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Single cell active force generation under dynamic loading - Part I: AFM experiments.单细胞在动态加载下的主动力生成 - 第一部分:原子力显微镜实验。
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本文引用的文献

1
A novel stretching platform for applications in cell and tissue mechanobiology.一种用于细胞和组织机械生物学应用的新型拉伸平台。
J Vis Exp. 2014 Jun 3(88):51454. doi: 10.3791/51454.
2
A FAK-Cas-Rac-lamellipodin signaling module transduces extracellular matrix stiffness into mechanosensitive cell cycling.一种黏着斑激酶-钙黏蛋白-Rac-片层状肌动蛋白结合蛋白信号传导模块将细胞外基质硬度转化为机械敏感的细胞周期进程。
Sci Signal. 2014 Jun 17;7(330):ra57. doi: 10.1126/scisignal.2004838.
3
Auxetic nuclei in embryonic stem cells exiting pluripotency.胚胎干细胞退出多能性时的各向异性核。
Nat Mater. 2014 Jun;13(6):638-644. doi: 10.1038/nmat3943. Epub 2014 Apr 20.
4
Cross talk between matrix elasticity and mechanical force regulates myoblast traction dynamics.细胞外基质弹性与机械力的相互作用调控成肌细胞的牵引力动力学。
Phys Biol. 2013 Dec;10(6):066003. doi: 10.1088/1478-3975/10/6/066003. Epub 2013 Oct 29.
5
Actin and microtubules play distinct roles in governing the anisotropic deformation of cell nuclei in response to substrate strain.肌动蛋白和微管在调节细胞核对基质应变的各向异性变形方面发挥着不同的作用。
Cytoskeleton (Hoboken). 2013 Dec;70(12):837-48. doi: 10.1002/cm.21148.
6
Cellular pressure and volume regulation and implications for cell mechanics.细胞压力和体积调节及其对细胞力学的影响。
Biophys J. 2013 Aug 6;105(3):609-19. doi: 10.1016/j.bpj.2013.06.021.
7
Monitoring actin cortex thickness in live cells.监测活细胞中的肌动蛋白皮层厚度。
Biophys J. 2013 Aug 6;105(3):570-80. doi: 10.1016/j.bpj.2013.05.057.
8
Resiliency of the plasma membrane and actin cortex to large-scale deformation.细胞膜和肌动蛋白皮层对大规模变形的弹性。
Cytoskeleton (Hoboken). 2013 Sep;70(9):494-514. doi: 10.1002/cm.21129. Epub 2013 Sep 3.
9
Wedged AFM-cantilevers for parallel plate cell mechanics.楔形原子力显微镜悬臂梁用于平行板细胞力学研究。
Methods. 2013 Apr 1;60(2):186-94. doi: 10.1016/j.ymeth.2013.02.015. Epub 2013 Mar 6.
10
Actin depolymerization under force is governed by lysine 113:glutamic acid 195-mediated catch-slip bonds.在力的作用下肌动蛋白的解聚受赖氨酸 113:谷氨酸 195 介导的捕获-滑动键的控制。
Proc Natl Acad Sci U S A. 2013 Mar 26;110(13):5022-7. doi: 10.1073/pnas.1218407110. Epub 2013 Mar 4.

用原子力显微镜研究细胞力学。

Investigating cell mechanics with atomic force microscopy.

作者信息

Haase Kristina, Pelling Andrew E

机构信息

Department of Physics, Centre for Interdisciplinary NanoPhysics, MacDonald Hall, University of Ottawa, 150 Louis Pasteur, Ottawa, Ontario, Canada

Department of Physics, Centre for Interdisciplinary NanoPhysics, MacDonald Hall, University of Ottawa, 150 Louis Pasteur, Ottawa, Ontario, Canada Department of Biology, Gendron Hall, 30 Marie Curie, University of Ottawa, Ottawa, Ontario, Canada Institute for Science Society and Policy, Desmarais Building, 55 Laurier Ave. East, University of Ottawa, Ottawa, Ontario, Canada K1N 6N5.

出版信息

J R Soc Interface. 2015 Mar 6;12(104):20140970. doi: 10.1098/rsif.2014.0970.

DOI:10.1098/rsif.2014.0970
PMID:25589563
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4345470/
Abstract

Transmission of mechanical force is crucial for normal cell development and functioning. However, the process of mechanotransduction cannot be studied in isolation from cell mechanics. Thus, in order to understand how cells 'feel', we must first understand how they deform and recover from physical perturbations. Owing to its versatility, atomic force microscopy (AFM) has become a popular tool to study intrinsic cellular mechanical properties. Used to directly manipulate and examine whole and subcellular reactions, AFM allows for top-down and reconstitutive approaches to mechanical characterization. These studies show that the responses of cells and their components are complex, and largely depend on the magnitude and time scale of loading. In this review, we generally describe the mechanotransductive process through discussion of well-known mechanosensors. We then focus on discussion of recent examples where AFM is used to specifically probe the elastic and inelastic responses of single cells undergoing deformation. We present a brief overview of classical and current models often used to characterize observed cellular phenomena in response to force. Both simple mechanistic models and complex nonlinear models have been used to describe the observed cellular behaviours, however a unifying description of cell mechanics has not yet been resolved.

摘要

机械力的传递对于细胞的正常发育和功能至关重要。然而,力传导过程无法脱离细胞力学单独进行研究。因此,为了理解细胞如何“感知”,我们必须首先了解它们如何变形以及从物理扰动中恢复。由于其多功能性,原子力显微镜(AFM)已成为研究细胞固有力学特性的常用工具。AFM用于直接操纵和检测整个细胞及亚细胞反应,允许采用自上而下和重组的方法进行力学表征。这些研究表明,细胞及其组分的反应很复杂,并且在很大程度上取决于加载的大小和时间尺度。在这篇综述中,我们通常通过讨论著名的机械传感器来描述力传导过程。然后,我们重点讨论最近的一些例子,其中AFM用于专门探测单细胞在变形时的弹性和非弹性反应。我们简要概述了常用于表征观察到的细胞对力反应现象的经典模型和当前模型。简单的机械模型和复杂的非线性模型都被用来描述观察到的细胞行为,然而,尚未找到对细胞力学的统一描述。