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本文引用的文献

1
Application of the transfer model to understand how naturally occurring osmolytes affect protein stability.应用转移模型来理解天然存在的渗透溶质如何影响蛋白质稳定性。
Methods Enzymol. 2007;428:397-418. doi: 10.1016/S0076-6879(07)28023-1.
2
Interactions between hydrophobic and ionic solutes in aqueous guanidinium chloride and urea solutions: lessons for protein denaturation mechanism.氯化胍和尿素水溶液中疏水性和离子性溶质之间的相互作用:蛋白质变性机制的启示
J Am Chem Soc. 2007 Jun 13;129(23):7346-53. doi: 10.1021/ja069232+. Epub 2007 May 16.
3
Mixed osmolytes: the degree to which one osmolyte affects the protein stabilizing ability of another.混合渗透溶质:一种渗透溶质对另一种渗透溶质蛋白质稳定能力的影响程度。
Protein Sci. 2007 Feb;16(2):293-8. doi: 10.1110/ps.062610407. Epub 2006 Dec 22.
4
Conformational stability and domain unfolding of the Von Willebrand factor A domains.血管性血友病因子A结构域的构象稳定性与结构域解折叠
J Mol Biol. 2007 Feb 23;366(3):986-1000. doi: 10.1016/j.jmb.2006.10.067. Epub 2006 Oct 25.
5
Native state energetics of the Src SH2 domain: evidence for a partially structured state in the denatured ensemble.Src SH2结构域的天然态能量学:变性总体中部分结构化状态的证据。
Protein Sci. 2006 Jul;15(7):1769-79. doi: 10.1110/ps.062136006. Epub 2006 Jun 2.
6
Use of urea and glycine betaine to quantify coupled folding and probe the burial of DNA phosphates in lac repressor-lac operator binding.使用尿素和甘氨酸甜菜碱来量化偶联折叠,并探测乳糖阻遏蛋白与乳糖操纵基因结合时DNA磷酸基团的埋藏情况。
Biochemistry. 2005 Dec 27;44(51):16896-911. doi: 10.1021/bi0515218.
7
Predicting the energetics of osmolyte-induced protein folding/unfolding.预测渗透溶质诱导的蛋白质折叠/去折叠的能量学。
Proc Natl Acad Sci U S A. 2005 Oct 18;102(42):15065-8. doi: 10.1073/pnas.0507053102. Epub 2005 Oct 7.
8
Additive transfer free energies of the peptide backbone unit that are independent of the model compound and the choice of concentration scale.与模型化合物和浓度标度选择无关的肽主链单元的加和转移自由能。
Biochemistry. 2004 Feb 10;43(5):1329-42. doi: 10.1021/bi035908r.
9
Some factors in the interpretation of protein denaturation.蛋白质变性解读中的一些因素。
Adv Protein Chem. 1959;14:1-63. doi: 10.1016/s0065-3233(08)60608-7.
10
THE EFFECT OF COMPOUNDS OF THE UREA-GUANIDINIUM CLASS ON THE ACTIVITY COEFFICIENT OF ACETYLTETRAGLYCINE ETHYL ESTER AND RELATED COMPOUNDS.脲 - 胍类化合物对乙酰四甘氨酸乙酯及相关化合物活度系数的影响
J Am Chem Soc. 1965 Jun 5;87:2462-70. doi: 10.1021/ja01089a028.

尿素诱导蛋白质变性过程中能量变化的剖析。

Anatomy of energetic changes accompanying urea-induced protein denaturation.

作者信息

Auton Matthew, Holthauzen Luis Marcelo F, Bolen D Wayne

机构信息

Department of Biochemistry and Molecular Biology, University of Texas Medical Branch, Galveston, TX 77555-1052, USA.

出版信息

Proc Natl Acad Sci U S A. 2007 Sep 25;104(39):15317-22. doi: 10.1073/pnas.0706251104. Epub 2007 Sep 18.

DOI:10.1073/pnas.0706251104
PMID:17878304
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2000523/
Abstract

Because of its protein-denaturing ability, urea has played a pivotal role in the experimental and conceptual understanding of protein folding and unfolding. The measure of urea's ability to force a protein to unfold is given by the m value, an experimental quantity giving the free energy change for unfolding per molar urea. With the aid of Tanford's transfer model [Tanford C (1964) J Am Chem Soc 86:2050-2059], we use newly obtained group transfer free energies (GTFEs) of protein side-chain and backbone units from water to 1 M urea to account for the m value of urea, and the method reveals the anatomy of protein denaturation in terms of residue-level free energy contributions of groups newly exposed on denaturation. The GTFEs were obtained by accounting for solubility and activity coefficient ratios accompanying the transfer of glycine from water to 1 M urea. Contrary to the opinions of some researchers, the GTFEs show that urea does not denature proteins through favorable interactions with nonpolar side chains; what drives urea-induced protein unfolding is the large favorable interaction of urea with the peptide backbone. Although the m value is said to be proportional to surface area newly exposed on denaturation, only approximately 25% of the area favorably contributes to unfolding (because of newly exposed backbone units), with approximately 75% modestly opposing urea-induced denaturation (originating from side-chain exposure). Use of the transfer model and newly determined GTFEs achieves the long-sought goal of predicting urea-dependent cooperative protein unfolding energetics at the level of individual amino acid residues.

摘要

由于其蛋白质变性能力,尿素在蛋白质折叠与去折叠的实验和概念理解中发挥了关键作用。尿素促使蛋白质去折叠能力的度量由m值给出,m值是一个实验量,给出每摩尔尿素去折叠时的自由能变化。借助坦福德的转移模型[坦福德C(1964年)《美国化学会志》86:2050 - 2059],我们使用新获得的蛋白质侧链和主链单元从水转移至1 M尿素的基团转移自由能(GTFE)来解释尿素的m值,该方法从变性时新暴露基团的残基水平自由能贡献方面揭示了蛋白质变性的剖析。GTFE是通过考虑甘氨酸从水转移至1 M尿素时伴随的溶解度和活度系数比而获得的。与一些研究人员的观点相反,GTFE表明尿素并非通过与非极性侧链的有利相互作用使蛋白质变性;驱动尿素诱导蛋白质去折叠的是尿素与肽主链的大量有利相互作用。尽管据说m值与变性时新暴露的表面积成正比,但只有约25%的面积对去折叠有有利贡献(由于新暴露的主链单元),约75%则适度阻碍尿素诱导的变性(源于侧链暴露)。转移模型和新确定的GTFE的使用实现了在单个氨基酸残基水平预测尿素依赖性协同蛋白质去折叠能量学这一长期追求的目标。