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1
Protein dynamics in the bacteriorhodopsin photocycle: submillisecond Fourier transform infrared spectra of the L, M, and N photointermediates.细菌视紫红质光循环中的蛋白质动力学:L、M和N光中间体的亚毫秒级傅里叶变换红外光谱
Proc Natl Acad Sci U S A. 1991 Mar 15;88(6):2388-92. doi: 10.1073/pnas.88.6.2388.
2
Time-resolved Fourier transform infrared spectroscopy of the bacteriorhodopsin mutant Tyr-185-->Phe: Asp-96 reprotonates during O formation; Asp-85 and Asp-212 deprotonate during O decay.细菌视紫红质突变体Tyr-185→Phe的时间分辨傅里叶变换红外光谱:在O形成过程中Asp-96重新质子化;在O衰减过程中Asp-85和Asp-212去质子化。
Photochem Photobiol. 1992 Dec;56(6):1085-95. doi: 10.1111/j.1751-1097.1992.tb09732.x.
3
Vibrational spectroscopy of bacteriorhodopsin mutants. Evidence that ASP-96 deprotonates during the M----N transition.
J Biol Chem. 1991 Jun 15;266(17):11063-7.
4
Proton transfer from Asp-96 to the bacteriorhodopsin Schiff base is caused by a decrease of the pKa of Asp-96 which follows a protein backbone conformational change.天冬氨酸96(Asp-96)向细菌视紫红质席夫碱的质子转移是由Asp-96的pKa降低引起的,而这种降低是在蛋白质主链构象变化之后发生的。
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5
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7
Coordinating the structural rearrangements associated with unidirectional proton transfer in the bacteriorhodopsin photocycle induced by deprotonation of the proton-release group: a time-resolved difference FTIR spectroscopic study.协调与质子释放基团去质子化诱导的菌紫质光循环中单向质子转移相关的结构重排:时间分辨差频 FTIR 光谱研究。
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Structural changes in bacteriorhodopsin during the photocycle measured by time-resolved polarized Fourier transform infrared spectroscopy.通过时间分辨偏振傅里叶变换红外光谱法测量细菌视紫红质在光循环过程中的结构变化。
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10
Vibrational spectroscopy of bacteriorhodopsin mutants: light-driven proton transport involves protonation changes of aspartic acid residues 85, 96, and 212.细菌视紫红质突变体的振动光谱:光驱动质子转运涉及天冬氨酸残基85、96和212的质子化变化。
Biochemistry. 1988 Nov 15;27(23):8516-20. doi: 10.1021/bi00423a002.

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7
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9
Further studies with isolated absolute infrared spectra of bacteriorhodopsin photocycle intermediates: conformational changes and possible role of a new proton-binding center.进一步研究菌紫质光循环中间体的分离绝对红外光谱:构象变化和新质子结合中心的可能作用。
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本文引用的文献

1
Distributed kinetics of the charge movements in bacteriorhodopsin: evidence for conformational substates.细菌视紫红质中电荷运动的分布式动力学:构象亚基的证据。
Biophys J. 1988 Apr;53(4):623-33. doi: 10.1016/S0006-3495(88)83141-2.
2
High-sensitivity neutron diffraction of membranes: Location of the Schiff base end of the chromophore of bacteriorhodopsin.高灵敏度中子衍射膜:细菌视紫红质发色团的席夫碱末端的位置。
Proc Natl Acad Sci U S A. 1988 Apr;85(7):2146-50. doi: 10.1073/pnas.85.7.2146.
3
Simultaneous monitoring of light-induced changes in protein side-group protonation, chromophore isomerization, and backbone motion of bacteriorhodopsin by time-resolved Fourier-transform infrared spectroscopy.通过时间分辨傅里叶变换红外光谱法同时监测光诱导的细菌视紫红质蛋白质侧链质子化、发色团异构化和主链运动的变化。
Proc Natl Acad Sci U S A. 1990 Dec 15;87(24):9774-8. doi: 10.1073/pnas.87.24.9774.
4
Flash-induced kinetic infrared spectroscopy applied to biochemical systems.
Biophys Struct Mech. 1980;6(2):139-46. doi: 10.1007/BF00535750.
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Conformational changes of bacteriorhodopsin detected by Fourier transform infrared difference spectroscopy.傅里叶变换红外差示光谱法检测细菌视紫红质的构象变化。
Biochem Biophys Res Commun. 1981 Nov 30;103(2):483-9. doi: 10.1016/0006-291x(81)90478-2.
6
Fourier transform infrared difference spectroscopy of bacteriorhodopsin and its photoproducts.细菌视紫红质及其光产物的傅里叶变换红外差光谱
Proc Natl Acad Sci U S A. 1982 Aug;79(16):4972-6. doi: 10.1073/pnas.79.16.4972.
7
Infrared evidence that the Schiff base of bacteriorhodopsin is protonated: bR570 and K intermediates.细菌视紫红质席夫碱质子化的红外证据:bR570和K中间体。
Proc Natl Acad Sci U S A. 1982 Jul;79(13):4045-9. doi: 10.1073/pnas.79.13.4045.
8
Investigation of the primary photochemistry of bacteriorhodopsin by low-temperature Fourier-transform infrared spectroscopy.利用低温傅里叶变换红外光谱法研究细菌视紫红质的初级光化学过程。
Eur J Biochem. 1983 Feb 15;130(3):565-73. doi: 10.1111/j.1432-1033.1983.tb07187.x.
9
Resonance Raman spectra of bacteriorhodopsin's primary photoproduct: evidence for a distorted 13-cis retinal chromophore.细菌视紫红质初级光产物的共振拉曼光谱:13-顺式视黄醛发色团扭曲的证据。
Proc Natl Acad Sci U S A. 1982 Jan;79(2):403-7. doi: 10.1073/pnas.79.2.403.
10
Determination of retinal chromophore structure in bacteriorhodopsin with resonance Raman spectroscopy.利用共振拉曼光谱法测定细菌视紫红质中视网膜发色团的结构。
J Membr Biol. 1985;85(2):95-109. doi: 10.1007/BF01871263.

细菌视紫红质光循环中的蛋白质动力学:L、M和N光中间体的亚毫秒级傅里叶变换红外光谱

Protein dynamics in the bacteriorhodopsin photocycle: submillisecond Fourier transform infrared spectra of the L, M, and N photointermediates.

作者信息

Braiman M S, Bousché O, Rothschild K J

机构信息

Department of Biochemistry, University of Virginia Health Sciences Center, Charlottesville 22908.

出版信息

Proc Natl Acad Sci U S A. 1991 Mar 15;88(6):2388-92. doi: 10.1073/pnas.88.6.2388.

DOI:10.1073/pnas.88.6.2388
PMID:2006176
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC51237/
Abstract

The usefulness of stroboscopic time-resolved Fourier transform IR spectroscopy for studying the dynamics of biological systems is demonstrated. By using this technique, we have obtained broadband IR absorbance difference spectra after photolysis of bacteriorhodospin with a time resolution of approximately 50 microseconds, spectral resolution of 4 cm-1, and a detection limit of delta A less than or equal to 10(-4). These capabilities permit observation of detailed structural changes in individual residues as bacteriorhodopsin passes through its L, M, and N intermediate states near physiological temperatures. When combined with band assignments based on isotope labeling and site-directed mutagenesis, the stroboscopic Fourier transform IR difference spectra show that on the time scale of the L intermediate, Asp-96 has an altered environment that may be accompanied by change in its protonation state. On the time scale of the L----M transition, this Asp-96 perturbation/deprotonation is largely reversed, and Asp-85 becomes protonated. During the M----N transition, Asp-85 appears to remain protonated but undergoes a change in its environment as evidenced by a shift of vC = O from 1761 to 1755 cm-1. The retention of a proton on Asp-85 in the N state indicates that the proton transferred from the Schiff base to this residue in the L----M step is not released to the extracellular medium during the same photocycle, but rather during a subsequent one. Also during the M----N transition, Asp-96 undergoes a deprotonation (possibly for the second time in a single photocycle). Bands in the amide I and amide II spectral regions in the M----N difference spectrum indicate the occurrence of a conformational change involving one or more peptide groups in the protein backbone.

摘要

频闪时间分辨傅里叶变换红外光谱法在研究生物系统动力学方面的实用性得到了证明。通过使用该技术,我们在光解细菌视紫红质后获得了宽带红外吸光度差光谱,其时间分辨率约为50微秒,光谱分辨率为4厘米-1,检测限为ΔA≤10^(-4)。这些能力使我们能够观察到在生理温度附近细菌视紫红质通过其L、M和N中间态时单个残基的详细结构变化。当与基于同位素标记和定点诱变的谱带归属相结合时,频闪傅里叶变换红外差光谱表明,在L中间体的时间尺度上,天冬氨酸-96的环境发生了改变,这可能伴随着其质子化状态的变化。在L→M转变的时间尺度上,这种天冬氨酸-96的扰动/去质子化在很大程度上被逆转,天冬氨酸-85质子化。在M→N转变过程中,天冬氨酸-85似乎保持质子化状态,但环境发生了变化,这可由vC=O从1761厘米-1移至1755厘米-1证明。在N态中天冬氨酸-85上质子的保留表明,在L→M步骤中从席夫碱转移到该残基的质子在同一光循环中不会释放到细胞外介质中,而是在随后的光循环中释放。同样在M→N转变过程中,天冬氨酸-96发生去质子化(可能在单个光循环中第二次发生)。M→N差光谱中酰胺I和酰胺II光谱区域的谱带表明,蛋白质主链中一个或多个肽基团发生了构象变化。