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钛表面的生物分子修饰金属纳米颗粒。

Biomolecule-coated metal nanoparticles on titanium.

机构信息

Department of Chemistry and Institute for Research in Materials, Dalhousie University, Halifax, NS B3M 4J3, Canada.

出版信息

Langmuir. 2012 Feb 7;28(5):2979-85. doi: 10.1021/la204398q. Epub 2012 Jan 17.

Abstract

Immobilizations of nanoparticles and biomolecules on biocompatible substrates such as titanium are two promising approaches to bringing new functionalities to Ti-based biomaterials. Herein, we used a variety of X-ray spectroscopic techniques to study and better understand metal-thiolate interactions in biofunctionalized metal nanoparticle systems supported on Ti substrates. Using a facile one-step procedure, a series of Au nanoparticle samples with varied biomolecule coatings ((2-mercatopropionyl)glycine (MPG) and bovine serum albumin (BSA)) and biomolecule concentrations are prepared. Ag and Pd systems are also studied to observe change with varying metal composition. The structure and properties of these biomolecule-coated nanoparticles are investigated with scanning electron microscopy (SEM) and element-specific X-ray techniques, including extended X-ray absorption fine structure (Au L(3)-edge), X-ray absorption near-edge structure (Au L(3), Ag L(3), Pd L(3), and S K-edge), and X-ray photoelectron spectroscopy (Au 4f, Ag 3d, Pd 3d, and S 2p core level). It was found that, by comparison of SEM and X-ray spectroscopy results, the coating of metal nanoparticles with varying model biomolecule systems can have a significant effect on both surface coverage and organization. This work offers a facile chemical method for bio- and nanofunctionalization of Ti substrates as well as provides a physical picture of the structure and bonding of biocoated metal nanoparticles, which may lead to useful applications in orthopedics and biomedicine.

摘要

将纳米粒子和生物分子固定在生物相容性基底(如钛)上是为基于钛的生物材料带来新功能的两种有前途的方法。在此,我们使用各种 X 射线光谱技术研究并更好地理解了负载在 Ti 基底上的生物功能化金属纳米粒子系统中的金属-硫醇相互作用。通过简便的一步法,制备了一系列具有不同生物分子涂层((2-巯基丙酰基)甘氨酸(MPG)和牛血清白蛋白(BSA))和生物分子浓度的 Au 纳米粒子样品。还研究了 Ag 和 Pd 体系以观察随金属成分变化的变化。使用扫描电子显微镜(SEM)和元素特异性 X 射线技术(包括扩展 X 射线吸收精细结构(Au L(3)-边)、X 射线吸收近边结构(Au L(3)、Ag L(3)、Pd L(3)和 S K-边)和 X 射线光电子能谱(Au 4f、Ag 3d、Pd 3d 和 S 2p 芯能级)研究这些生物分子涂层纳米粒子的结构和性质。结果发现,通过比较 SEM 和 X 射线光谱结果,用不同模型生物分子系统涂覆金属纳米粒子对表面覆盖率和组织有显著影响。这项工作提供了一种简便的化学方法,用于 Ti 基底的生物和纳米功能化,并提供了生物涂层金属纳米粒子的结构和键合的物理图像,这可能导致在矫形和生物医学中的有用应用。

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