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本文引用的文献

1
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。
Proc Natl Acad Sci U S A. 2006 Feb 7;103(6):1744-9. doi: 10.1073/pnas.0510549103. Epub 2006 Jan 30.
2
Unusual compactness of a polyproline type II structure.聚脯氨酸II型结构的异常紧密性。
Proc Natl Acad Sci U S A. 2005 Aug 16;102(33):11698-703. doi: 10.1073/pnas.0409693102. Epub 2005 Aug 5.
3
Specific collapse followed by slow hydrogen-bond formation of beta-sheet in the folding of single-chain monellin.在单链莫内林折叠过程中,先发生特定折叠,随后β-折叠缓慢形成氢键。
Proc Natl Acad Sci U S A. 2005 Feb 22;102(8):2748-53. doi: 10.1073/pnas.0407982102. Epub 2005 Feb 14.
4
Solvent dependence of PII conformation in model alanine peptides.丙氨酸模型肽中PII构象的溶剂依赖性
J Am Chem Soc. 2004 Nov 24;126(46):15141-50. doi: 10.1021/ja047594g.
5
Domain swapping is a consequence of minimal frustration.结构域交换是最小受挫的结果。
Proc Natl Acad Sci U S A. 2004 Sep 21;101(38):13786-91. doi: 10.1073/pnas.0403724101. Epub 2004 Sep 10.
6
Fast folding of a helical protein initiated by the collision of unstructured chains.由无结构链的碰撞引发的螺旋蛋白快速折叠。
Proc Natl Acad Sci U S A. 2004 Sep 14;101(37):13478-82. doi: 10.1073/pnas.0404057101. Epub 2004 Sep 3.
7
Unfolded state of polyalanine is a segmented polyproline II helix.聚丙氨酸的未折叠状态是一种分段的多聚脯氨酸II螺旋结构。
Proteins. 2004 May 15;55(3):493-501. doi: 10.1002/prot.20051.
8
Protein folding and misfolding.蛋白质折叠与错误折叠。
Nature. 2003 Dec 18;426(6968):884-90. doi: 10.1038/nature02261.
9
The pentapeptide GGAGG has PII conformation.五肽GGAGG具有PII构象。
J Am Chem Soc. 2003 Jul 9;125(27):8092-3. doi: 10.1021/ja035551e.
10
Understanding folding and design: replica-exchange simulations of "Trp-cage" miniproteins.理解折叠与设计:“色氨酸笼”微型蛋白质的副本交换模拟
Proc Natl Acad Sci U S A. 2003 Jun 24;100(13):7587-92. doi: 10.1073/pnas.1330954100. Epub 2003 Jun 13.

二级结构为附近多肽的折叠提供了一个模板。

Secondary structure provides a template for the folding of nearby polypeptides.

作者信息

Kameda Tomoshi, Takada Shoji

机构信息

Graduate School of Science and Technology, Kobe University, Rokkodai, Nada, Kobe 657-8501, Japan.

出版信息

Proc Natl Acad Sci U S A. 2006 Nov 21;103(47):17765-70. doi: 10.1073/pnas.0602632103. Epub 2006 Nov 13.

DOI:10.1073/pnas.0602632103
PMID:17101976
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1693821/
Abstract

Although protein structures are primarily encoded by their sequences, they are also critically dependent on environmental factors such as solvents and interactions with other molecules. Here we investigate how the folding-energy landscape of a short peptide is altered by interactions with another peptide, by performing atomistic replica-exchange molecular dynamics simulations of polyalanines in various environments. We analyzed the free-energy landscapes of Ala7 and Ala8 in isolation, near an alpha-helix template, and near a beta-strand template. The isolated Ala7 and Ala8 at 270 K were mainly in polyproline II helix conformations and in equilibrium between the alpha-helix and polyproline II helix, respectively, in harmony with the experiment. Interestingly, we found remarkably strong secondary-structure "templating"; namely, the alpha-helix template enhanced alpha-helix conformation and the beta-strand template induced beta-strand conformation in the simulated Ala8. The alpha-helix template lowered the nearby dielectric constant, which strengthened hydrogen bonds in the simulated Ala8, leading to alpha-helix stabilization. The beta-strand template provided hydrogen bond positions to the simulated Ala8, sharply inducing beta-strand structure. With or without templates, the energy landscape of Ala8 is always funnel-like and centered at the alpha-helix conformation, whereas entropic contribution disfavors the alpha-helix, leading to subtle competition. Secondary-structure templating may play a critical role in protein conformation dynamics in the cellular environment.

摘要

尽管蛋白质结构主要由其序列编码,但它们也严重依赖于环境因素,如溶剂以及与其他分子的相互作用。在这里,我们通过对处于各种环境中的聚丙氨酸进行原子级副本交换分子动力学模拟,研究短肽的折叠能量景观如何因与另一种肽的相互作用而改变。我们分析了孤立状态下、靠近α-螺旋模板以及靠近β-链模板时Ala7和Ala8的自由能景观。与实验结果一致,270 K时孤立的Ala7和Ala8分别主要处于多聚脯氨酸II螺旋构象以及α-螺旋和多聚脯氨酸II螺旋之间的平衡状态。有趣的是,我们发现了非常强的二级结构“模板作用”;也就是说,α-螺旋模板增强了α-螺旋构象,而β-链模板在模拟的Ala8中诱导了β-链构象。α-螺旋模板降低了附近的介电常数,增强了模拟的Ala8中的氢键,导致α-螺旋稳定。β-链模板为模拟的Ala8提供了氢键位置,急剧诱导了β-链结构。无论有无模板,Ala8的能量景观总是呈漏斗状且以α-螺旋构象为中心,而熵的贡献不利于α-螺旋,导致了微妙的竞争。二级结构模板作用可能在细胞环境中的蛋白质构象动力学中起关键作用。