肽
立体中心
氨基酸
手性(物理)
分子动力学
化学
组合化学
立体化学
生物化学
计算化学
对映选择合成
物理
催化作用
夸克
量子力学
手征对称破缺
Nambu–Jona Lasinio模型
作者
Qian Wang,Fengzhang Wang,Rui Li,Pushu Wang,Ruixin Yuan,Dangliang Liu,Yuan Liu,Yi Luan,Chu Wang,Suwei Dong
标识
DOI:10.1002/chem.202203624
摘要
Peptide stapling represents a versatile strategy to generate peptide derivatives with stable helical structures. While a wide range of skeletons have been investigated for cyclizing the side chains of peptides, the stereochemical outcomes from the linkers remain to be better understood. In this study, we incorporated α-amino acids (α-AAs) as bridges to construct side chain-stapled analogs of an interleukin-17A-binding peptide (HAP) and evaluated the impacts of the staples on the peptide's properties. While all AA-derived peptidyl staples drastically increase the enzymatic stability of HAP, our results indicate that compared to the D-amino acid bridges, the L-AA-based staples may generate more significant impacts in increasing the helicity and enhancing the interleukin-17A(IL-17A)-binding affinity of the modified peptide. Using Rosetta modelling and molecular dynamics (MD) simulations, we demonstrate that the chirality (L/D) possessed within the AAs substantially influences the conformation of stapled HAP peptides, providing either stabilizing or destabilizing effects. Based on the computational model, a modification of the stapled HAP leads to the discovery of a peptide with further enhanced helicity, enzymatic stability and IL-17A-inhibiting ability. This systematic study reveals that chiral AAs can serve as modulatory linkers for optimizing the structures and properties of stapled peptides.
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