Institute of Materials Science and Nanotechnology, National Nanotechnology Research Center (UNAM), Bilkent University , Ankara, 06800 Turkey.
Applied Informatics Department, Informatics Institute, Istanbul Technical University , Istanbul, 34469 Turkey.
Langmuir. 2017 Aug 15;33(32):7947-7956. doi: 10.1021/acs.langmuir.7b01266. Epub 2017 Aug 2.
Controlling the hierarchical organization of self-assembling peptide amphiphiles into supramolecular nanostructures opens up the possibility of developing biocompatible functional supramolecular materials for various applications. In this study, we show that the hierarchical self-assembly of histidine- (His-) functionalized PAs containing d- or l-amino acids can be controlled by both solution pH and molecular chirality of the building blocks. An increase in solution pH resulted in the structural transition of the His-functionalized chiral PA assemblies from nanosheets to completely closed nanotubes through an enhanced hydrogen-bonding capacity and π-π stacking of imidazole ring. The effects of the stereochemistry and amino acid sequence of the PA backbone on the supramolecular organization were also analyzed by CD, TEM, SAXS, and molecular dynamics simulations. In addition, an investigation of chiral mixtures revealed the differences between the hydrogen-bonding capacities and noncovalent interactions of PAs with d- and l-amino acids.
控制自组装肽两亲物形成超分子纳米结构的分级组织为开发用于各种应用的生物相容的功能性超分子材料开辟了可能性。在这项研究中,我们表明,含 d-或 l-氨基酸的组氨酸(His-)功能化 PA 的分级自组装可以通过溶液 pH 和构建块的分子手性来控制。溶液 pH 的增加导致 His 功能化手性 PA 组装体从纳米片通过增强的氢键合能力和咪唑环的π-π堆积结构过渡到完全封闭的纳米管。还通过 CD、TEM、SAXS 和分子动力学模拟分析了 PA 主链的立体化学和氨基酸序列对超分子组织的影响。此外,对手性混合物的研究揭示了具有 d-和 l-氨基酸的 PA 的氢键合能力和非共价相互作用之间的差异。