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双分子脂膜中细菌视紫红质产生光电位及其调节机制。

Mechanism of generation and regulation of photopotential by bacteriorhodopsin in bimolecular lipid membrane.

作者信息

Ormos P, Dancsházy Z, Karvaly B

出版信息

Biochim Biophys Acta. 1978 Aug 8;503(2):304-15. doi: 10.1016/0005-2728(78)90190-1.

Abstract

Photoelectric properties of bacteriorhodopsin incorporated into a bimolecular lipid membrane were investigated with special regard to the mechanism of photoelectric field generation. It was shown that besides its proton pump and electric generator functions bacteriorhodopsin works as a possible molecular regulator of the light-induced membrane potential. When a bimolecular lipid membrane containing bacteriorhodopsin is continuously illuminated in its main visible absorption band, and afterwards by superimposed blue light matching the absorption band of the long-living photobleached bacteriorhodopsin (M412) as well, the latter either enhances or decreases the steady-state photoresponse, depending upon the intensity of the green light. Thus, the additional blue-light illumination tends to cause the resultant photoelectric membrane potential to become stabilized. Two alternative schemes are tentatively proposed for the photochemical cycle of bacteriorhodopsin whereby blue light can control photovoltage generation. A kinetic model of the proton pump and the regulation of the photoelectric membrane potential is presented. This model fits all the experimental findings, even quantitatively. From the model some kinetic and physical parameters of this light-driven pump could be determined.

摘要

研究了掺入双分子脂质膜中的细菌视紫红质的光电特性,特别关注了光电场产生的机制。结果表明,除了其质子泵和发电机功能外,细菌视紫红质还可能作为光诱导膜电位的分子调节剂发挥作用。当含有细菌视紫红质的双分子脂质膜在其主要可见吸收带中持续照射,然后再通过叠加与长寿命光漂白细菌视紫红质(M412)的吸收带匹配的蓝光照射时,根据绿光的强度,后者会增强或降低稳态光响应。因此,额外的蓝光照射倾向于使产生的光电膜电位趋于稳定。初步提出了两种细菌视紫红质光化学循环的替代方案,据此蓝光可以控制光电压的产生。提出了质子泵的动力学模型以及光电膜电位的调节模型。该模型甚至在定量上也符合所有实验结果。从该模型可以确定这种光驱动泵的一些动力学和物理参数。

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