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基于适体的增强型磷酸酶招募嵌合体抑制受体酪氨酸激酶信号转导。

Aptamer-Based Enforced Phosphatase-Recruiting Chimeras Inhibit Receptor Tyrosine Kinase Signal Transduction.

机构信息

Molecular Science and Biomedicine Laboratory (MBL), State Key Laboratory of Chemo/Biosensing and Chemometrics, College of Chemistry and Chemical Engineering, College of Biology, Aptamer Engineering Center of Hunan Province, Hunan University, Changsha, Hunan 410082, People's Republic of China.

The Key Laboratory of Zhejiang Province for Aptamers and Theranostics, Zhejiang Cancer Hospital, Hangzhou Institute of Medicine (HIM), Chinese Academy of Sciences, Hangzhou, Zhejiang 310022, China.

出版信息

J Am Chem Soc. 2024 Aug 14;146(32):22445-22454. doi: 10.1021/jacs.4c05665. Epub 2024 Aug 1.

Abstract

Aberrant phosphorylation of receptor tyrosine kinases (RTKs) is usually involved in tumor initiation, progression, and metastasis. However, developing specific and efficient molecular tools to regulate RTK phosphorylation remains a considerable challenge. In this study, we reported novel aptamer-based chimeras to inhibit the phosphorylation of RTKs, such as c-Met and EGFR, by enforced recruitment of a protein tyrosine phosphatase receptor type F (PTPRF). Our studies revealed that aptamer-based chimeras displayed a generic and potent inhibitory effect on RTK phosphorylation induced by growth factor or auto-dimerization in different cell lines and modulated cell biological behaviors by recruiting PTPRF. Furthermore, based on angstrom accuracy of the DNA duplex, the maximum catalytic radius of PTPRF was determined as ∼25.84 nm, providing a basis for the development of phosphatase-recruiting strategies. Taken together, our study provides a generic methodology not only for selectively mediating RTK phosphorylation and cellular biological processes but also for developing novel therapeutic drugs.

摘要

受体酪氨酸激酶 (RTKs) 的异常磷酸化通常与肿瘤的发生、进展和转移有关。然而,开发特异性和高效的分子工具来调节 RTK 磷酸化仍然是一个相当大的挑战。在这项研究中,我们报告了基于适体的嵌合体,通过强制募集蛋白酪氨酸磷酸酶受体 F 型 (PTPRF) 来抑制 RTKs(如 c-Met 和 EGFR)的磷酸化。我们的研究表明,基于适体的嵌合体在不同细胞系中显示出对生长因子或自身二聚化诱导的 RTK 磷酸化的通用和有效抑制作用,并通过募集 PTPRF 调节细胞生物学行为。此外,基于 DNA 双链的埃分辨率,确定了 PTPRF 的最大催化半径约为 25.84nm,为开发磷酸酶募集策略提供了依据。总之,我们的研究不仅为选择性介导 RTK 磷酸化和细胞生物学过程提供了一种通用方法,也为开发新型治疗药物提供了依据。

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