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A molecular mechanism for osmolyte-induced protein stability.渗透溶质诱导蛋白质稳定性的分子机制。
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End-to-end distance distributions and intrachain diffusion constants in unfolded polypeptide chains indicate intramolecular hydrogen bond formation.未折叠多肽链中的端到端距离分布和链内扩散常数表明分子内氢键的形成。
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Secondary structure determines protein topology.二级结构决定蛋白质拓扑结构。
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Atom-by-atom analysis of global downhill protein folding.全局下坡蛋白质折叠的逐原子分析。
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Potential functions for hydrogen bonds in protein structure prediction and design.氢键在蛋白质结构预测与设计中的潜在作用。
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On the Structure of Native, Denatured, and Coagulated Proteins.关于天然、变性和凝固蛋白质的结构
Proc Natl Acad Sci U S A. 1936 Jul;22(7):439-47. doi: 10.1073/pnas.22.7.439.
8
On the origin and highly likely completeness of single-domain protein structures.关于单结构域蛋白质结构的起源及极有可能的完整性
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Polyproline II conformation is one of many local conformational states and is not an overall conformation of unfolded peptides and proteins.聚脯氨酸II构象是众多局部构象状态之一,并非未折叠肽和蛋白质的整体构象。
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The RCSB PDB information portal for structural genomics.用于结构基因组学的RCSB蛋白质数据库信息门户。
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一种基于主链的蛋白质折叠理论。

A backbone-based theory of protein folding.

作者信息

Rose George D, Fleming Patrick J, Banavar Jayanth R, Maritan Amos

机构信息

T. C. Jenkins Department of Biophysics,The Johns Hopkins University, Jenkins Hall, 3400 North Charles Street, Baltimore, MD 21218, USA.

出版信息

Proc Natl Acad Sci U S A. 2006 Nov 7;103(45):16623-33. doi: 10.1073/pnas.0606843103. Epub 2006 Oct 30.

DOI:10.1073/pnas.0606843103
PMID:17075053
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1636505/
Abstract

Under physiological conditions, a protein undergoes a spontaneous disorder order transition called "folding." The protein polymer is highly flexible when unfolded but adopts its unique native, three-dimensional structure when folded. Current experimental knowledge comes primarily from thermodynamic measurements in solution or the structures of individual molecules, elucidated by either x-ray crystallography or NMR spectroscopy. From the former, we know the enthalpy, entropy, and free energy differences between the folded and unfolded forms of hundreds of proteins under a variety of solvent/cosolvent conditions. From the latter, we know the structures of approximately 35,000 proteins, which are built on scaffolds of hydrogen-bonded structural elements, alpha-helix and beta-sheet. Anfinsen showed that the amino acid sequence alone is sufficient to determine a protein's structure, but the molecular mechanism responsible for self-assembly remains an open question, probably the most fundamental open question in biochemistry. This perspective is a hybrid: partly review, partly proposal. First, we summarize key ideas regarding protein folding developed over the past half-century and culminating in the current mindset. In this view, the energetics of side-chain interactions dominate the folding process, driving the chain to self-organize under folding conditions. Next, having taken stock, we propose an alternative model that inverts the prevailing side-chain/backbone paradigm. Here, the energetics of backbone hydrogen bonds dominate the folding process, with preorganization in the unfolded state. Then, under folding conditions, the resultant fold is selected from a limited repertoire of structural possibilities, each corresponding to a distinct hydrogen-bonded arrangement of alpha-helices and/or strands of beta-sheet.

摘要

在生理条件下,蛋白质会经历一种称为“折叠”的自发无序到有序的转变。蛋白质聚合物在未折叠时具有高度的柔韧性,但在折叠时会采用其独特的天然三维结构。目前的实验知识主要来自溶液中的热力学测量或通过X射线晶体学或核磁共振光谱阐明的单个分子的结构。从前者中,我们知道了在各种溶剂/共溶剂条件下数百种蛋白质折叠态和未折叠态之间的焓、熵和自由能差异。从后者中,我们知道了大约35000种蛋白质的结构,这些结构建立在氢键结构元件α螺旋和β折叠的支架上。安芬森表明,仅氨基酸序列就足以确定蛋白质的结构,但负责自组装的分子机制仍然是一个悬而未决的问题,可能是生物化学中最基本的悬而未决的问题。这一观点是一种混合体:部分是综述,部分是提议。首先,我们总结了过去半个世纪中关于蛋白质折叠的关键思想,并在当前的思维模式中达到了顶峰。在这种观点中,侧链相互作用的能量学主导了折叠过程,驱使链在折叠条件下自我组织。接下来,在总结之后,我们提出了一个替代模型,该模型颠倒了流行的侧链/主链范式。在这里,主链氢键的能量学主导了折叠过程,在未折叠状态下存在预组织。然后,在折叠条件下,从有限的结构可能性中选择最终的折叠形式,每种可能性对应于α螺旋和/或β折叠链的不同氢键排列。