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TRIM21介导的BRD4降解:异双功能降解剂的开发以及募集和选择性机制研究

TRIM21-Driven Degradation of BRD4: Development of Heterobifunctional Degraders and Investigation of Recruitment and Selectivity Mechanisms.

作者信息

Zhang Liyun, Wang Qingyang, Li Xiaomei, Cheng Xuemin, Cai Longying, Guo Anping, Zhang Lanjun, Hu Hong, Wu Mei, Li Xianyang, Li Huilin, Meng Xiaoyun, Qiu Yaping, Tu Guiping, Zhang Lifang, Dong Xiaofei, Liang Yu, Wang Yushuang, Li Jin, Dou Dengfeng, Pu Xuemei

机构信息

HitGen Inc., Chengdu 610200, China.

College of Chemistry, Sichuan University, Chengdu 610064, China.

出版信息

J Chem Inf Model. 2025 Jul 28;65(14):7584-7604. doi: 10.1021/acs.jcim.5c00473. Epub 2025 Jul 7.

Abstract

TRIM21 is a highly efficient and versatile E3 ubiquitin ligase that plays a crucial role in targeted protein degradation through its specific binding capabilities. To investigate its role in chemically mediated degradation, we utilized two high-affinity binders identified from a DNA-encoded compound library (DEL) to design and synthesize several TrimTACs (TRIM21-based degraders) targeting BRD4. Degradation assays revealed that TrimTACs incorporating distinct TRIM21-binding moieties produced markedly different levels of BRD4 degradation. Further, to elucidate mechanisms underlying ternary complex formation and selective degradation, we employed precise ternary complex modeling combined with Gaussian accelerated molecular dynamics (GaMD) simulations. These computational analyses demonstrated that the diversity of TRIM21-binding moieties significantly affects the stability and conformation of the complex. Structurally stable complexes efficiently induce BRD4 degradation, and the binding orientation of BRD4 directly affects ubiquitin transfer and degradation efficiency. Moreover, key residues critical for complex formation were identified, shedding light on the cooperative interactions driving TRIM21-mediated degradation. Building on these findings, we conducted degradation experiments to validate novel TrimTAC designs derived from our ternary complex-based free energy perturbation (FEP) calculations. The results confirmed the reliability and accuracy of the ternary complex model, providing key insights for the rational design and optimization of TrimTACs, thereby advancing the development of targeted protein degraders.

摘要

TRIM21是一种高效且多功能的E3泛素连接酶,通过其特异性结合能力在靶向蛋白质降解中发挥关键作用。为了研究其在化学介导降解中的作用,我们利用从DNA编码化合物库(DEL)中鉴定出的两种高亲和力结合剂来设计和合成几种靶向BRD4的TrimTACs(基于TRIM21的降解剂)。降解实验表明,含有不同TRIM21结合部分的TrimTACs产生的BRD4降解水平明显不同。此外,为了阐明三元复合物形成和选择性降解的潜在机制,我们采用了精确的三元复合物建模结合高斯加速分子动力学(GaMD)模拟。这些计算分析表明,TRIM21结合部分的多样性显著影响复合物的稳定性和构象。结构稳定的复合物有效地诱导BRD4降解,并且BRD4的结合方向直接影响泛素转移和降解效率。此外,还确定了对复合物形成至关重要的关键残基,揭示了驱动TRIM21介导降解的协同相互作用。基于这些发现,我们进行了降解实验,以验证从基于三元复合物的自由能扰动(FEP)计算得出的新型TrimTAC设计。结果证实了三元复合物模型的可靠性和准确性,为TrimTACs的合理设计和优化提供了关键见解,从而推动了靶向蛋白质降解剂的开发。

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