Ternary Complex Modeling, Induced Fit Docking and Molecular Dynamics Simulations as a Successful Approach for the Design of VHL-Mediated PROTACs Targeting the Kinase FLT3

IF 4.3 3区 医学 Q2 CHEMISTRY, MEDICINAL
Husam Nassar, Anne-Christin Sarnow, Ismail Celik, Mohamed Abdelsalam, Dina Robaa, Wolfgang Sippl
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Abstract

Proteolysis targeting chimeras (PROTACs) have proven to be a novel approach for the degradation of disease-causing proteins in drug discovery. One of the E3 ligases for which efficient PROTACs have been described is the Von Hippel-Lindau factor (VHL). However, the development of PROTACs has so far often relied on a minimum of computational tools, so that it is mostly based on a trial-and-error process. Therefore, there is a great need for resource- and time-efficient structure-based or computational approaches to streamline PROTAC design. In this study, we present a combined computational approach that integrates static ternary complex formation, induced-fit docking, and molecular dynamics (MD) simulations. Our methodology was tested using four experimentally derived ternary complex structures of VHL PROTACs, reported for BRD4, SMARCA2, FAK, and WEE1. In addition, we applied the validated approach to model a recently in-house developed FLT3-targeted PROTAC (MA49). The results show that static ternary models generated with a protein–protein docking method implemented in the software MOE have a high predictive power for reproducing the experimental 3D structures. The induced-fit docking of different active PROTACs to their respective models showed the reliability of this model for the development of new VHL-mediated degraders. In particular, the induced-fit docking was sensitive to structural changes in the PROTACs, as evidenced by the failed binding modes of the PROTAC negative controls. Furthermore, MD simulations confirmed the stability of the generated complexes and emphasized the importance of dynamic studies for understanding the relationship between PROTAC structure and function.

Abstract Image

三元复合物建模、诱导拟合对接和分子动力学模拟作为vhl介导的靶向FLT3激酶的PROTACs设计的成功方法
靶向嵌合体蛋白水解(Proteolysis targeting chimeras, PROTACs)已被证明是药物开发中降解致病蛋白的一种新方法。其中一个有效的PROTACs已经被描述的E3连接酶是Von Hippel-Lindau因子(VHL)。然而,到目前为止,protac的开发通常依赖于最少的计算工具,因此它主要基于一个试错过程。因此,非常需要资源和时间效率高的基于结构或计算的方法来简化PROTAC设计。在这项研究中,我们提出了一种结合了静态三元络合物形成、诱导配合对接和分子动力学(MD)模拟的综合计算方法。我们的方法使用了四种实验衍生的VHL PROTACs三元复合结构进行了测试,分别为BRD4、SMARCA2、FAK和WEE1。此外,我们将验证方法应用于最近开发的flt3靶向PROTAC (MA49)的建模。结果表明,在MOE软件中实现的蛋白质-蛋白质对接方法生成的静态三元模型对于再现实验三维结构具有较高的预测能力。不同有源protac与各自模型的诱导拟合对接表明,该模型对于开发新的vhl介导降解物是可靠的。特别是,诱导配合对接对PROTAC的结构变化很敏感,正如PROTAC阴性对照的失败结合模式所证明的那样。此外,MD模拟证实了生成的配合物的稳定性,并强调了动态研究对于理解PROTAC结构和功能之间关系的重要性。
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来源期刊
Archiv der Pharmazie
Archiv der Pharmazie 医学-化学综合
CiteScore
7.90
自引率
5.90%
发文量
176
审稿时长
3.0 months
期刊介绍: Archiv der Pharmazie - Chemistry in Life Sciences is an international journal devoted to research and development in all fields of pharmaceutical and medicinal chemistry. Emphasis is put on papers combining synthetic organic chemistry, structural biology, molecular modelling, bioorganic chemistry, natural products chemistry, biochemistry or analytical methods with pharmaceutical or medicinal aspects such as biological activity. The focus of this journal is put on original research papers, but other scientifically valuable contributions (e.g. reviews, minireviews, highlights, symposia contributions, discussions, and essays) are also welcome.
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