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通过序列变异调节III型纤连蛋白模块的机械稳定性。

Tuning the mechanical stability of fibronectin type III modules through sequence variations.

作者信息

Craig David, Gao Mu, Schulten Klaus, Vogel Viola

机构信息

Department of Bioengineering, University of Washington, Seattle, WA 98195, USA.

出版信息

Structure. 2004 Jan;12(1):21-30. doi: 10.1016/j.str.2003.11.024.

Abstract

Cells can switch the functional states of extracellular matrix proteins by stretching them while exerting mechanical force. Using steered molecular dynamics, we investigated how the mechanical stability of FnIII modules from the cell adhesion protein fibronectin is affected by natural variations in their amino acid sequences. Despite remarkably similar tertiary structures, FnIII modules share low sequence homology. Conversely, the sequence homology for the same FnIII module across multiple species is notably higher, suggesting that sequence variability is functionally significant. Our studies find that the mechanical stability of FnIII modules can be tuned through substitutions of just a few key amino acids by altering access of water molecules to hydrogen bonds that break early in the unfolding pathway. Furthermore, the FnIII hierarchy of mechanical unfolding can be changed by environmental conditions, such as pH for FnIII10, or by forming complexes with other molecules, such as heparin binding to FnIII13.

摘要

细胞可以通过在施加机械力的同时拉伸细胞外基质蛋白来改变其功能状态。我们利用定向分子动力学研究了细胞粘附蛋白纤连蛋白中FnIII结构域的机械稳定性如何受到其氨基酸序列自然变异的影响。尽管FnIII结构域的三级结构非常相似,但它们的序列同源性较低。相反,同一FnIII结构域在多个物种中的序列同源性明显更高,这表明序列变异性具有功能意义。我们的研究发现,通过替换少数几个关键氨基酸,改变水分子与在展开途径早期断裂的氢键的接触,可以调节FnIII结构域的机械稳定性。此外,机械展开的FnIII层次结构可以通过环境条件(如FnIII10 的pH值)或与其他分子形成复合物(如肝素与FnIII13结合)来改变。

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