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使用原子力显微镜测量软生物样本的粘弹性。

Measuring viscoelasticity of soft biological samples using atomic force microscopy.

机构信息

School of Mechanical Engineering, Purdue University, West Lafayette, Indiana, USA.

Graduate School of Information Science and Technology, Hokkaido University, Sapporo, Japan.

出版信息

Soft Matter. 2020 Jan 7;16(1):64-81. doi: 10.1039/c9sm01020c. Epub 2019 Nov 13.

Abstract

Mechanical properties play important roles at different scales in biology. At the level of a single cell, the mechanical properties mediate mechanosensing and mechanotransduction, while at the tissue and organ levels, changes in mechanical properties are closely connected to disease and physiological processes. Over the past three decades, atomic force microscopy (AFM) has become one of the most widely used tools in the mechanical characterization of soft samples, ranging from molecules, cell organoids and cells to whole tissue. AFM methods can be used to quantify both elastic and viscoelastic properties, and significant recent developments in the latter have been enabled by the introduction of new techniques and models for data analysis. Here, we review AFM techniques developed in recent years for examining the viscoelastic properties of cells and soft gels, describe the main steps in typical data acquisition and analysis protocols, and discuss relevant viscoelastic models and how these have been used to characterize the specific features of cellular and other biological samples. We also discuss recent trends and potential directions for this field.

摘要

力学性能在生物学的不同尺度上都起着重要作用。在单细胞水平上,力学性能介导机械感知和力学转导,而在组织和器官水平上,力学性能的变化与疾病和生理过程密切相关。在过去的三十年中,原子力显微镜(AFM)已成为软样品力学特性表征中最广泛使用的工具之一,涵盖了从分子、细胞类器官和细胞到整个组织的范围。AFM 方法可用于定量测量弹性和粘弹性特性,而近年来在后一种方法中取得的重大进展得益于新技术和数据分析模型的引入。在这里,我们回顾了近年来用于研究细胞和软凝胶粘弹性特性的 AFM 技术,描述了典型数据采集和分析方案的主要步骤,并讨论了相关的粘弹性模型以及这些模型如何用于表征细胞和其他生物样本的特定特征。我们还讨论了该领域的最新趋势和潜在方向。

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