合理设计
变构调节
对接(动物)
蛋白质设计
蛋白质-蛋白质相互作用
药物设计
计算生物学
小分子
表位
分子识别
灵活性(工程)
结合位点
蛋白质配体
化学
血浆蛋白结合
蛋白质结构
纳米技术
生物
分子
生物化学
材料科学
酶
遗传学
统计
抗原
医学
护理部
有机化学
数学
作者
Domingo González-Ruiz,Holger Gohlke
标识
DOI:10.2174/092986706778201530
摘要
A promising way to interfere with biological processes is through the control of protein-protein interactions by means of small molecules that modulate the formation of protein-protein complexes. Although the feasibility of this approach has been demonstrated in principle by recent results, many of the small-molecule modulators known to date have not been found by rational design approaches. In large part this is due to the challenges that one faces in dealing with protein binding epitopes compared to, e.g., enzyme binding pockets. Recent advances in the understanding of the energetics and dynamics of protein binding interfaces and methodological developments in the field of structure-based drug design methods may open up a way to apply rational design approaches also for finding protein-protein interaction modulators. These advances and developments include (I) computational approaches to dissect binding interfaces in terms of energetic contributions of single residues (to identify "hot spot" residues), (II) prediction of potential binding sites from unbound protein structures, (III) recognition of allosteric binding sites as alternatives to directly targeting interfaces, (IV) docking approaches that consider protein flexibility and improved descriptions of the solvent influence on electrostatic interactions, and (V) data-driven docking approaches. Here, we will summarize these developments with a particular emphasis on their applicability to screen for or design small-molecule modulators of protein-protein interactions.
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