Discovery of a first-in-class SLIT2 binder disrupting the SLIT2/ROBO1 axis via DNA-encoded library (DEL) screening.

IF 3.6 4区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Shaoren Yuan, Somaya A Abdel-Rahman, Nelson García Vázquez, Hossam Nada, Laura Calvo-Barreiro, Katarzyna Kuncewicz, Moustafa T Gabr
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Abstract

The SLIT2/ROBO1 signaling axis plays a critical role in neural development, immune regulation, and tumor progression, including glioblastoma. However, small molecule inhibitors targeting this protein-protein interaction remain unexplored. Herein, we report the discovery and validation of DEL-S1, a first-in-class small molecule that binds to SLIT2 and disrupts its interaction with ROBO1. Using a DNA-encoded library (DEL) screen of 4.2 billion compounds, DEL-S1 was identified and confirmed to bind SLIT2 via temperature-related intensity change (TRIC) assay. Functional inhibition of the SLIT2/ROBO1 complex by DEL-S1 was demonstrated using a time-resolved fluorescence resonance energy transfer (TR-FRET) assay, yielding an IC50 of 68.8 ± 12.5 μM. Molecular docking and molecular dynamics (MD) simulations revealed key interaction hotspots at the SLIT2 binding interface and confirmed that DEL-S1 impairs SLIT2/ROBO1 complex formation by inducing conformational rearrangements. DEL-S1 exhibited favorable ADME properties, including satisfactory plasma and microsomal stability, low cytotoxicity, and minimal hERG liability. To facilitate structure-activity relationship (SAR) exploration, we designed and implemented a modular, one-pot synthetic route leveraging cyanuric chloride reactivity, enabling rapid derivatization of the triazine scaffold of DEL-S1. This strategy yielded structurally diverse analogs, including water-soluble carboxylate derivatives with preserved SLIT2/ROBO1 inhibitory activity. Together, this work establishes a novel chemical scaffold targeting SLIT2 and introduces a flexible synthetic platform to support further optimization toward therapeutic development.

通过dna编码文库(DEL)筛选,发现了一类首个破坏SLIT2/ROBO1轴的SLIT2结合物。
SLIT2/ROBO1信号轴在神经发育、免疫调节和肿瘤进展(包括胶质母细胞瘤)中起关键作用。然而,靶向这种蛋白-蛋白相互作用的小分子抑制剂仍未被发现。在此,我们报告了DEL-S1的发现和验证,这是一种与SLIT2结合并破坏其与ROBO1相互作用的同类小分子。利用42亿个化合物的dna编码文库(DEL)筛选,通过温度相关强度变化(TRIC)试验鉴定出DEL- s1并确认其与SLIT2结合。通过时间分辨荧光共振能量转移(TR-FRET)实验证实了DEL-S1对SLIT2/ROBO1复合物的功能抑制,IC50为68.8±12.5 μM。分子对接和分子动力学(MD)模拟揭示了SLIT2结合界面的关键相互作用热点,并证实DEL-S1通过诱导构象重排损害SLIT2/ROBO1复合物的形成。DEL-S1表现出良好的ADME特性,包括令人满意的血浆和微粒体稳定性、低细胞毒性和最小的hERG倾向。为了促进构效关系(SAR)的探索,我们设计并实现了一种模块化的一锅合成路线,利用三聚氰胺的反应性,实现了DEL-S1的三嗪支架的快速衍生化。这种策略产生了结构多样的类似物,包括保留SLIT2/ROBO1抑制活性的水溶性羧酸衍生物。总之,这项工作建立了一种新的靶向SLIT2的化学支架,并引入了一个灵活的合成平台,以支持进一步优化治疗开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.80
自引率
2.40%
发文量
129
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