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本文引用的文献

1
Folding and binding cascades: dynamic landscapes and population shifts.折叠与结合级联反应:动态格局与群体转移
Protein Sci. 2000 Jan;9(1):10-9. doi: 10.1110/ps.9.1.10.
2
Redistribution and loss of side chain entropy upon formation of a calmodulin-peptide complex.钙调蛋白-肽复合物形成时侧链熵的重新分布与损失。
Nat Struct Biol. 2000 Jan;7(1):72-7. doi: 10.1038/71280.
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Temperature-dependent beta-sheet formation in beta-amyloid Abeta(1-40) peptide in water: uncoupling beta-structure folding from aggregation.水中β-淀粉样蛋白Aβ(1-40)肽中温度依赖性β-折叠的形成:β-结构折叠与聚集的解偶联
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Increased protein backbone conformational entropy upon hydrophobic ligand binding.疏水配体结合后蛋白质主链构象熵增加。
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The 'dynamics' in the thermodynamics of binding.结合热力学中的“动力学”
Nat Struct Biol. 1999 Dec;6(12):1086-7. doi: 10.1038/70008.
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Folding and binding cascades: shifts in energy landscapes.折叠与结合级联反应:能量景观的转变
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Explicit and implicit water simulations of a beta-hairpin peptide.β-发夹肽的显式和隐式水模拟
Proteins. 1999 Oct 1;37(1):73-87. doi: 10.1002/(sici)1097-0134(19991001)37:1<73::aid-prot8>3.0.co;2-z.
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The effect of inhibitor binding on the structural stability and cooperativity of the HIV-1 protease.抑制剂结合对HIV-1蛋白酶结构稳定性和协同性的影响。
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9
Folding funnels, binding funnels, and protein function.折叠漏斗、结合漏斗与蛋白质功能。
Protein Sci. 1999 Jun;8(6):1181-90. doi: 10.1110/ps.8.6.1181.
10
Matching theory and experiment in protein folding.蛋白质折叠中的匹配理论与实验
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对处于折叠态和无规态的多肽振动自由能的系统研究。

A systematic study of the vibrational free energies of polypeptides in folded and random states.

作者信息

Ma B, Tsai C J, Nussinov R

机构信息

Laboratory of Experimental and Computational Biology, NCI-FCRDC, Bldg 469, Room 151, Frederick, MD 21702, USA.

出版信息

Biophys J. 2000 Nov;79(5):2739-53. doi: 10.1016/S0006-3495(00)76513-1.

DOI:10.1016/S0006-3495(00)76513-1
PMID:11053147
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1301155/
Abstract

Molecular vibrations, especially low frequency motions, may be used as an indication of the rigidity or the flatness of the protein folding energy landscape. We have studied the vibrational properties of native folded as well as random coil structures of more than 60 polypeptides. The picture we obtain allows us to perceive how and why the energy landscape progressively rigidifies while still allowing potential flexibility. Compared with random coil structures, both alpha-helices and beta-hairpins are vibrationally more flexible. The vibrational properties of loop structures are similar to those of the corresponding random coil structures. Inclusion of an alpha-helix tends to rigidify peptides and so-called building blocks of the structure, whereas the addition of a beta-structure has less effect. When small building blocks coalesce to form larger domains, the protein rigidifies. However, some folded native conformations are still found to be vibrationally more flexible than random coil structures, for example, beta(2)-microglobulin and the SH3 domain. Vibrational free energy contributes significantly to the thermodynamics of protein folding and affects the distribution of the conformational substates. We found a weak correlation between the vibrational folding energy and the protein size, consistent with both previous experimental estimates and theoretical partition of the heat capacity change in protein folding.

摘要

分子振动,尤其是低频运动,可用作蛋白质折叠能量景观的刚性或平坦度的指标。我们研究了60多种多肽的天然折叠结构以及无规卷曲结构的振动特性。我们得到的图景使我们能够了解能量景观如何以及为何在仍允许潜在灵活性的同时逐渐变硬。与无规卷曲结构相比,α螺旋和β发夹在振动上更具灵活性。环结构的振动特性与相应的无规卷曲结构相似。包含α螺旋往往会使肽以及结构的所谓构建块变硬,而添加β结构的影响较小。当小的构建块聚合并形成更大的结构域时,蛋白质会变硬。然而,仍发现一些折叠的天然构象在振动上比无规卷曲结构更具灵活性,例如,β2微球蛋白和SH3结构域。振动自由能对蛋白质折叠的热力学有显著贡献,并影响构象亚态的分布。我们发现振动折叠能量与蛋白质大小之间存在弱相关性,这与先前的实验估计以及蛋白质折叠中热容变化的理论分配一致。