用高速原子力显微镜测量机械性能。

Christian Ganser, Takayuki Uchihashi
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引用次数: 0

摘要

高速原子力显微镜是研究单个生物分子和复杂结构动力学的一种广泛应用的技术。过去,它主要用于捕捉表面地形作为结构分析,导致了其他方法无法实现的重要发现。与传统的原子力显微镜类似,高速原子力显微镜的范围最近扩大到包括形貌之外的量,例如机械性能的测量。这篇综述深入探讨了评估机械性能的各种方法,从半定量方法到精确的力测量及其相应的样品响应。我们将专注于应用于单一蛋白质,如BIN1,离子通道,如Piezo1,复杂结构,如微管和超分子纤维。在所有这些例子中,可量化的力施加和高时空分辨率的独特组合允许揭示传统方法无法研究的机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Measuring mechanical properties with high-speed atomic force microscopy.

High-speed atomic force microscopy (HS-AFM) is now a widely used technique to study the dynamics of single biomolecules and complex structures. In the past, it has mainly been used to capture surface topography as structural analysis, leading to important discoveries not attainable by other methods. Similar to conventional AFM, the scope of HS-AFM was recently expanded to encompass quantities beyond topography, such as the measurement of mechanical properties. This review delves into various methodologies for assessing mechanical properties, ranging from semi-quantitative approaches to precise force measurements and their corresponding sample responses. We will focus on the application to single proteins such as bridging integrator-1, ion channels such as Piezo1, complex structures such as microtubules and supramolecular fibers. In all these examples, the unique combination of quantifiable force application and high spatiotemporal resolution allows to unravel mechanisms that cannot be investigated by conventional means.

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