SOX17的OCT4二聚化界面内的酸性残基是克服其多能诱导活性的必要和充分条件。

IF 5.1 2区 医学 Q1 CELL & TISSUE ENGINEERING
Stem Cell Reports Pub Date : 2025-03-11 Epub Date: 2025-02-06 DOI:10.1016/j.stemcr.2025.102398
Sik Yin Ho, Haoqing Hu, Derek Hoi Hang Ho, Allan Patrick Stephane Renom, Shi Wing Yeung, Freya Boerner, Mingxi Weng, Andrew Paul Hutchins, Ralf Jauch
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引用次数: 0

摘要

SOX17引导向内胚层分化,并作为人类种系指示因子。我们之前发现,SOX2中高迁移基团(HMG)盒第57位的谷氨酸被碱性赖氨酸残基取代,改变了与OCT4的相互作用,使SOX17成为一个多能因子。在这里,我们系统地研究了这个关键位置的突变如何影响小鼠和人类SOX17的细胞重编程活性。我们发现除了酸性残基和脯氨酸外,大多数突变将SOX17转化为多能因子,而不考虑其生物物理特性。保守的天冬氨酸突变允许SOX17E57D蛋白维持自我更新的内胚层状态。我们发现只有野生型蛋白中的谷氨酸阻断了多能增强子复合DNA元件上SOX17/OCT4二聚体的形成。深入了解超保守残基的修饰如何影响发育转录因子的功能,为推进细胞命运工程提供了途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An acidic residue within the OCT4 dimerization interface of SOX17 is necessary and sufficient to overcome its pluripotency-inducing activity.

SOX17 directs the differentiation toward endoderm and acts as a human germline specifier. We previously found that the replacement of glutamate at position 57 of the high-mobility group (HMG) box with the basic lysine residue in SOX2 alters interactions with OCT4 and turns SOX17 into a pluripotency factor. Here, we systematically interrogated how mutations at this critical position affect the cellular reprogramming activity of SOX17 in mouse and human. We found that most mutations turn SOX17 into a pluripotency factor regardless of their biophysical properties except for acidic residues and proline. The conservative mutation to an aspartate allows the SOX17E57D protein to maintain a self-renewing endodermal state. We showed that only the glutamate in the wild-type protein blocks the formation of an SOX17/OCT4 dimer at composite DNA elements in pluripotency enhancers. Insights into how modifications of an ultra-conserved residue affect functions of developmental transcription factors provide avenues to advance cell fate engineering.

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来源期刊
Stem Cell Reports
Stem Cell Reports CELL & TISSUE ENGINEERING-CELL BIOLOGY
CiteScore
10.50
自引率
1.70%
发文量
200
审稿时长
28 weeks
期刊介绍: Stem Cell Reports publishes high-quality, peer-reviewed research presenting conceptual or practical advances across the breadth of stem cell research and its applications to medicine. Our particular focus on shorter, single-point articles, timely publication, strong editorial decision-making and scientific input by leaders in the field and a "scoop protection" mechanism are reasons to submit your best papers.
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