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微管的温度依赖性弹性

Temperature-dependent elasticity of microtubules.

作者信息

Kis A, Kasas S, Kulik A J, Catsicas S, Forró L

机构信息

Institut de la Physique de la Matière Complexe, EPFL, CH-1015 Lausanne, Switzerland.

出版信息

Langmuir. 2008 Jun 17;24(12):6176-81. doi: 10.1021/la800438q. Epub 2008 May 22.

Abstract

Central to the biological function of microtubules is their ability to modify their length which occurs by addition and removal of subunits at the ends of the polymer, both in vivo and in vitro. This dynamic behavior is strongly influenced by temperature. Here, we show that the lateral interaction between tubulin subunits forming microtubule is strongly temperature dependent. Microtubules deposited on prefabricated substrates were deformed in an atomic force microscope during imaging, in two different experimental geometries. Microtubules were modeled as anisotropic, with the Young's modulus corresponding to the resistance of protofilaments to stretching and the shear modulus describing the weak interaction between the protofilaments. Measurements involving radial compression of microtubules deposited on flat mica confirm that microtubule elasticity depends on the temperature. Bending measurements performed on microtubules deposited on lithographically fabricated substrates show that this temperature dependence is due to changing shear modulus, implying that the lateral interaction between the protofilaments is strongly determined by the temperature. These measurements are in good agreement with previously reported measurements of the disassembly rate of microtubules, demonstrating that the mechanical and dynamic properties of microtubules are closely related.

摘要

微管生物学功能的核心在于其改变长度的能力,这在体内和体外都是通过在聚合物末端添加和去除亚基来实现的。这种动态行为受温度的强烈影响。在此,我们表明形成微管的微管蛋白亚基之间的横向相互作用强烈依赖于温度。在原子力显微镜成像过程中,沉积在预制基底上的微管在两种不同的实验几何结构中发生了变形。微管被建模为各向异性,杨氏模量对应于原纤维对拉伸的阻力,剪切模量描述了原纤维之间的弱相互作用。对沉积在平整云母上的微管进行的径向压缩测量证实,微管弹性取决于温度。对沉积在光刻制造基底上的微管进行的弯曲测量表明,这种温度依赖性是由于剪切模量的变化,这意味着原纤维之间的横向相互作用在很大程度上由温度决定。这些测量结果与先前报道的微管解聚速率测量结果高度一致,表明微管的力学和动态特性密切相关。

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