内在无序蛋白质
肽
化学
生物物理学
蛋白质结构
氢键
环肽
氨基酸
纳米技术
分子动力学
自组装
肽序列
构象集合
聚脯氨酸螺旋
测试表
结晶学
结构母题
捆绑
构象变化
侧链
分子生物物理学
酪氨酸
转身(生物化学)
化学物理
产量(工程)
蛋白质折叠
静电
赖氨酸
作者
Yuchen Qiao (8662743),Ayisha Zia (8423655),Grace Wu (249685),Zhiyu Liu (739871),Jiaqi Guo (3369248),Matthew Chu (20558500),Hongjian He (775267),Fengbin Wang (1339716),Bing Xu (69508)
出处
期刊:
[Figshare (United Kingdom)]
日期:2025-01-29
标识
DOI:10.1021/jacs.4c12150.s001
摘要
Despite their critical role in context-dependent interactions for protein functions, intrinsically disordered regions (IDRs) are often overlooked for designing peptide assemblies. Here, we exploit IDRs to enable context-dependent heterotypic assemblies of intrinsically disordered peptides, where “context-dependent” refers to assembly behavior driven by interactions with other molecules. By attaching an aromatic segment to oppositely charged intrinsically disordered peptides, we achieve a nanofiber formation. Although the same-charged peptides cannot self-assemble, oppositely charged peptides form heterotypic nanofibers. Cryo-EM analysis reveals a β-sheet arrangement within the ordered core of these nanofibers, conformational heterogeneity, and a disorder-to-order continuum and shows a high number of hydrogen bonds between tyrosine and lysine ε-amine. Additionally, this work demonstrates a post-assembly morphological change resulting from local conformational flexibility. While equal molar mixtures of the charged intrinsically disordered peptides yield nanofibers, doubling the positively charged peptides after assembly produces bundles of nanofibers. Furthermore, reducing the number of aromatic amino acid residues reduces bundle formation. Demonstrating context-dependent self-assembly of intrinsically disordered peptides and revealing atomistic insights into heterotypic assemblies of intrinsically disordered peptides for the first time, this work illustrates a straightforward approach to enable heterotypic intrinsically disordered peptides to self-assemble for the design of adaptive, multifunctional peptide nanomaterials.
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