfang, Pan Luyao, Dong Bei, Xiong Zhi, Li Duo, Liu Dongjun, Xu Jinxin, Qin Dajiang, Zheng Hui, Zhao Yu, Tang Peng, Wang Jinkai, Print Cristin, Jauch Ralf, Zhang Wensheng, Wu Guangming, Bao Xichen
Master transcription factors (MTFs) are key regulators in cell fate determination. However, an approach to profile MTF's direct transcriptional targets together with their associated RNA-binding proteins (RBPs), is still lacking. Here, we applied 5-ethynyluridine RNA metabolic labeling and click chemistry to map the dynamics of the transcriptional targets and the RBPs interacting with the newly transcribed RNAs upon acute NANOG degradation in mouse embryonic stem cells (mESCs). We identified UTP15, a classic rRNA-biogenesis regulator, acts as a key activator of pluripotency-associated gene transcription independently of rRNA biogenesis. Importantly, NANOG-regulated transcription enhances UTP15 binding to transcription start sites (TSSs), associated with increased Pol II binding and more active transcription. Moreover, UTP15 promotes the assembly of Pol II biomolecular condensates, thereby potentially driving pluripotency gene transcription. Collectively, our study uncovers a NANOG-nascent transcript-UTP15 regulatory axis to activate pluripotency gene transcription, providing a distinct approach for studying MTF's function during cell fate determination.

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