反平行(数学)
三螺旋
超分子化学
化学
纤维
肽
胶原螺旋
螺旋(腹足类)
静电学
结晶学
超分子组装
生物物理学
自组装
肽序列
蛋白质结构
测试表
纳米技术
静电
淀粉样蛋白(真菌学)
纳米片
氨基酸
轮烷
α螺旋
圆二色性
分子动力学
氢键
转身(生物化学)
电子显微镜
非共价相互作用
脂质双层
作者
Carson C. Cole,Mark A. B. Kreutzberger,K. Klein,Kiana A. Cahue,Brett H. Pogostin,Adam C. Farsheed,Joseph W. R. Swain,Thi H. Bui,Arghadip Dey,Jonathan T. Makhoul,Marija Dubackic,Antara Pal,Ulf Olsson,Anđela Šarić,Edward H. Egelman,Jeffrey D. Hartgerink
标识
DOI:10.1021/acs.biomac.6c00345
摘要
The collagen triple helix assembles hierarchically into bundled oligomers, solvated networks, and fibers. Synthetic peptide assemblies, driven by supramolecular interactions, can form single triple helices through intrahelical amino acid pairs; however, the principles guiding interhelical associations into higher-order structures remain unclear. Here, we incorporate cation-π and electrostatic charge pairs to probe interhelical interactions and elucidate the mechanisms driving triple helix assembly into fibrils, nanotubes, and nanosheets. Introducing cation-π pairs into a fibrillating collagen mimetic resulted in D-periodic fibrils with pH-sensitive gelation. By alternating the presentation of electrostatic and cation-π pairs, the assembly of another D-periodic fibril featuring inner and outer triple-helical layers was resolved by cryo electron microscopy to a resolution of 8 Å. At physiological pH, antiparallel association of these triple helices leads to the formation of nanotubes. The packing behavior of triple helices correlates with the interhelical interactions, where parallel associations favor fibril formation and antiparallel interactions drive nanotube and nanosheet assembly. These self-assembling triple-helical peptides demonstrate how packing of higher-order structures can be tailored with supramolecular interactions and establish the relationship of different hierarchical collagen-mimetic assemblies as pH-dependent.
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