丝素
石墨烯
材料科学
丝绸
分子内力
分子动力学
纳米技术
无定形固体
复合材料
结晶学
化学
计算化学
立体化学
作者
Yuan Cheng,Leng‐Duei Koh,Dechang Li,Baohua Ji,Yingyan Zhang,Yingyan Zhang,Jingjie Yeo,Guijian Guan,Ming‐Yong Han,Yong‐Wei Zhang,Yong‐Wei Zhang
标识
DOI:10.1021/acsami.5b05615
摘要
Studies reveal that biomolecules can form intriguing molecular structures with fascinating functionalities upon interaction with graphene. Then, interesting questions arise. How does silk fibroin interact with graphene? Does such interaction lead to an enhancement in its mechanical properties? In this study, using large-scale molecular dynamics simulations, we first examine the interaction of graphene with several typical peptide structures of silk fibroin extracted from different domains of silk fibroin, including pure amorphous (P1), pure crystalline (P2), a segment from N-terminal (P3), and a combined amorphous and crystalline segment (P4), aiming to reveal their structural modifications. Our study shows that graphene can have intriguing influences on the structures formed by the peptides with sequences representing different domains of silk fibroin. In general, for protein domains with stable structure and strong intramolecular interaction (e.g., β-sheets), graphene tends to compete with the intramolecular interactions and thus weaken the interchain interaction and reduce the contents of β-sheets. For the silk domains with random or less ordered secondary structures and weak intramolecular interactions, graphene tends to enhance the stability of peptide structures; in particular, it increases the contents of helical structures. Thereafter, tensile simulations were further performed on the representative peptides to investigate how such structure modifications affect their mechanical properties. It was found that the strength and resilience of the peptides are enhanced through their interaction with graphene. The present work reveals interesting insights into the interactions between silk peptides and graphene, and contributes in the efforts to enhance the mechanical properties of silk fibroin.
科研通智能强力驱动
Strongly Powered by AbleSci AI