McCourt Joseph M, Kewalramani Sumit, Gao Changrui, Roth Eric W, Weigand Steven J, Olvera de la Cruz Monica, Bedzyk Michael J
Department of Physics and Astronomy, Northwestern University, Evanston, Illinois 60208, United States.
Department of Materials Science and Engineering, Northwestern University, Evanston, Illinois 60208, United States.
ACS Cent Sci. 2022 Aug 24;8(8):1169-1181. doi: 10.1021/acscentsci.2c00447. Epub 2022 Aug 2.
How molecular chirality manifests at the nano- to macroscale has been a scientific puzzle since Louis Pasteur discovered biochirality. Chiral molecules assemble into meso-shapes such as twisted and helical ribbons, helicoidal scrolls (cochleates), or möbius strips (closed twisted ribbons). Here we analyze self-assembly for a series of amphiphiles, C -K, consisting of an ionizable amino acid [lysine (K)] coupled to alkyl tails with = 12, 14, or 16 carbons. This simple system allows us to probe the effects of electrostatic and van der Waals interactions in chiral assemblies. Small/wide-angle X-ray scattering (SAXS/WAXS) reveals that at low pH, where the headgroups are ionized (+1), C-K forms high aspect ratio, planar crystalline bilayers. Molecular dynamics (MD) simulations reveal that tilted tails of the bilayer leaflets are interdigitated. SAXS shows that, with increasing salt concentration, C-K molecules assemble into cochleates, whereas at elevated pH (reduced degree of ionization), helices are observed for all C -K assemblies. The shape selection between helices and scrolls is explained by a membrane energetics model. The nano- to meso-scale structure of the chiral assemblies can be continuously controlled by solution ionic conditions. Overall, our study represents a step toward an electrostatics-based approach for shape selection and nanoscale structure control in chiral assemblies.
自路易·巴斯德发现生物手性以来,分子手性如何在纳米到宏观尺度上表现一直是一个科学难题。手性分子组装成中观形状,如扭曲和螺旋状带、螺旋卷轴(螺旋体)或莫比乌斯带(封闭扭曲带)。在这里,我们分析了一系列两亲分子C-K的自组装,这些分子由与碳数n = 12、14或16的烷基链相连的可电离氨基酸[赖氨酸(K)]组成。这个简单的系统使我们能够探究手性组装中静电和范德华相互作用的影响。小角/广角X射线散射(SAXS/WAXS)表明,在低pH值(头基电离为+1)时,C-K形成高纵横比的平面结晶双层膜。分子动力学(MD)模拟表明,双层小叶的倾斜尾部相互交错。SAXS显示,随着盐浓度的增加,C-K分子组装成螺旋体,而在较高pH值(电离度降低)时,所有C-K组装体中均观察到螺旋结构。螺旋和卷轴之间的形状选择可以通过膜能量模型来解释。手性组装体的纳米到中观尺度结构可以通过溶液离子条件进行连续控制。总的来说,我们的研究朝着基于静电学的手性组装体形状选择和纳米尺度结构控制方法迈出了一步。