反平行(数学)
化学
四聚体
螺旋线圈
螺旋束
结晶学
捆绑
序列(生物学)
蛋白质设计
结构母题
蛋白质结构
螺旋(腹足类)
肽
蛋白质工程
生物物理学
生物化学
物理
生态学
材料科学
量子力学
蜗牛
磁场
复合材料
生物
酶
作者
Guto G. Rhys,Christopher W. Wood,Joseph L. Beesley,Nathan R. Zaccai,Antony J. Burton,R.L. Brady,Andrew R. Thomson,Derek N. Woolfson
摘要
The association of amphipathic α helices in water leads to α-helical-bundle protein structures. However, the driving force for this-the hydrophobic effect-is not specific and does not define the number or the orientation of helices in the associated state. Rather, this is achieved through deeper sequence-to-structure relationships, which are increasingly being discerned. For example, for one structurally extreme but nevertheless ubiquitous class of bundle-the α-helical coiled coils-relationships have been established that discriminate between all-parallel dimers, trimers, and tetramers. Association states above this are known, as are antiparallel and mixed arrangements of the helices. However, these alternative states are less well understood. Here, we describe a synthetic-peptide system that switches between parallel hexamers and various up-down-up-down tetramers in response to single-amino-acid changes and solution conditions. The main accessible states of each peptide variant are characterized fully in solution and, in most cases, to high resolution with X-ray crystal structures. Analysis and inspection of these structures helps rationalize the different states formed. This navigation of the structural landscape of α-helical coiled coils above the dimers and trimers that dominate in nature has allowed us to design rationally a well-defined and hyperstable antiparallel coiled-coil tetramer (apCC-Tet). This robust de novo protein provides another scaffold for further structural and functional designs in protein engineering and synthetic biology.
科研通智能强力驱动
Strongly Powered by AbleSci AI