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调节重复蛋白稳定性:单个螺旋稳定性对整体行为的影响。

Modulating repeat protein stability: the effect of individual helix stability on the collective behavior of the ensemble.

机构信息

Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, CT 06520, USA.

出版信息

Protein Sci. 2011 Jun;20(6):1042-7. doi: 10.1002/pro.638. Epub 2011 May 3.

Abstract

Repeat proteins are tandem arrays of a small structural motif, in which tertiary structure is stabilized by interactions within a repeat and between neighboring repeats. Several studies have shown that this modular structure is manifest in modular thermodynamic properties. Specifically, the global stability of a repeat protein can be described by simple linear models, considering only two parameters: the stability of the individual repeated units (H) and the coupling interaction between the units (J). If the repeat units are identical, single values of H and J, together with the number of repeated units, is sufficient to completely describe the thermodynamic behavior of any protein within a series. In this work, we demonstrate how the global stability of a repeat protein can be changed, in a predictable fashion, by modifying only the H parameter. Taking a previously characterized series of consensus tetratricopeptide repeats (TPR) (CTPRa) proteins, we introduced mutations into the basic repeating unit, such that the stability of the individual repeat unit was increased, but its interaction with neighboring units was unchanged. In other words, we increased H but kept J constant. We demonstrated that the denaturation curves for a series of such repeat proteins can be fit and additional curves can be predicted by the one-dimensional Ising model in which only H has changed from the original fit for the CTPRa series. Our results show that we can significantly increase the stability of a repeat protein by rationally increasing the stability of the units (H), whereas the interaction between repeats (J) remains unchanged.

摘要

重复蛋白是由小结构基序串联而成的,其中三级结构通过重复单元内部和相邻重复单元之间的相互作用得以稳定。几项研究表明,这种模块化结构表现为模块化热力学性质。具体来说,重复蛋白的整体稳定性可以通过仅考虑两个参数的简单线性模型来描述:单个重复单元的稳定性 (H) 和单元之间的耦合相互作用 (J)。如果重复单元相同,则只需单个 H 和 J 值以及重复单元的数量,即可完全描述一系列蛋白质的热力学行为。在这项工作中,我们展示了如何通过仅修改 H 参数以可预测的方式改变重复蛋白的整体稳定性。我们以之前表征的一系列共识四肽重复 (TPR) (CTPRa) 蛋白为例,在基本重复单元中引入突变,使得单个重复单元的稳定性增加,但与相邻单元的相互作用不变。换句话说,我们增加了 H 但保持 J 不变。我们证明,通过一维伊辛模型可以拟合一系列此类重复蛋白的变性曲线,并且可以通过仅从 CTPRa 系列的原始拟合中改变 H 来预测其他曲线。我们的结果表明,我们可以通过合理增加单元 (H) 的稳定性来显著提高重复蛋白的稳定性,而重复单元之间的相互作用 (J) 保持不变。

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