Hybrid Materials Interfaces Group, Faculty of Production Engineering and Bremen Center for Computational Materials Science, University of Bremen, D-28359 Bremen, Germany and Fraunhofer Institute for Manufacturing Technology and Applied Materials Research IFAM, D-28359 Bremen, Germany.
J Chem Theory Comput. 2011 Feb 8;7(2):473-84. doi: 10.1021/ct1004388. Epub 2010 Dec 23.
The behavior of titanium implants in physiological environments is governed by the thin oxide layer that forms spontaneously on the metal surface and mediates the interactions with adsorbate molecules. In order to study the adsorption of biomolecules on titanium in a realistic fashion, we first build up a model of an oxidized Ti surface in contact with liquid water by means of extensive first-principles molecular dynamics simulations. Taking the obtained structure as reference, we then develop a classical potential to model the Ti/TiOx/water interface. This is based on the mapping with Coulomb and Lennard-Jones potentials of the adsorption energy landscape of single water and ammonia molecules on the rutile TiO2(110) surface. The interactions with arbitrary organic molecules are obtained via standard combination rules to established biomolecular force fields. The transferability of our potential to the case of organic molecules adsorbing on the oxidized Ti surface is checked by comparing the classical potential energy surfaces of representative systems to quantum mechanical results at the level of density functional theory. Moreover, we calculate the heat of immersion of the TiO2 rutile surface and the detachment force of a single tyrosine residue from steered molecular dynamics simulations, finding good agreement with experimental reference data in both cases. As a first application, we study the adsorption behavior of the Arg-Gly-Asp (RGD) peptide on the oxidized titanium surface, focusing particularly on the calculation of the free energy of desorption.
钛植入物在生理环境中的行为受金属表面自然形成的薄氧化层控制,该氧化层介导了与吸附分子的相互作用。为了真实地研究钛表面上生物分子的吸附行为,我们首先通过广泛的第一性原理分子动力学模拟建立了与液体水接触的氧化钛表面的模型。以获得的结构为参考,我们随后开发了一种经典势来模拟 Ti/TiOx/水界面。这是基于单水分子和氨分子在金红石 TiO2(110)表面吸附能景观的库仑和 Lennard-Jones 势的映射。通过与已建立的生物分子力场的标准组合规则,可以获得与任意有机分子相互作用的势。通过比较具有代表性体系的经典势能表面与密度泛函理论水平的量子力学结果,来检查我们的势对于有机分子在氧化钛表面吸附的适用性。此外,我们通过导向分子动力学模拟计算了金红石 TiO2 表面的浸热和单个酪氨酸残基的脱离力,在这两种情况下,我们都与实验参考数据吻合良好。作为初步应用,我们研究了 Arg-Gly-Asp (RGD) 肽在氧化钛表面的吸附行为,特别关注解吸自由能的计算。