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小分子对金纳米粒子的表面修饰及其在生化分析中的应用。

Surface Modification of Gold Nanoparticles with Small Molecules for Biochemical Analysis.

机构信息

Beijing Engineering Research Center for BioNanotechnology & CAS Key Laboratory for Biological Effects of Nanomaterials and Nanosafety, CAS Center for Excellence in Nanoscience, National Center for NanoScience and Technology , 11 BeiYiTiao, ZhongGuanCun, Beijing 100190, China.

University of Chinese Academy of Sciences , Beijing 100049, China.

出版信息

Acc Chem Res. 2017 Feb 21;50(2):310-319. doi: 10.1021/acs.accounts.6b00506. Epub 2017 Jan 9.

Abstract

As one of the major tools for and by chemical science, biochemical analysis is becoming increasingly important in fields like clinical diagnosis, food safety, environmental monitoring, and the development of chemistry and biochemistry. The advancement of nanotechnology boosts the development of analytical chemistry, particularly the nanoparticle (NP)-based approaches for biochemical assays. Functional NPs can greatly improve the performance of biochemical analysis because they can accelerate signal transduction, enhance the signal intensity, and enable convenient signal readout due to their unique physical and chemical properties. Surface chemistry is a widely used tool to functionalize NPs, and the strategy for surface modification is of great significance to the application of NP-mediated biochemical assays. Surface chemistry not only affects the quality of NPs (stability, monodispersity, and biocompatibility) but also provides functional groups (-COO, -NH, -CHO, and so on) or charges that can be exploited for bioconjugation or ligand exchange. Surface chemistry also dictates the sensitivity and specificity of the NP-mediated biochemical assays, since it is vital to the orientation, accessibility, and bioactivity of the functionalized ligands on the NPs. In this Account, we will focus on surface chemistry for functionalization of gold nanoparticles (AuNPs) with small organic molecules for biochemical analysis. Compared to other NPs, AuNPs have many merits including controllable synthesis, easy surface modification and high molar absorption coefficient, making them ideal probes for biochemical assays. Small-molecule functionalized AuNPs are widely employed to develop sensors for biochemical analysis, considering that small molecules, such as amino acids and sulfhydryl compounds, are more easily and controllably bioconjugated to the surface of AuNPs than biomacromolecules due to their less complex structure and steric hindrance. The orientation and accessibility of small molecules on AuNPs in most cases can be precisely controlled without compromising their bioactivity as well, thus ensuring the performance, such as the specificity and sensitivity, of AuNP-based biochemical assays. This Account reviews recent progress in the surface chemistry of functionalized AuNPs for biochemical assays. The surface chemistries mainly include click chemistry, ligand exchange reaction, and coordination-based recognition. These surface-modified AuNPs allow for assaying a range of important biochemical markers including metal ions, small biomolecules, enzymes, and antigens and antibodies. Applications of these systems range from environmental monitoring to medical diagnostics. This Account highlights the advantages and limitations (sensitivity, detection efficiency, and stability) that AuNP-mediated assays still have compared with conventional analytical methods. This Account also discusses the future research directions of surface-modified AuNP-mediated biochemical analysis. The main aim of this Account is to summarize the current surface modification strategies for AuNPs and further demonstrate how to make use of surface modification strategies to effectively improve the performance of AuNP-mediated analytical methods for a wide variety of applications relating to biochemical analysis.

摘要

作为化学科学的主要工具之一,生物化学分析在临床诊断、食品安全、环境监测以及化学和生物化学的发展等领域变得越来越重要。纳米技术的进步推动了分析化学的发展,特别是基于纳米粒子(NP)的生化分析方法。功能纳米粒子可以极大地提高生化分析的性能,因为它们可以加速信号转导、增强信号强度,并由于其独特的物理和化学性质而实现方便的信号读出。表面化学是一种广泛使用的功能化纳米粒子的工具,表面修饰策略对于 NP 介导的生化分析的应用具有重要意义。表面化学不仅影响纳米粒子的质量(稳定性、单分散性和生物相容性),而且还提供可以用于生物缀合或配体交换的功能基团(-COO、-NH、-CHO 等)或电荷。表面化学还决定了 NP 介导的生化分析的灵敏度和特异性,因为它对于纳米粒子上功能化配体的方向、可及性和生物活性至关重要。在本述评中,我们将重点介绍用于生物化学分析的金纳米粒子(AuNPs)的小分子表面化学功能化。与其他 NPs 相比,AuNPs 具有许多优点,包括可控合成、易于表面修饰和高摩尔吸收系数,使其成为生化分析的理想探针。由于其结构简单、空间位阻较小,小分子(如氨基酸和巯基化合物)比生物大分子更容易且更可控地与 AuNPs 表面进行生物缀合,因此基于小分子功能化的 AuNPs 被广泛用于开发生化分析传感器。在大多数情况下,小分子在 AuNPs 上的方向和可及性可以得到精确控制,同时不会影响其生物活性,从而确保 AuNP 生化分析的性能,如特异性和灵敏度。本述评回顾了用于生化分析的功能化 AuNPs 的表面化学的最新进展。表面化学主要包括点击化学、配体交换反应和基于配位的识别。这些表面修饰的 AuNPs 可以用于检测包括金属离子、小分子、酶和抗原抗体在内的一系列重要的生化标志物。这些系统的应用范围从环境监测到医疗诊断。本述评强调了 AuNP 介导的分析与传统分析方法相比仍然存在的优势和局限性(灵敏度、检测效率和稳定性)。本述评还讨论了表面修饰的 AuNP 介导的生化分析的未来研究方向。本述评的主要目的是总结当前用于 AuNPs 的表面修饰策略,并进一步展示如何利用表面修饰策略有效提高 AuNP 介导的分析方法在与生化分析相关的各种应用中的性能。

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