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RationalDesign of Topographical Helix Mimics as PotentInhibitors of Protein–Protein Interactions

机译:合理的高效的地形螺旋模拟物设计蛋白质-蛋白质相互作用的抑制剂

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摘要

Protein–protein interactions encompass large surface areas, but often a handful of key residues dominate the binding energy landscape. Rationally designed small molecule scaffolds that reproduce the relative positioning and disposition of important binding residues, termed “hotspot residues”, have been shown to successfully inhibit specific protein complexes. Although this strategy has led to development of novel synthetic inhibitors of protein complexes, often direct mimicry of natural amino acid residues does not lead to potent inhibitors. Experimental screening of focused compound libraries is used to further optimize inhibitors but the number of possible designs that can be efficiently synthesized and experimentally tested in academic settings is limited. We have applied the principles of computational protein design to optimization of nonpeptidic helix mimics as ligands for protein complexes. We describe the development of computational tools to design helix mimetics from canonical and noncanonical residue libraries and their application to two therapeuticallyimportant protein–protein interactions: p53-MDM2 and p300-HIF1α.The overall study provides a streamlined approach for discoveringpotent peptidomimetic inhibitors of protein–protein interactions.
机译:蛋白质间的相互作用涵盖了较大的表面积,但通常少数关键残基主导着结合能格局。合理设计的小分子支架可重现重要结合残基(称为“热点残基”)的相对位置和位置,已成功抑制特定的蛋白质复合物。尽管这种策略已导致开发出新型的蛋白质复合物合成抑制剂,但通常直接模仿天然氨基酸残基并不会产生有效的抑制剂。重点化合物库的实验筛选用于进一步优化抑制剂,但可以在学术环境中有效合成和实验测试的可能设计的数量有限。我们已将计算蛋白质设计的原理应用于优化非肽螺旋模拟物(作为蛋白质复合物的配体)。我们描述了计算工具的发展,以从规范和非规范残基库设计螺旋模拟物,并将其应用于两种治疗方法重要的蛋白质间相互作用:p53-MDM2和p300-HIF1α。整体研究提供了一种简化的发现方法蛋白质相互作用的有效拟肽抑制剂。

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