Department of Chemistry, Tufts University, Medford, Massachusetts 02155, United States.
Chem Rev. 2021 Feb 24;121(4):2292-2324. doi: 10.1021/acs.chemrev.0c01087. Epub 2021 Jan 11.
Protein-protein interactions are vital to biological processes, but the shape and size of their interfaces make them hard to target using small molecules. Cyclic peptides have shown promise as protein-protein interaction modulators, as they can bind protein surfaces with high affinity and specificity. Dozens of cyclic peptides are already FDA approved, and many more are in various stages of development as immunosuppressants, antibiotics, antivirals, or anticancer drugs. However, most cyclic peptide drugs so far have been natural products or derivatives thereof, with de novo design having proven challenging. A key obstacle is structural characterization: cyclic peptides frequently adopt multiple conformations in solution, which are difficult to resolve using techniques like NMR spectroscopy. The lack of solution structural information prevents a thorough understanding of cyclic peptides' sequence-structure-function relationship. Here we review recent development and application of molecular dynamics simulations with enhanced sampling to studying the solution structures of cyclic peptides. We describe novel computational methods capable of sampling cyclic peptides' conformational space and provide examples of computational studies that relate peptides' sequence and structure to biological activity. We demonstrate that molecular dynamics simulations have grown from an explanatory technique to a full-fledged tool for systematic studies at the forefront of cyclic peptide therapeutic design.
蛋白质-蛋白质相互作用对生物过程至关重要,但它们的界面形状和大小使得小分子难以成为它们的靶点。环肽作为蛋白质-蛋白质相互作用调节剂显示出了前景,因为它们可以高亲和力和特异性地结合蛋白质表面。已有数十种环肽获得了 FDA 的批准,还有更多的环肽处于免疫抑制剂、抗生素、抗病毒药物或抗癌药物的不同开发阶段。然而,迄今为止,大多数环肽药物都是天然产物或其衍生物,从头设计一直具有挑战性。一个关键的障碍是结构表征:环肽在溶液中经常采用多种构象,这很难用 NMR 光谱等技术来解决。缺乏溶液结构信息阻碍了对环肽序列-结构-功能关系的全面理解。在这里,我们回顾了最近发展和应用增强采样的分子动力学模拟来研究环肽溶液结构的情况。我们描述了能够对环肽构象空间进行采样的新型计算方法,并提供了将肽序列和结构与生物活性联系起来的计算研究实例。我们证明,分子动力学模拟已经从一种解释性技术发展成为环肽治疗设计前沿的系统研究的成熟工具。