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通过单分子原子力显微镜观察到的纤连蛋白的机械层次结构。

The mechanical hierarchies of fibronectin observed with single-molecule AFM.

作者信息

Oberhauser Andres F, Badilla-Fernandez Carmelu, Carrion-Vazquez Mariano, Fernandez Julio M

机构信息

Department of Physiology and Biophysics, Mayo Foundation, Rochester, MN 55905, USA.

出版信息

J Mol Biol. 2002 May 31;319(2):433-47. doi: 10.1016/S0022-2836(02)00306-6.

Abstract

Mechanically induced conformational changes in proteins such as fibronectin are thought to regulate the assembly of the extracellular matrix and underlie its elasticity and extensibility. Fibronectin contains a region of tandem repeats of up to 15 type III domains that play critical roles in cell binding and self-assembly. Here, we use single-molecule force spectroscopy to examine the mechanical properties of fibronectin (FN) and its individual FNIII domains. We found that fibronectin is highly extensible due to the unfolding of its FNIII domains. We found that the native FNIII region displays strong mechanical unfolding hierarchies requiring 80 pN of force to unfold the weakest domain and 200 pN for the most stable domain. In an effort to determine the identity of the weakest/strongest domain, we engineered polyproteins composed of an individual domain and measured their mechanical stability by single-protein atomic force microscopy (AFM) techniques. In contrast to chemical and thermal measurements of stability, we found that the tenth FNIII domain is mechanically the weakest and that the first and second FNIII domains are the strongest. Moreover, we found that the first FNIII domain can acquire multiple, partially folded conformations, and that their incidence is modulated strongly by its neighbor FNIII domain. The mechanical hierarchies of fibronectin demonstrated here may be important for the activation of fibrillogenesis and matrix assembly.

摘要

诸如纤连蛋白之类的蛋白质中由机械诱导的构象变化被认为可调节细胞外基质的组装,并构成其弹性和伸展性的基础。纤连蛋白包含一个由多达15个III型结构域串联重复组成的区域,这些结构域在细胞结合和自我组装中起关键作用。在这里,我们使用单分子力谱来研究纤连蛋白(FN)及其各个FNIII结构域的力学性质。我们发现纤连蛋白由于其FNIII结构域的展开而具有高度的伸展性。我们发现天然的FNIII区域显示出强大的机械展开层次结构,展开最弱的结构域需要80皮牛的力,而展开最稳定的结构域需要200皮牛的力。为了确定最弱/最强结构域的身份,我们设计了由单个结构域组成的多蛋白,并通过单蛋白原子力显微镜(AFM)技术测量了它们的机械稳定性。与稳定性的化学和热测量结果相反,我们发现第十个FNIII结构域在力学上是最弱的,而第一个和第二个FNIII结构域是最强的。此外,我们发现第一个FNIII结构域可以获得多种部分折叠的构象,并且它们的发生率受到其相邻FNIII结构域的强烈调节。这里展示的纤连蛋白的机械层次结构可能对原纤维形成和基质组装的激活很重要。

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