Sorbonne Université, MNHN, CNRS, IRD, Institut de Minéralogie, de Physique des Matériaux et de Cosmochimie, IMPMC , 75005 Paris , France.
LAAS-CNRS , Université de Toulouse, CNRS , 31400 Toulouse , France.
J Chem Inf Model. 2018 Nov 26;58(11):2355-2368. doi: 10.1021/acs.jcim.8b00375. Epub 2018 Oct 24.
Small cyclic peptides represent a promising class of therapeutic molecules with unique chemical properties. However, the poor knowledge of their structural characteristics makes their computational design and structure prediction a real challenge. In order to better describe their conformational space, we developed a method, named EGSCyP, for the exhaustive exploration of the energy landscape of small head-to-tail cyclic peptides. The method can be summarized by (i) a global exploration of the conformational space based on a mechanistic representation of the peptide and the use of robotics-based algorithms to deal with the closure constraint and (ii) an all-atom refinement of the obtained conformations. EGSCyP can handle D-form residues and N-methylations. Two strategies for the side-chains placement were implemented and compared. To validate our approach, we applied it to a set of three variants of cyclic RGDFV pentapeptides, including the drug candidate Cilengitide. A comparative analysis was made with respect to replica exchange molecular dynamics simulations in implicit solvent. Its results show that the EGSCyP method provides a very complete characterization of the conformational space of small cyclic pentapeptides.
小分子环状肽是一类很有前途的治疗分子,具有独特的化学性质。然而,由于对其结构特征了解甚少,使得它们的计算设计和结构预测成为一个真正的挑战。为了更好地描述它们的构象空间,我们开发了一种名为 EGSCyP 的方法,用于全面探索小分子头尾环状肽的能量景观。该方法可以概括为:(i)基于肽的机械表示和使用基于机器人的算法来处理封闭约束的构象空间的全局探索;(ii)对获得的构象进行全原子细化。EGSCyP 可以处理 D 型残基和 N-甲基化。实现了两种侧链放置策略并进行了比较。为了验证我们的方法,我们将其应用于一组三个变体的环状 RGDFV 五肽,包括候选药物 Cilengitide。与隐溶剂中的 replica exchange 分子动力学模拟进行了比较分析。结果表明,EGSCyP 方法提供了小分子环状五肽构象空间的非常完整的描述。