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真核起始因子3D(EIF3D)维持人类原始多能性中关键信号通路的稳态。

EIF3D safeguards the homeostasis of key signaling pathways in human primed pluripotency.

作者信息

Okubo Chikako, Nakamura Michiko, Sato Masae, Shichino Yuichi, Mito Mari, Takashima Yasuhiro, Iwasaki Shintaro, Takahashi Kazutoshi

机构信息

Department of Life Science Frontiers, Center for iPS Cell Research and Application, Kyoto University, Kyoto, 606-8507, Japan.

RNA Systems Biochemistry Laboratory, RIKEN Cluster for Pioneering Research, Saitama, 351-0198, Japan.

出版信息

Sci Adv. 2025 Apr 11;11(15):eadq5484. doi: 10.1126/sciadv.adq5484. Epub 2025 Apr 9.

Abstract

Although pluripotent stem cell (PSC) properties, such as differentiation and infinite proliferation, have been well documented within the frameworks of transcription factor networks, epigenomes, and signal transduction, they remain unclear and fragmented. Directing attention toward translational regulation as a bridge between these events can yield additional insights into previously unexplained mechanisms. Our functional CRISPR interference screen-based approach revealed that EIF3D, a translation initiation factor, is crucial for maintaining primed pluripotency. Loss of EIF3D disrupted the balance of pluripotency-associated signaling pathways, thereby compromising primed pluripotency. Moreover, EIF3D ensured robust proliferation by controlling the translation of various p53 regulators, which maintain low p53 activity in the undifferentiated state. In this way, EIF3D-mediated translation contributes to tuning the homeostasis of the primed pluripotency networks, ensuring the maintenance of an undifferentiated state with high proliferative potential. This study provides further insights into the translation network in maintaining pluripotency.

摘要

尽管多能干细胞(PSC)的特性,如分化和无限增殖,已在转录因子网络、表观基因组和信号转导的框架内得到充分记录,但它们仍不清晰且支离破碎。将注意力转向作为这些事件之间桥梁的翻译调控,可以对以前无法解释的机制产生更多见解。我们基于功能CRISPR干扰筛选的方法表明,翻译起始因子EIF3D对于维持初始多能性至关重要。EIF3D的缺失破坏了多能性相关信号通路的平衡,从而损害了初始多能性。此外,EIF3D通过控制各种p53调节因子的翻译来确保强劲的增殖,这些调节因子在未分化状态下维持低p53活性。通过这种方式,EIF3D介导的翻译有助于调节初始多能性网络的稳态,确保维持具有高增殖潜力的未分化状态。这项研究为维持多能性的翻译网络提供了进一步的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2376/11980838/941d9e3263f7/sciadv.adq5484-f1.jpg

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