首页> 外文期刊>Journal of Molecular Biology >Configurational entropy modulates the mechanical stability of protein GB1.
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Configurational entropy modulates the mechanical stability of protein GB1.

机译:构型熵调节蛋白质GB1的机械稳定性。

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摘要

Configurational entropy plays important roles in defining the thermodynamic stability as well as the folding/unfolding kinetics of proteins. Here we combine single-molecule atomic force microscopy and protein engineering techniques to directly examine the role of configurational entropy in the mechanical unfolding kinetics and mechanical stability of proteins. We used a small protein, GB1, as a model system and constructed four mutants that elongate loop 2 of GB1 by 2, 5, 24 and 46 flexible residues, respectively. These loop elongation mutants fold properly as determined by far-UV circular dichroism spectroscopy, suggesting that loop 2 is well tolerant of loop insertions without affecting GB1's native structure. Our single-molecule atomic force microscopy results reveal that loop elongation decreases the mechanical stability of GB1 and accelerates the mechanical unfolding kinetics. These results can be explained by the loss of configurational entropy upon closing an unstructured flexible loop using classical polymer theory, highlighting the important role of loop regions in the mechanical unfolding of proteins. This study not only demonstrates a general approach to investigating the structural deformation of the loop regions in mechanical unfolding transition state, but also provides the foundation to use configurational entropy as an effective means to modulate the mechanical stability of proteins, which is of critical importance towards engineering artificial elastomeric proteins with tailored nanomechanical properties.
机译:构型熵在定义蛋白质的热力学稳定性以及折叠/展开动力学中起着重要作用。在这里,我们结合单分子原子力显微镜和蛋白质工程技术,以直接检查构型熵在蛋白质的机械展开动力学和机械稳定性中的作用。我们使用一种小蛋白GB1作为模型系统,并构建了四个突变体,它们分别将GB1的环2延长了2、5、24和46个柔性残基。这些环伸长突变体可以通过远紫外圆二色光谱法正确折叠,这表明环2对环插入具有很好的耐受性,而不会影响GB1的天然结构。我们的单分子原子力显微镜结果表明,环伸长降低了GB1的机械稳定性,并加快了机械展开动力学。这些结果可以用经典的聚合物理论通过闭合非结构化柔性环时失去结构熵来解释,这突出了环区域在蛋白质机械展开中的重要作用。这项研究不仅展示了研究处于机械展开过渡状态的环区域结构变形的一般方法,而且为利用构型熵作为调节蛋白质机械稳定性的有效手段提供了基础,这对于提高蛋白质的机械稳定性至关重要。工程人造弹性蛋白,具有定制的纳米力学性能。

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