Institute for Frontier Materials, Deakin University , Geelong, Victoria 3216, Australia.
Interdisciplinary Biomedical Research Centre, School of Science and Technology, Nottingham Trent University , Clifton Lane, Nottingham NG11 8NS, United Kingdom.
ACS Appl Mater Interfaces. 2016 Jul 20;8(28):18620-30. doi: 10.1021/acsami.6b05200. Epub 2016 Jul 11.
A major barrier to the systematic improvement of biomimetic peptide-mediated strategies for the controlled growth of inorganic nanomaterials in environmentally benign conditions lies in the lack of clear conceptual connections between the sequence of the peptide and its surface binding affinity, with binding being facilitated by noncovalent interactions. Peptide conformation, both in the adsorbed and in the nonadsorbed state, is the key relationship that connects peptide-materials binding with peptide sequence. Here, we combine experimental peptide-titania binding characterization with state-of-the-art conformational sampling via molecular simulations to elucidate these structure/binding relationships for two very different titania-binding peptide sequences. The two sequences (Ti-1, QPYLFATDSLIK; Ti-2, GHTHYHAVRTQT) differ in their overall hydropathy, yet via quartz-crystal microbalance measurements and predictions from molecular simulations, we show these sequences both support very similar, strong titania-binding affinities. Our molecular simulations reveal that the two sequences exhibit profoundly different modes of surface binding, with Ti-1 acting as an entropically driven binder while Ti-2 behaves as an enthalpically driven binder. The integrated approach presented here provides a rational basis for peptide sequence engineering to achieve the in situ growth and organization of titania nanostructures in aqueous media and for the design of sequences suitable for a range of technological applications that involve the interface between titania and biomolecules.
在环境友好的条件下,仿生肽介导的策略对于无机纳米材料的可控生长的系统改进存在一个主要障碍,这是因为缺乏肽序列与其表面结合亲和力之间的明确概念联系,而结合是通过非共价相互作用来促进的。肽的构象,无论是在吸附状态还是非吸附状态下,都是将肽-材料结合与肽序列连接起来的关键关系。在这里,我们将实验性肽-二氧化钛结合特性与最先进的构象采样通过分子模拟相结合,以阐明这两个非常不同的钛结合肽序列的结构/结合关系。这两个序列(Ti-1,QPYLFATDSLIK;Ti-2,GHTHYHAVRTQT)在整体疏水性上有所不同,但通过石英晶体微天平测量和分子模拟预测,我们表明这两个序列都支持非常相似的强钛结合亲和力。我们的分子模拟表明,这两个序列表现出非常不同的表面结合模式,Ti-1 作为熵驱动的配体,而 Ti-2 作为焓驱动的配体。这里提出的综合方法为肽序列工程提供了合理的基础,以实现钛纳米结构在水介质中的原位生长和组织,并为设计适合涉及钛和生物分子之间界面的一系列技术应用的序列提供了基础。