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首页> 外文期刊>Progress in Biophysics and Molecular Biology: An International Review Journal >Mechanical design of proteins studied by single-molecule force spectroscopy and protein engineering.
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Mechanical design of proteins studied by single-molecule force spectroscopy and protein engineering.

机译:通过单分子力谱和蛋白质工程研究蛋白质的机械设计。

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摘要

Mechanical unfolding and refolding may regulate the molecular elasticity of modular proteins with mechanical functions. The development of the atomic force microscopy (AFM) has recently enabled the dynamic measurement of these processes at the single-molecule level. Protein engineering techniques allow the construction of homomeric polyproteins for the precise analysis of the mechanical unfolding of single domains. alpha-Helical domains are mechanically compliant, whereas beta-sandwich domains, particularly those that resist unfolding with backbone hydrogen bonds between strands perpendicular to the applied force, are more stable and appear frequently in proteins subject to mechanical forces. The mechanical stability of a domain seems to be determined by its hydrogen bonding pattern and is correlated with its kinetic stability rather than its thermodynamic stability. Force spectroscopy using AFM promises to elucidate the dynamic mechanical properties of a wide variety of proteins at the single molecule level and provide an important complement to other structural and dynamic techniques (e.g., X-ray crystallography, NMR spectroscopy, patch-clamp).
机译:机械展开和重折叠可以调节具有机械功能的模块蛋白的分子弹性。原子力显微镜(AFM)的发展最近使得能够在单分子水平上动态测量这些过程。蛋白质工程技术允许构建同质多蛋白,以精确分析单个结构域的机械折叠。 α-螺旋结构域在机械上是顺应性的,而β-三明治结构域,尤其是那些抵抗与垂直于施加力的链之间的主链氢键解折叠的结构,则更稳定并经常出现在受到机械力作用的蛋白质中。域的机械稳定性似乎是由其氢键模式决定的,并且与其动力学稳定性而不是其热力学稳定性相关。使用AFM的力谱法有望阐明各种蛋白质在单分子水平上的动态力学性能,并为其他结构和动力学技术(例如X射线晶体学,NMR光谱学,膜片钳)提供重要的补充。

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