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Resonance Raman spectra of bacteriorhodopsin mutants with substitutions at Asp-85, Asp-96, and Arg-82.

作者信息

Lin S W, Fodor S P, Miercke L J, Shand R F, Betlach M C, Stroud R M, Mathies R A

机构信息

Chemistry Department, University of California, Berkeley 94720.

出版信息

Photochem Photobiol. 1991 Mar;53(3):341-6. doi: 10.1111/j.1751-1097.1991.tb03638.x.

DOI:10.1111/j.1751-1097.1991.tb03638.x
PMID:2062880
Abstract

Detergent solubilized bacteriorhodopsin (BR) proteins which contain alterations made by site-directed mutagenesis (Asp-96----Asn, D96N; Asp-85----Asn, D85N; and Arg-82----Gln, R82Q) have been studied with resonance Raman spectroscopy. Raman spectra of the light-adapted (BRLA) and M species in D96N are identical to those of native BR, indicating that this residue is not located near the chromophore. The BRLA states of D85N and especially R82Q contain more of the 13-cis, C = N syn (BR555) species under ambient illumination compared to solubilized native BR. Replacement of Asp-85 with Asn causes a 25 nm red-shift of the absorption maximum and a frequency decrease in both the ethylenic (-7 cm-1) and the Schiff base C = NH+ (-3 cm-1) stretching modes of BRLA. These changes indicate that Asp-85 is located close to the protonated retinal Schiff base. The BRLA spectrum of R82Q exhibits a slight perturbation of the C = NH+ band, but its M spectrum is unperturbed. The Raman spectra and the absorption properties of D85N and R82Q suggest that the protein counterion environment involves the residues Asp-85-, Arg-82+ and presumably Asp-212-. These data are consistent with a model where the strength of the protein-chromophore interaction and hence the absorption maximum depends on the overall charge of the Schiff base counterion environment.

摘要

相似文献

1
Resonance Raman spectra of bacteriorhodopsin mutants with substitutions at Asp-85, Asp-96, and Arg-82.
Photochem Photobiol. 1991 Mar;53(3):341-6. doi: 10.1111/j.1751-1097.1991.tb03638.x.
2
Effects of Asp-96----Asn, Asp-85----Asn, and Arg-82----Gln single-site substitutions on the photocycle of bacteriorhodopsin.天冬氨酸96位替换为天冬酰胺、天冬氨酸85位替换为天冬酰胺以及精氨酸82位替换为谷氨酰胺对细菌视紫红质光循环的影响。
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3
Hydrogen bonding interactions with the Schiff base of bacteriorhodopsin. Resonance Raman spectroscopy of the mutants D85N and D85A.与细菌视紫红质席夫碱的氢键相互作用。突变体D85N和D85A的共振拉曼光谱。
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Anion binding to the Schiff base of the bacteriorhodopsin mutants Asp-85----Asn/Asp-212----Asn and Arg-82----Gln/Asp-85----Asn/Asp-212----Asn.阴离子与细菌视紫红质突变体Asp-85→Asn/Asp-212→Asn以及Arg-82→Gln/Asp-85→Asn/Asp-212→Asn的席夫碱结合。
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Substitution of amino acids Asp-85, Asp-212, and Arg-82 in bacteriorhodopsin affects the proton release phase of the pump and the pK of the Schiff base.细菌视紫红质中氨基酸天冬氨酸-85、天冬氨酸-212和精氨酸-82的取代会影响泵的质子释放阶段以及席夫碱的pK值。
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Alteration of conformation and dynamics of bacteriorhodopsin induced by protonation of Asp 85 and deprotonation of Schiff base as studied by 13C NMR.通过13C核磁共振研究天冬氨酸85质子化和席夫碱去质子化诱导的细菌视紫红质构象和动力学变化。
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引用本文的文献

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Two-dimensional crystallization of Escherichia coli-expressed bacteriorhodopsin and its D96N variant: high resolution structural studies in projection.大肠杆菌表达的细菌视紫红质及其D96N变体的二维结晶:投影中的高分辨率结构研究
Biophys J. 1993 Sep;65(3):1295-306. doi: 10.1016/S0006-3495(93)81169-X.
2
FTIR difference spectroscopy of bacteriorhodopsin: toward a molecular model.细菌视紫红质的傅里叶变换红外差示光谱:迈向分子模型
J Bioenerg Biomembr. 1992 Apr;24(2):147-67. doi: 10.1007/BF00762674.