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近年来纳米尺度上生物分子间相互作用传感的进展——基于原子力显微镜的力谱学的综合评述。

Recent advances in sensing the inter-biomolecular interactions at the nanoscale - A comprehensive review of AFM-based force spectroscopy.

机构信息

Instituto de Nanociencia y Materiales de Aragón (INMA), CSIC-Universidad de Zaragoza, Zaragoza 50009, Spain; Laboratorio de Microscopias Avanzadas (LMA), Universidad de Zaragoza, Zaragoza 50018, Spain; Fundación ARAID, Aragón, Spain.

WPI-Nano Life Science Institute, Kanazawa University, Ishikawa 920-1192, Japan.

出版信息

Int J Biol Macromol. 2023 May 31;238:124089. doi: 10.1016/j.ijbiomac.2023.124089. Epub 2023 Mar 21.

Abstract

Biomolecular interactions underpin most processes inside the cell. Hence, a precise and quantitative understanding of molecular association and dissociation events is crucial, not only from a fundamental perspective, but also for the rational design of biomolecular platforms for state-of-the-art biomedical and industrial applications. In this context, atomic force microscopy (AFM) appears as an invaluable experimental technique, allowing the measurement of the mechanical strength of biomolecular complexes to provide a quantitative characterization of their interaction properties from a single molecule perspective. In the present review, the most recent methodological advances in this field are presented with special focus on bioconjugation, immobilization and AFM tip functionalization, dynamic force spectroscopy measurements, molecular recognition imaging and theoretical modeling. We expect this work to significantly aid in grasping the principles of AFM-based force spectroscopy (AFM-FS) technique and provide the necessary tools to acquaint the type of data that can be achieved from this type of experiments. Furthermore, a critical assessment is done with other nanotechnology techniques to better visualize the future prospects of AFM-FS.

摘要

生物分子相互作用是细胞内大多数过程的基础。因此,精确和定量地理解分子的结合和解离事件至关重要,这不仅从基础的角度来看是如此,而且对于合理设计用于最先进的生物医学和工业应用的生物分子平台也是如此。在这种情况下,原子力显微镜(AFM)作为一种非常宝贵的实验技术出现,允许测量生物分子复合物的机械强度,从而从单个分子的角度对其相互作用特性进行定量表征。在本综述中,特别关注生物共轭、固定化和 AFM 探针功能化、动态力谱测量、分子识别成像和理论建模等方面,介绍了该领域的最新方法学进展。我们希望这项工作能极大地帮助理解基于原子力显微镜的力谱(AFM-FS)技术的原理,并提供必要的工具,以了解从这类实验中可以获得的那种类型的数据。此外,还与其他纳米技术技术进行了批判性评估,以更好地展望 AFM-FS 的未来前景。

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