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用于生物界面科学的纳米等离子体传感器。

Nanoplasmonic sensors for biointerfacial science.

机构信息

School of Materials Science and Engineering, Nanyang Technological University, Singapore, 639798, Singapore.

出版信息

Chem Soc Rev. 2017 Jun 19;46(12):3615-3660. doi: 10.1039/c6cs00494f.

Abstract

In recent years, nanoplasmonic sensors have become widely used for the label-free detection of biomolecules across medical, biotechnology, and environmental science applications. To date, many nanoplasmonic sensing strategies have been developed with outstanding measurement capabilities, enabling detection down to the single-molecule level. One of the most promising directions has been surface-based nanoplasmonic sensors, and the potential of such technologies is still emerging. Going beyond detection, surface-based nanoplasmonic sensors open the door to enhanced, quantitative measurement capabilities across the biointerfacial sciences by taking advantage of high surface sensitivity that pairs well with the size of medically important biomacromolecules and biological particulates such as viruses and exosomes. The goal of this review is to introduce the latest advances in nanoplasmonic sensors for the biointerfacial sciences, including ongoing development of nanoparticle and nanohole arrays for exploring different classes of biomacromolecules interacting at solid-liquid interfaces. The measurement principles for nanoplasmonic sensors based on utilizing the localized surface plasmon resonance (LSPR) and extraordinary optical transmission (EOT) phenomena are first introduced. The following sections are then categorized around different themes within the biointerfacial sciences, specifically protein binding and conformational changes, lipid membrane fabrication, membrane-protein interactions, exosome and virus detection and analysis, and probing nucleic acid conformations and binding interactions. Across these themes, we discuss the growing trend to utilize nanoplasmonic sensors for advanced measurement capabilities, including positional sensing, biomacromolecular conformation analysis, and real-time kinetic monitoring of complex biological interactions. Altogether, these advances highlight the rich potential of nanoplasmonic sensors and the future growth prospects of the community as a whole. With ongoing development of commercial nanoplasmonic sensors and analytical models to interpret corresponding measurement data in the context of biologically relevant interactions, there is significant opportunity to utilize nanoplasmonic sensing strategies for not only fundamental biointerfacial science, but also translational science applications related to clinical medicine and pharmaceutical drug development among countless possibilities.

摘要

近年来,纳米等离子体传感器在医学、生物技术和环境科学等应用领域中,已广泛用于生物分子的无标记检测。迄今为止,已经开发出许多纳米等离子体传感策略,具有出色的测量能力,能够实现单分子水平的检测。最有前途的方向之一是基于表面的纳米等离子体传感器,此类技术的潜力仍在不断显现。除了检测之外,基于表面的纳米等离子体传感器通过利用与医学上重要的生物大分子和生物颗粒(如病毒和外泌体)尺寸相匹配的高表面灵敏度,为生物界面科学带来了增强的定量测量能力,为生物界面科学打开了大门。本文综述了生物界面科学中纳米等离子体传感器的最新进展,包括正在开发的用于探索在固液界面相互作用的不同类别的生物大分子的纳米粒子和纳米孔阵列。首先介绍了基于局域表面等离子体共振(LSPR)和超光学传输(EOT)现象的纳米等离子体传感器的测量原理。接下来的章节则围绕生物界面科学中的不同主题进行分类,具体包括蛋白质结合和构象变化、脂质膜的制备、膜蛋白相互作用、外泌体和病毒的检测和分析,以及探测核酸构象和结合相互作用。在这些主题中,我们讨论了利用纳米等离子体传感器实现高级测量能力的发展趋势,包括位置传感、生物大分子构象分析以及复杂生物相互作用的实时动力学监测。总之,这些进展突出了纳米等离子体传感器的丰富潜力以及整个社区的未来增长前景。随着商业纳米等离子体传感器的不断发展以及解释生物相关相互作用中相应测量数据的分析模型的发展,纳米等离子体传感策略不仅有机会用于基础生物界面科学,也有机会用于与临床医学和药物开发等无数可能性相关的转化科学应用。

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