剖析钉肽的几何和疏水约束。

IF 3.2 4区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Proteins-Structure Function and Bioinformatics Pub Date : 2025-01-01 Epub Date: 2024-01-09 DOI:10.1002/prot.26662
Jianguo Li, Yaw Sing Tan, Chandra S Verma
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引用次数: 0

摘要

钉合肽是一类很有前途的分子,具有作为蛋白质-蛋白质相互作用高度特异性探针和治疗药物的潜力。碳氢化合物钉合通过两个因素的相互作用影响肽的特性:增强整体疏水性和限制构象灵活性。通过构建一系列虚拟肽,我们研究了每种因素在调节碳氢化合物钉合肽 PM2 结构特性中的作用,该肽已被证明能进入细胞,与其目标小鼠双敏 2(MDM2)结合并激活 p53。哈密顿复制交换分子动力学(HREMD)模拟表明,碳氢化合物钉合通过几何约束和肽疏水性的增强,有利于 PM2 的螺旋群体。为了进一步了解钉合肽在结合路径上的构象情况,我们通过限制肽与 MDM2 的不同距离进行了 HREMD 模拟。当肽接近 MDM2 时,结合袋发生脱水,与线性肽相比,在钉状肽存在的情况下,脱水程度似乎更大。在结合口袋中,由于肽残基以及钉书针和结合口袋微环境之间的有利相互作用,钉书针肽的螺旋度增加,从而增强了亲和力。将碳氢化合物钉合的多方面机制剖析为单个因素,不仅加深了对肽钉合的基本认识,而且为设计新的钉合肽提供了指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dissecting the geometric and hydrophobic constraints of stapled peptides.

Stapled peptides are a promising class of molecules with potential as highly specific probes of protein-protein interactions and as therapeutics. Hydrocarbon stapling affects the peptide properties through the interplay of two factors: enhancing the overall hydrophobicity and constraining the conformational flexibility. By constructing a series of virtual peptides, we study the role of each factor in modulating the structural properties of a hydrocarbon-stapled peptide PM2, which has been shown to enter cells, engage its target Mouse Double Minute 2 (MDM2), and activate p53. Hamiltonian replica exchange molecular dynamics (HREMD) simulations suggest that hydrocarbon stapling favors helical populations of PM2 through a combination of the geometric constraints and the enhanced hydrophobicity of the peptide. To further understand the conformational landscape of the stapled peptides along the binding pathway, we performed HREMD simulations by restraining the peptide at different distances from MDM2. When the peptide approaches MDM2, the binding pocket undergoes dehydration which appears to be greater in the presence of the stapled peptide compared with the linear peptide. In the binding pocket, the helicity of the stapled peptide is increased due to the favorable interactions between the peptide residues as well as the staple and the microenvironment of the binding pocket, contributing to enhanced affinity. The dissection of the multifaceted mechanism of hydrocarbon stapling into individual factors not only deepens fundamental understanding of peptide stapling, but also provides guidelines for the design of new stapled peptides.

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来源期刊
Proteins-Structure Function and Bioinformatics
Proteins-Structure Function and Bioinformatics 生物-生化与分子生物学
CiteScore
5.90
自引率
3.40%
发文量
172
审稿时长
3 months
期刊介绍: PROTEINS : Structure, Function, and Bioinformatics publishes original reports of significant experimental and analytic research in all areas of protein research: structure, function, computation, genetics, and design. The journal encourages reports that present new experimental or computational approaches for interpreting and understanding data from biophysical chemistry, structural studies of proteins and macromolecular assemblies, alterations of protein structure and function engineered through techniques of molecular biology and genetics, functional analyses under physiologic conditions, as well as the interactions of proteins with receptors, nucleic acids, or other specific ligands or substrates. Research in protein and peptide biochemistry directed toward synthesizing or characterizing molecules that simulate aspects of the activity of proteins, or that act as inhibitors of protein function, is also within the scope of PROTEINS. In addition to full-length reports, short communications (usually not more than 4 printed pages) and prediction reports are welcome. Reviews are typically by invitation; authors are encouraged to submit proposed topics for consideration.
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