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Circular-dichroism analyses of membrane proteins: examination of environmental effects on bacteriorhodopsin spectra.膜蛋白的圆二色性分析:环境对细菌视紫红质光谱影响的研究。
Biochem J. 1993 Jan 1;289 ( Pt 1)(Pt 1):215-9. doi: 10.1042/bj2890215.
2
Differential light scattering and absorption flattening optical effects are minimal in the circular dichroism spectra of small unilamellar vesicles.在小单层囊泡的圆二色光谱中,差分光散射和吸收平坦化光学效应极小。
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3
X-ray diffraction of a cysteine-containing bacteriorhodopsin mutant and its mercury derivative. Localization of an amino acid residue in the loop of an integral membrane protein.含半胱氨酸的细菌视紫红质突变体及其汞衍生物的X射线衍射。膜内在蛋白环中氨基酸残基的定位。
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4
The purple to blue transition of bacteriorhodopsin is accompanied by a loss of the hexagonal lattice and a conformational change.细菌视紫红质从紫色到蓝色的转变伴随着六方晶格的丧失和构象变化。
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Reconstitution of bacteriorhodopsin into cyclic lipid vesicles.将细菌视紫红质重组到环状脂质囊泡中。
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Hydrophobic mismatch and long-range protein/lipid interactions in bacteriorhodopsin/phosphatidylcholine vesicles.细菌视紫红质/磷脂酰胆碱囊泡中的疏水不匹配和长程蛋白质/脂质相互作用。
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Circular dichroism and cross-linking studies of bacteriorhodopsin mutants.细菌视紫红质突变体的圆二色性和交联研究。
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Detergent-free membrane protein crystallization.无去污剂膜蛋白结晶
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Specific lipid-protein interactions in a novel honeycomb lattice structure of bacteriorhodopsin.细菌视紫红质新型蜂窝晶格结构中的特定脂质-蛋白质相互作用。
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Formation of the two-dimensional hexagonal lattice of bacteriorhodopsin in reconstituted brown membrane.重组褐色膜中细菌视紫红质二维六边形晶格的形成。
Biochim Biophys Acta. 1978 Sep 26;536(1):318-22. doi: 10.1016/0005-2795(78)90080-6.

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Purification of Membrane Proteins Overexpressed in Saccharomyces cerevisiae.在酿酒酵母中过表达的膜蛋白的纯化。
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Stability and membrane orientation of the fukutin transmembrane domain: a combined multiscale molecular dynamics and circular dichroism study.福ukin 跨膜结构域的稳定性和膜取向:结合多尺度分子动力学和圆二色性研究。
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Tracking membrane protein association in model membranes.追踪模型膜中膜蛋白的结合情况。
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Detergent-associated solution conformations of helical and beta-barrel membrane proteins.螺旋和β桶状膜蛋白与去污剂相关的溶液构象。
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本文引用的文献

1
Monomeric and aggregated bacteriorhodopsin: Single-turnover proton transport stoichiometry and photochemistry.单体和聚集态菌紫质:单周转质子转运计量学和光化学。
Proc Natl Acad Sci U S A. 1988 Dec;85(24):9509-13. doi: 10.1073/pnas.85.24.9509.
2
Protein measurement with the Folin phenol reagent.使用福林酚试剂进行蛋白质测定。
J Biol Chem. 1951 Nov;193(1):265-75.
3
The flattening of the absorption spectrum of suspensions, as compared to that of solutions.与溶液相比,悬浮液吸收光谱的扁平化。
Biochim Biophys Acta. 1956 Jan;19(1):1-12. doi: 10.1016/0006-3002(56)90380-8.
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Circular dichroic analysis of protein conformation: inclusion of the beta-turns.蛋白质构象的圆二色性分析:β-转角的纳入
Anal Biochem. 1978 Nov;91(1):13-31. doi: 10.1016/0003-2697(78)90812-6.
5
Site of attachment of retinal in bacteriorhodopsin.细菌视紫红质中视黄醛的附着位点。
Proc Natl Acad Sci U S A. 1981 Apr;78(4):2225-9. doi: 10.1073/pnas.78.4.2225.
6
Path of the polypeptide in bacteriorhodopsin.细菌视紫红质中多肽的路径。
Proc Natl Acad Sci U S A. 1980 Apr;77(4):2023-7. doi: 10.1073/pnas.77.4.2023.
7
Orthorhombic two-dimensional crystal form of purple membrane.紫膜的正交二维晶体形式
Proc Natl Acad Sci U S A. 1980 Jan;77(1):338-42. doi: 10.1073/pnas.77.1.338.
8
Peptide-chain secondary structure of bacteriorhodopsin.细菌视紫红质的肽链二级结构。
Biophys J. 1983 Jul;43(1):81-9. doi: 10.1016/S0006-3495(83)84326-4.
9
Three-dimensional structure of orthorhombic purple membrane at 6.5 A resolution.分辨率为6.5埃的正交紫色膜的三维结构。
J Mol Biol. 1983 Jan 25;163(3):451-66. doi: 10.1016/0022-2836(83)90068-2.
10
Attachment site(s) of retinal in bacteriorhodopsin.细菌视紫红质中视网膜的附着位点。
Proc Natl Acad Sci U S A. 1981 Jul;78(7):4068-72. doi: 10.1073/pnas.78.7.4068.

膜蛋白的圆二色性分析:环境对细菌视紫红质光谱影响的研究。

Circular-dichroism analyses of membrane proteins: examination of environmental effects on bacteriorhodopsin spectra.

作者信息

Swords N A, Wallace B A

机构信息

Department of Chemistry, Rensselaer Polytechnic Institute, Troy, NY 12180.

出版信息

Biochem J. 1993 Jan 1;289 ( Pt 1)(Pt 1):215-9. doi: 10.1042/bj2890215.

DOI:10.1042/bj2890215
PMID:8424760
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1132152/
Abstract

The secondary structure of bacteriorhodopsin is known from electron-diffraction studies, making bacteriorhodopsin a useful test system for analysing environmental influences on membrane proteins using c.d. spectroscopy. The conformational effects of detergent solubilization and incorporation into vesicles of various types were determined by comparison of the calculated secondary structures derived from c.d. spectra with the structure determined from diffraction studies. In addition, two modified forms of the native purple membrane, a shrunken form of the hexagonal lattice and an orthorhombic lattice form, were used to determine the effects of varying membrane fragment size and protein concentration within the membranes. The two different vesicle incorporation procedures yielded bacteriorhodopsin spectra which were nearly identical with each other and very close to the structure calculated from electron-diffraction studies. Solubilization of the native protein in the non-ionic detergent n-octyl glucoside, without subsequent vesicle incorporation, resulted in a significantly altered protein conformation. Organizing the protein in different membrane lattices produced even more apparent deviations from the secondary structure determined by diffraction studies, as a consequence of optical effects caused by the high protein concentrations in the lattices. These studies show the importance of maintaining a 'native' environment, and the influence of particle geometry in interpreting c.d. studies of membrane proteins.

摘要

细菌视紫红质的二级结构已通过电子衍射研究得知,这使得细菌视紫红质成为一个有用的测试系统,可用于利用圆二色光谱分析环境对膜蛋白的影响。通过比较从圆二色光谱推导的计算二级结构与从衍射研究确定的结构,来确定去污剂溶解以及掺入各种类型囊泡的构象效应。此外,还使用了天然紫膜的两种修饰形式,一种是六边形晶格的收缩形式,另一种是正交晶格形式,来确定膜片段大小变化以及膜内蛋白质浓度变化的影响。两种不同的囊泡掺入方法产生的细菌视紫红质光谱彼此几乎相同,并且与从电子衍射研究计算出的结构非常接近。在非离子去污剂正辛基葡萄糖苷中溶解天然蛋白质,而不随后掺入囊泡,会导致蛋白质构象发生显著改变。由于晶格中高蛋白质浓度引起的光学效应,将蛋白质组织在不同的膜晶格中会导致与通过衍射研究确定的二级结构有更明显的偏差。这些研究表明了维持“天然”环境的重要性,以及颗粒几何形状在解释膜蛋白圆二色研究中的影响。