Ian Potter NanoBioSensing Facility, School of Science, RMIT University, GPO Box 2476, Melbourne, VIC 3001, Australia.
Phys Chem Chem Phys. 2018 Nov 28;20(46):29558-29565. doi: 10.1039/c8cp05938a.
Gold nanoparticles (AuNPs) of differing shapes are of great interest to researchers due to their unique optical properties, making them potentially powerful theranostic tools. The synthesis of AuNPs is performed frequently, however the assessment of biological activity for each nanoparticle is not always commonplace. While it is thought that physicochemical parameters such as shape may play an important role in dictating the outcomes of interactions which take place at the nano-bio interface, a systematic approach to the assessment of nanomaterials has not been widely adopted. In this study, the interaction between human serum albumin (HSA) and four similar sized but different shaped AuNPs (spherical, rod shaped, prismatic and cubic) synthesised using a common chemical surfactant (CTAB), is presented. Using fluorescence spectroscopy it is shown that all AuNPs exhibit static binding with HSA, however the shape affects both the affinity and strength of the binding. Rod shaped nanoparticles were found to have the highest binding strength and affinity. Conversely, shapes with large flat planar surfaces such as prisms and cubes were shown to have reduced accessibility to the site of the fluorophore within the structure of HSA. The differences observed help to provide a better understanding of the effect of shape on AuNP-protein interactions - knowledge which may be applied to the development of AuNPs for future biological applications.
金纳米粒子(AuNPs)由于其独特的光学性质,形状各异,引起了研究人员的极大兴趣,使它们成为潜在的强大治疗诊断工具。AuNPs 的合成经常进行,然而,并非总是对每个纳米粒子的生物活性进行评估。虽然人们认为物理化学参数,如形状,可能在决定纳米生物界面上发生的相互作用的结果方面起着重要作用,但对纳米材料的评估尚未被广泛采用。在这项研究中,展示了人血清白蛋白(HSA)与四种使用常见化学表面活性剂(CTAB)合成的大小相似但形状不同的 AuNPs(球形、棒状、棱柱形和立方体形)之间的相互作用。荧光光谱表明,所有 AuNPs 都表现出与 HSA 的静态结合,但形状会影响结合的亲和力和强度。棒状纳米粒子被发现具有最高的结合强度和亲和力。相反,具有大的平坦平面的形状,如棱柱体和立方体,被证明对 HSA 结构内荧光团的结合部位的可及性降低。观察到的差异有助于更好地理解形状对 AuNP-蛋白质相互作用的影响,这一知识可应用于未来生物应用中 AuNPs 的开发。