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双共价适配体的化学进化用于持续蛋白降解与 NK 细胞介导肿瘤治疗中细胞毒性改善

英文原题:Chemical Evolution of Double Covalent Aptamers for Sustained Protein Degradation and Improved Cytotoxicity in NK-Cell-Mediated Tumor Therapy.

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Chemical Evolution of Double Covalent Aptamers for Sustained Protein Degradation and Improved Cytotoxicity in NK-Cell-Mediated Tumor Therapy.

PubMed 2025/10/09(内容时间) J Am Chem Soc Q1 · IF 16.6(JCR 2025)

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中文摘要

适配体是单链寡核苷酸,可形成复杂的三维结构,通常通过π堆积和静电相互作用等非共价作用,高亲和力、高特异性地结合多种靶标。相比传统非共价相互作用,与特定蛋白结合的共价小分子药物可提高生物学效率、效力和作用持续时间。

然而,由于难以设计能有效形成共价作用的适配体,适配体共价结合靶标的生物学效应仍鲜有研究。本研究利用AlphaFold3结构预测、分子对接以及突变和活性验证,化学工程化改造靶向蛋白酪氨酸激酶7(PTK7)的DNA适配体sgc8c,以应对这一挑战。通过引入两个共价反应基团,包括在三个核苷碱基中引入带紫外线诱导二氮烯基团的修饰脱氧尿苷,以及在三个硫代磷酸酯(PS)核苷间连接中安装芳基磺酰氟(SF)反应基团,我们成功构建双共价型sgc8c突变体DC-sgc8c。该分子能够特异性结合PTK7,并在缓冲液中和癌细胞表面实现邻近诱导交联。DC-sgc8c显著提高了生物稳定性,可通过溶酶体靶向嵌合体(LYTAC)促进PTK7高效、持久降解;锚定于细胞膜时还能增强NK细胞细胞毒性。

进一步通过将sgc8c的核苷碱基连接二氮烯反应基团调整为骨架PS上的SF基团,并构建能够与靶标c-Met交联、在骨架上衍生SF的SL1变体,验证了基于预测适配体-蛋白结构指导共价适配体设计策略的普适性和灵活性。本方法提供了概念验证平台,可通过模型指导反应基团定位并辅以系统实验验证,将传统非共价适配体转化为共价形式,实现非共价适配体难以达到的不可逆靶标干预及治疗潜力。

展开英文摘要原文

Aptamers are single-stranded oligonucleotides that adopt intricate three-dimensional structures that accommodate high-affinity and high-specificity binding to a broad range of targets, typically through noncovalent bonding, such as - stacking and electrostatic interactions.

However, covalent small-molecule drugs that bind to specific proteins can increase biological efficiency, potency, and duration compared with conventional noncovalent interactions. Nonetheless, the biological effects of covalent target binding by aptamers remain largely unexplored owing to the challenge of designing aptamers capable of efficient covalent interactions.

Herein, we addressed this challenge by leveraging the capability of structure prediction enabled by AlphaFold3 and molecular docking alongside mutation-and-activity validations to chemically engineer sgc8c, a DNA aptamer targeting protein tyrosine kinase 7 (PTK7). Through introducing dual covalent warheads, including the incorporation of three nucleobase modified deoxyuridines bearing UV-inducible diazirine groups and the installation of arylsulfonyl fluoride (SF) warheads on three phosphorothioate (PS) internucleotide linkages, we successfully configured a dual-covalent sgc8c mutant, denoted DC-sgc8c, capable of specific PTK7 binding and proximity-enabled cross-linking in buffer and on cancer cell surfaces.

DC-sgc8c exhibited significantly increased biostability, promoted efficient and sustained PTK7 degradation via a lysosome-targeting chimera (LYTAC), and potentiated NK cell cytotoxicity upon membrane anchoring. The generalizability and versatility of predicted aptamer-protein structure directed covalent aptamer design strategy was further proven by tuning the nucleobase attached diazirine warhead of sgc8c to SF installed to backbone PS and by attaining covalent SL1 variants bearing backbone derivatized SF that can cross-link with its target c-Met.

Our approach provides a proof-of-principle platform for converting conventional noncovalent aptamers into covalent counterparts through model-guided placement of reactive warheads, supplemented by systematic experimental validation, thereby achieving irreversible target intervention with therapeutic potential beyond the reach of noncovalent aptamers.

论文信息

作者
Zhang Z、Qian H、Xu R、Duan Q、Wang Y、Fu T、Wu X、Sha C
单位
School of Chemistry and Materials Science, University of Science and Technology of China, Hefei, 230026, China.China
文献类型
非美国政府资助研究
期刊
Journal of the American Chemical Society2025 Dec 17
原文标识
PubMed 41065179 · DOI 10.1021/jacs.5c11823