Conformation Dependence of Diphenylalanine Self-Assembly Structures and Dynamics: Insights from Hybrid-Resolution Simulations

被引:51
|
作者
Xiong, Qinsi [1 ]
Jiang, Yixiang [1 ]
Cai, Xiang [1 ]
Yang, Fadeng [1 ]
Li, Zigang [1 ]
Han, Wei [1 ]
机构
[1] Peking Univ, Shenzhen Grad Sch, Sch Chem Biol & Biotechnol, State Key Lab Chem Oncogen, Shenzhen 518055, Peoples R China
基金
美国国家科学基金会;
关键词
diphenylalanine self-assembly; hybrid-resolution force field; molecular dynamic simulation; peptide nanotube; peptide secondary structure; conformational dynamics; flip-flop motion; PROTEIN COIL LIBRARY; PACE FORCE-FIELD; PEPTIDE NANOTUBES; BETA-SHEET; DIPEPTIDE AGGREGATION; FOLDING SIMULATIONS; BUILDING-BLOCKS; AMINO-ACIDS; PHENYLALANINE; SOLVENT;
D O I
10.1021/acsnano.8b09741
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The molecular design of peptide-assembled nanostructures relies on extensive knowledge pertaining to the relationship between conformational features of peptide constituents and their behavior regarding self-assembly, and characterizing the conformational details of peptides during their self-assembly is experimentally challenging. Here, we demonstrate that a hybrid-resolution modeling method can be employed to investigate the role that conformation plays during the assembly of terminally capped diphenylalanines (FF) through microsecond simulations of hundreds or thousands of peptides. Our simulations discovered tubular or vesicular nanostructures that were consistent with experimental observation while reproducing critical self-assembly concentration and secondary structure contents in the assemblies that were measured in our experiments. The atomic details provided by our method allowed us to uncover diverse FF conformations and conformation dependence of assembled nanostructures. We found that the assembled morphologies and the molecular packing of FFs in the observed assemblies are linked closely with side-chain angle and peptide bond orientation, respectively. Of various conformations accessible to soluble FFs, only a select few are compatible with the assembled morphologies in water. A conformation resembling a FF crystal, in particular, became predominant due to its ability to permit highly ordered and energetically favorable FF packing in aqueous assemblies. Strikingly, several conformations incompatible with the assemblies arose transiently as intermediates, facilitating key steps of the assembly process. The molecular rationale behind the role of these intermediate conformations were further explained. Collectively, the structural details reported here advance the understanding of the FF self-assembly mechanism, and our method shows promise for studying peptide-assembled nanostructures and their rational design.
引用
收藏
页码:4455 / 4468
页数:14
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