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2
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本文引用的文献

1
Redrawing the Ramachandran plot after inclusion of hydrogen-bonding constraints.在包含氢键约束后重新绘制 Ramachandran 图。
Proc Natl Acad Sci U S A. 2011 Jan 4;108(1):109-13. doi: 10.1073/pnas.1014674107. Epub 2010 Dec 8.
2
Evidence for initial non-specific polypeptide chain collapse during the refolding of the SH3 domain of PI3 kinase.PI3 激酶 SH3 结构域复性过程中初始非特异性多肽链折叠的证据。
J Mol Biol. 2010 Oct 29;403(3):430-45. doi: 10.1016/j.jmb.2010.08.046. Epub 2010 Sep 15.
3
Physical-chemical determinants of coil conformations in globular proteins.球状蛋白质中线圈构象的理化决定因素。
Protein Sci. 2010 Jun;19(6):1127-36. doi: 10.1002/pro.399.
4
Urea denatured state ensembles contain extensive secondary structure that is increased in hydrophobic proteins.尿素变性状态集合包含广泛的二级结构,在疏水蛋白中增加。
Protein Sci. 2010 May;19(5):929-43. doi: 10.1002/pro.370.
5
Current status of the AMOEBA polarizable force field.AMOEBA 极化力场的现状。
J Phys Chem B. 2010 Mar 4;114(8):2549-64. doi: 10.1021/jp910674d.
6
Hydrogen bonding progressively strengthens upon transfer of the protein urea-denatured state to water and protecting osmolytes.氢键在蛋白质从尿素变性状态转移到水中并被保护渗透物保护时逐渐增强。
Biochemistry. 2010 Feb 16;49(6):1310-8. doi: 10.1021/bi9015499.
7
The unfolded state of the C-terminal domain of the ribosomal protein L9 contains both native and non-native structure.核糖体蛋白L9 C端结构域的未折叠状态同时包含天然结构和非天然结构。
Biochemistry. 2009 Jun 9;48(22):4707-19. doi: 10.1021/bi802299j.
8
Protein folding, protein collapse, and tanford's transfer model: lessons from single-molecule FRET.蛋白质折叠、蛋白质崩溃和坦福德的转移模型:来自单分子 FRET 的启示。
J Am Chem Soc. 2009 Mar 4;131(8):2942-7. doi: 10.1021/ja808305u.
9
Ramachandran revisited. DFT energy surfaces of diastereomeric trialanine peptides in the gas phase and aqueous solution.重新审视拉马钱德兰图。非对映体三丙氨酸肽在气相和水溶液中的密度泛函理论能量表面。
J Phys Chem B. 2009 Jan 8;113(1):309-18. doi: 10.1021/jp8063646.
10
Structure and energetics of the hydrogen-bonded backbone in protein folding.蛋白质折叠中氢键主链的结构与能量学
Annu Rev Biochem. 2008;77:339-62. doi: 10.1146/annurev.biochem.77.061306.131357.

计算展开蛋白质中的肽-水氢键。

Counting peptide-water hydrogen bonds in unfolded proteins.

机构信息

MOE Key Laboratory of Bioinformatics, School of Life Science, Tsinghua University, Beijing 100084, China.

出版信息

Protein Sci. 2011 Feb;20(2):417-27. doi: 10.1002/pro.574.

DOI:10.1002/pro.574
PMID:21280132
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3048426/
Abstract

It is often assumed that the peptide backbone forms a substantial number of additional hydrogen bonds when a protein unfolds. We challenge that assumption in this article. Early surveys of hydrogen bonding in proteins of known structure typically found that most, but not all, backbone polar groups are satisfied, either by intramolecular partners or by water. When the protein is folded, these groups form approximately two hydrogen bonds per peptide unit, one donor or acceptor for each carbonyl oxygen or amide hydrogen, respectively. But when unfolded, the backbone chain is often believed to form three hydrogen bonds per peptide unit, one partner for each oxygen lone pair or amide hydrogen. This assumption is based on the properties of small model compounds, like N-methylacetamide, or simply accepted as self-evident fact. If valid, a chain of N residues would have approximately 2N backbone hydrogen bonds when folded but 3N backbone hydrogen bonds when unfolded, a sufficient difference to overshadow any uncertainties involved in calculating these per-residue averages. Here, we use exhaustive conformational sampling to monitor the number of H-bonds in a statistically adequate population of blocked polyalanyl-six-mers as the solvent quality ranges from good to poor. Solvent quality is represented by a scalar parameter used to Boltzmann-weight the population energy. Recent experimental studies show that a repeating (Gly-Ser) polypeptide undergoes a denaturant-induced expansion accompanied by breaking intramolecular peptide H-bonds. Results from our simulations augment this experimental finding by showing that the number of H-bonds is approximately conserved during such expansion⇋compaction transitions.

摘要

人们通常认为,当蛋白质展开时,肽骨架会形成大量额外的氢键。本文对这一假设提出了挑战。早期对已知结构蛋白质中氢键的调查通常发现,大多数(但不是全部)骨架极性基团都得到了满足,要么是通过分子内伴侣,要么是通过水。当蛋白质折叠时,这些基团在每个肽单元中形成大约两个氢键,每个羰基氧或酰胺氢各有一个供体或受体。但是,当蛋白质展开时,通常认为骨架链在每个肽单元中形成三个氢键,每个氧孤对或酰胺氢都有一个伴侣。这种假设基于小分子模型化合物的性质,如 N-甲基乙酰胺,或者简单地被认为是不言而喻的事实。如果有效,当链折叠时,一个 N 残基链将有约 2N 个骨架氢键,但当链展开时,将有约 3N 个骨架氢键,这足以掩盖计算这些每个残基平均值时涉及的任何不确定性。在这里,我们使用详尽的构象采样来监测在统计学上足够数量的受阻聚丙氨酸六聚体中氢键的数量,溶剂质量范围从好到差。溶剂质量由一个标量参数表示,用于玻尔兹曼加权群体能量。最近的实验研究表明,重复(甘氨酸-丝氨酸)多肽经历变性剂诱导的扩张,同时伴有分子内肽氢键的断裂。我们的模拟结果通过表明在这种扩张-收缩转变过程中氢键的数量近似守恒,增强了这一实验发现。