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折叠与蛋白质折叠:生物热力学如此有效,我们应该感到惊讶吗?

Collapse and Protein Folding: Should We Be Surprised That Biothermodynamics Works So Well?

作者信息

Sosnick Tobin R, Baxa Michael C

机构信息

Institute for Biophysical Dynamics and Pritzker School of Molecular Engineering, University of Chicago, Chicago, Illinois, USA.

Department of Biochemistry and Molecular Biology, University of Chicago, Chicago, Illinois, USA; email:

出版信息

Annu Rev Biophys. 2025 May;54(1):17-34. doi: 10.1146/annurev-biophys-080124-123012. Epub 2024 Dec 17.

Abstract

A complete understanding of protein function and dynamics requires the characterization of the multiple thermodynamic states, including the denatured state ensemble (DSE). Whereas residual structure in the DSE (as well as in partially folded states) is pertinent in many biological contexts, here we are interested in how such structure affects protein thermodynamics. We examine issues related to chain collapse in light of new developments, focusing on potential complications arising from differences in the DSE's properties under various conditions. Despite some variability in the degree of collapse and structure in the DSE, stability measurements are remarkably consistent between two standard methods, calorimetry and chemical denaturation, as well as with hydrogen-deuterium exchange. This robustness is due in part to the DSEs obtained with different perturbations being thermodynamically equivalent and hence able to serve as a common reference state. An examination of the properties of the DSE points to it as being a highly expanded ensemble with minimal amounts of stable hydrogen bonded structure. These two features are likely to be critical in the broad and successful application of thermodynamics to protein folding. Our review concludes with a discussion of the impact of these findings on folding mechanisms and pathways.

摘要

要全面理解蛋白质的功能和动力学,需要对包括变性态系综(DSE)在内的多种热力学状态进行表征。尽管DSE中的残余结构(以及部分折叠状态中的残余结构)在许多生物学背景中都很重要,但在这里我们关注的是这种结构如何影响蛋白质热力学。我们根据新的进展来研究与链塌陷相关的问题,重点关注在各种条件下DSE性质差异所引发的潜在复杂性。尽管DSE的塌陷程度和结构存在一定变异性,但量热法和化学变性这两种标准方法以及氢氘交换之间的稳定性测量结果却非常一致。这种稳健性部分归因于通过不同扰动获得的DSE在热力学上是等效的,因此能够作为一个共同的参考状态。对DSE性质的研究表明,它是一个高度伸展的系综,具有最少的稳定氢键结构。这两个特征可能对热力学在蛋白质折叠中的广泛且成功的应用至关重要。我们的综述最后讨论了这些发现对折叠机制和途径的影响。

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