School of Chemistry Physics and Mechanical Engineering, Queensland University of Technology, Brisbane, Australia.
Phys Chem Chem Phys. 2019 Feb 13;21(7):3701-3711. doi: 10.1039/c8cp05191g.
Nanotechnology has quickly emerged as a promising research field with potential effects in disease treatments. For example, gold nanoparticles (AuNPs) have been extensively used in diagnostics and therapeutics. When administrated into human tissues, AuNPs first encounter extracellular matrix (ECM) molecules. Amongst all the ECM components, collagen is the main tension-resisting constituent, whose biofunctional and mechanical properties are strongly dependent on its hierarchical structure. Therefore, an in-depth understanding of the structural response of collagen to the presence of gold nanosurfaces (AuNS) and AuNPs is crucial in terms of clinical applications of AuNPs. However, detailed understanding of the molecular-level and atomic-level interaction between AuNS/AuNPs and collagen in the ECM is elusive. In this study, comprehensive molecular dynamics (MD) simulations have been performed to investigate the molecular behaviour of a collagen molecule segment (CMS) in the presence of AuNS/AuNPs in explicit water, aiming to explore the interaction of AuNS/AuNPs with collagen triple helices at the molecular and atomic levels. The results show that the CMS forms a rapid association with AuNS/AuNPs and undergoes a severe unfolding upon adsorption on AuNS/AuNPs, indicating an unfolding propensity of gold surfaces. We conclude that collagen triple helices unfold readily on AuNS and bare AuNPs, due to the interaction of gold surfaces with the protein backbone. The revealed clear unfolding nature and the unravelled atomic-level unfolding mechanism of collagen triple helices onto AuNPs contribute to the development of AuNPs for biomedical and therapeutic applications, and the design of gold-binding proteins.
纳米技术迅速成为一个有前途的研究领域,具有治疗疾病的潜在影响。例如,金纳米粒子(AuNPs)已广泛应用于诊断和治疗。当进入人体组织时,AuNPs 首先遇到细胞外基质(ECM)分子。在所有 ECM 成分中,胶原蛋白是主要的抗张成分,其生物功能和机械性能强烈依赖于其分层结构。因此,深入了解胶原蛋白对金纳米表面(AuNS)和 AuNPs 的结构响应对于 AuNPs 的临床应用至关重要。然而,对于 ECM 中 AuNS/AuNPs 和胶原蛋白之间的分子水平和原子水平的相互作用,还缺乏详细的了解。在这项研究中,进行了全面的分子动力学(MD)模拟,以研究胶原蛋白分子片段(CMS)在存在 AuNS/AuNPs 时在明水中的分子行为,旨在探索 AuNS/AuNPs 与胶原蛋白三螺旋在分子和原子水平上的相互作用。结果表明,CMS 与 AuNS/AuNPs 迅速结合,并在吸附到 AuNS/AuNPs 上时经历严重的展开,表明金表面具有展开倾向。我们得出结论,由于金表面与蛋白质骨架的相互作用,胶原蛋白三螺旋在 AuNS 和裸露的 AuNPs 上很容易展开。所揭示的胶原蛋白三螺旋在 AuNPs 上的清晰展开性质和展开的原子水平机制有助于 AuNPs 在生物医学和治疗应用中的发展,以及金结合蛋白的设计。