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Proline residues in transmembrane alpha helices affect the folding of bacteriorhodopsin.跨膜α螺旋中的脯氨酸残基会影响细菌视紫红质的折叠。
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Structure and function in bacteriorhodopsin: the role of the interhelical loops in the folding and stability of bacteriorhodopsin.细菌视紫红质的结构与功能:螺旋间环在细菌视紫红质折叠和稳定性中的作用。
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Transmembrane helix-helix association: relative stabilities at low pH.跨膜螺旋-螺旋缔合:低pH值下的相对稳定性
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Unfolding pathways of individual bacteriorhodopsins.单个细菌视紫红质的解折叠途径
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Molecular dynamics simulation of the unfolding of individual bacteriorhodopsin helices in sodium dodecyl sulfate micelles.单个菌紫质螺旋在十二烷基硫酸钠胶束中展开的分子动力学模拟。
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Surface dynamics of bacteriorhodopsin as revealed by (13)C NMR studies on [(13)C]Ala-labeled proteins: detection of millisecond or microsecond motions in interhelical loops and C-terminal alpha-helix.通过对[(13)C]丙氨酸标记蛋白的(13)C NMR研究揭示的细菌视紫红质的表面动力学:检测螺旋间环和C末端α螺旋中的毫秒或微秒运动。
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Stability of the C-terminal alpha-helical domain of bacteriorhodopsin that protrudes from the membrane surface, as studied by high-resolution solid-state 13C NMR.通过高分辨率固态13C核磁共振研究从膜表面突出的细菌视紫红质C末端α-螺旋结构域的稳定性。
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Reduction of membrane protein hydrophobicity by site-directed mutagenesis: introduction of multiple polar residues in helix D of bacteriorhodopsin.通过定点诱变降低膜蛋白疏水性:在细菌视紫红质的D螺旋中引入多个极性残基。
Protein Eng. 1997 Sep;10(9):1061-6. doi: 10.1093/protein/10.9.1061.

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Molecular mechanism for thermal denaturation of thermophilic rhodopsin.嗜热视紫红质热变性的分子机制。
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Solid-state NMR spectroscopy based atomistic view of a membrane protein unfolding pathway.基于固态 NMR 光谱的膜蛋白解折叠途径的原子级观点。
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本文引用的文献

1
The transition state for folding of an outer membrane protein.一种外膜蛋白折叠的过渡态。
Proc Natl Acad Sci U S A. 2010 Mar 2;107(9):4099-104. doi: 10.1073/pnas.0911904107. Epub 2010 Feb 1.
2
Structural imperatives impose diverse evolutionary constraints on helical membrane proteins.结构要求对螺旋膜蛋白施加了多样的进化限制。
Proc Natl Acad Sci U S A. 2009 Oct 20;106(42):17747-50. doi: 10.1073/pnas.0906390106. Epub 2009 Oct 6.
3
Mapping the structure of an integral membrane protein under semi-denaturing conditions by laser-induced oxidative labeling and mass spectrometry.通过激光诱导氧化标记和质谱法在半变性条件下绘制整合膜蛋白的结构
J Mol Biol. 2009 Dec 18;394(5):968-81. doi: 10.1016/j.jmb.2009.09.063. Epub 2009 Oct 3.
4
Similar energetic contributions of packing in the core of membrane and water-soluble proteins.膜蛋白和水溶性蛋白核心区域中堆积作用的相似能量贡献。
J Am Chem Soc. 2009 Aug 12;131(31):10846-7. doi: 10.1021/ja904711k.
5
Folding scene investigation: membrane proteins.折叠场景研究:膜蛋白
Curr Opin Struct Biol. 2009 Feb;19(1):8-13. doi: 10.1016/j.sbi.2008.12.005. Epub 2009 Jan 20.
6
Experimental characterization of the denatured state ensemble of proteins.蛋白质变性状态系综的实验表征
Methods Mol Biol. 2009;490:339-51. doi: 10.1007/978-1-59745-367-7_14.
7
The transition state for integral membrane protein folding.整合膜蛋白折叠的过渡态。
Proc Natl Acad Sci U S A. 2009 Jan 20;106(3):773-8. doi: 10.1073/pnas.0806953106. Epub 2009 Jan 13.
8
Association energetics of membrane spanning alpha-helices.跨膜α螺旋的缔合能量学
Curr Opin Struct Biol. 2008 Aug;18(4):412-9. doi: 10.1016/j.sbi.2008.04.007. Epub 2008 Jun 5.
9
Modest stabilization by most hydrogen-bonded side-chain interactions in membrane proteins.膜蛋白中大多数氢键结合的侧链相互作用实现适度稳定。
Nature. 2008 Jun 26;453(7199):1266-70. doi: 10.1038/nature06977. Epub 2008 May 25.
10
Combined kinetic and thermodynamic analysis of alpha-helical membrane protein unfolding.α-螺旋膜蛋白解折叠的动力学与热力学联合分析
Proc Natl Acad Sci U S A. 2007 Nov 27;104(48):18970-5. doi: 10.1073/pnas.0705067104. Epub 2007 Nov 19.

α-螺旋跨膜整合蛋白折叠转变态的稳定折叠核心。

Stable folding core in the folding transition state of an alpha-helical integral membrane protein.

机构信息

School of Biochemistry, University of Bristol, School of Medical Sciences, University Walk, Bristol BS8 1TD, United Kingdom.

出版信息

Proc Natl Acad Sci U S A. 2011 Aug 23;108(34):14133-8. doi: 10.1073/pnas.1012594108. Epub 2011 Aug 9.

DOI:10.1073/pnas.1012594108
PMID:21831834
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3161581/
Abstract

Defining the structural features of a transition state is important in understanding a folding reaction. Here, we use Φ-value and double mutant analyses to probe the folding transition state of the membrane protein bacteriorhodopsin. We focus on the final C-terminal helix, helix G, of this seven transmembrane helical protein. Φ-values could be derived for 12 amino acid residues in helix G, most of which have low or intermediate values, suggesting that native structure is disrupted at these amino acid positions in the transition state. Notably, a cluster of residues between E204 and M209 all have Φ-values close to zero. Disruption of helix G is further confirmed by a low Φ-value of 0.2 between residues T170 on helix F and S226 on helix G, suggesting the absence of a native hydrogen bond between helices F and G. Φ-values for paired mutations involved in four interhelical hydrogen bonds revealed that all but one of these bonds is absent in the transition state. The unstructured helix G contrasts with Φ-values along helix B that are generally high, implying native structure in helix B in the transition state. Thus helix B seems to constitute part of a stable folding nucleus while the consolidation of helix G is a relatively late folding event. Polarization of secondary structure correlates with sequence position, with a structured helix B near the N terminus contrasting with an unstructured C-terminal helix G.

摘要

确定过渡态的结构特征对于理解折叠反应很重要。在这里,我们使用 Φ 值和双突变分析来探测膜蛋白菌紫质的折叠过渡态。我们专注于这个七跨膜螺旋蛋白的最终 C 端螺旋,即螺旋 G。可以为螺旋 G 中的 12 个氨基酸残基推导出 Φ 值,其中大多数值较低或处于中间水平,这表明在过渡态中这些氨基酸位置的天然结构被破坏。值得注意的是,E204 和 M209 之间的一组残基的 Φ 值都接近零。螺旋 G 的破坏进一步通过 F 螺旋上的 T170 和 G 螺旋上的 S226 之间的低 Φ 值 0.2 得到证实,这表明 F 和 G 螺旋之间不存在天然氢键。涉及四个螺旋内氢键的配对突变的 Φ 值表明,除一个之外,所有这些氢键在过渡态中都不存在。无规卷曲的螺旋 G 与通常较高的 B 螺旋的 Φ 值形成对比,这意味着在过渡态中 B 螺旋具有天然结构。因此,B 螺旋似乎构成了稳定折叠核的一部分,而 G 螺旋的整合是相对较晚的折叠事件。二级结构的极化与序列位置相关,N 端附近的有规则的 B 螺旋与无规则的 C 端 G 螺旋形成对比。