Yokomine Marin, Morimoto Jumpei, Fukuda Yasuhiro, Ueda Takumi, Takeuchi Koh, Umezawa Koji, Ago Hideo, Matsuura Hiroaki, Ueno Go, Senoo Akinobu, Nagatoishi Satoru, Tsumoto Kouhei, Sando Shinsuke
Department of Chemistry and Biotechnology, Graduate School of Engineering, The University of Tokyo 7-3-1 Hongo Bunkyo-ku Tokyo 113-8656 Japan
Graduate School of Pharmaceutical Sciences, The University of Tokyo 7-3-1 Hongo Bunkyo-ku Tokyo 113-0033 Japan.
Chem Sci. 2024 Apr 19;15(19):7051-7060. doi: 10.1039/d4sc01540a. eCollection 2024 May 15.
Peptoids are a promising drug modality targeting disease-related proteins, but how a peptoid engages in protein binding is poorly understood. This is primarily due to a lack of high-resolution peptoid-protein complex structures and systematic physicochemical studies. Here, we present the first crystal structure of a peptoid bound to a protein, providing high-resolution structural information about how a peptoid binds to a protein. We previously reported a rigid peptoid, oligo(-substituted alanine) (oligo-NSA), and developed an oligo-NSA-type peptoid that binds to MDM2. X-ray crystallographic analysis of the peptoid bound to MDM2 showed that the peptoid recognizes the MDM2 surface predominantly through the interaction of the -substituents, while the main chain acts as a scaffold. Additionally, conformational, thermodynamic, and kinetic analysis of the peptoid and its derivatives with a less rigid main chain revealed that rigidification of the peptoid main chain contributes to improving the protein binding affinity. This improvement is thermodynamically attributed to an increased magnitude of the binding enthalpy change, and kinetically to an increased association rate and decreased dissociation rate. This study provides invaluable insights into the design of protein-targeting peptoids.
类肽是一种针对疾病相关蛋白的有前景的药物形式,但类肽如何与蛋白结合却知之甚少。这主要是由于缺乏高分辨率的类肽-蛋白复合物结构以及系统的物理化学研究。在此,我们展示了首个与蛋白结合的类肽的晶体结构,提供了关于类肽如何与蛋白结合的高分辨率结构信息。我们之前报道了一种刚性类肽,寡聚(-取代丙氨酸)(oligo-NSA),并开发了一种与MDM2结合的oligo-NSA型类肽。对与MDM2结合的类肽进行X射线晶体学分析表明,类肽主要通过-取代基的相互作用识别MDM2表面,而主链起到支架作用。此外,对具有较不刚性主链的类肽及其衍生物进行的构象、热力学和动力学分析表明,类肽主链的刚性化有助于提高蛋白结合亲和力。这种提高在热力学上归因于结合焓变幅度的增加,在动力学上归因于缔合速率的增加和解离速率的降低。这项研究为靶向蛋白的类肽设计提供了宝贵的见解。