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细菌视紫红质从光适应状态到暗适应状态的光转换。

Photoconversion from the light-adapted to the dark-adapted state of bacteriorhodopsin.

作者信息

Kouyama T, Bogomolni R A, Stoeckenius W

出版信息

Biophys J. 1985 Aug;48(2):201-8. doi: 10.1016/S0006-3495(85)83773-5.

Abstract

Dark and light adaptation of bacteriorhodopsin in purple membrane multilayers at less than 100% relative humidity differs from that seen in suspensions. Equilibrium between the two bacteriorhodopsin isomers (bR cis 550 and bR trans 570) in the light-adapted state becomes dependent on the wavelength of actinic light. Excitation at the red edge of the visible absorption band causes dark adaptation in a light-adapted sample. Using polarized actinic and measuring light, we show that acceleration of the dark adaptation through heating by actinic light cannot explain this observation. A light-driven bR trans 570 to bR cis 550 reaction that competes with the well-known 13 cis-to-all-trans light adaptation reaction must exist under our experimental conditions. Trans-to-cis conversion is a one-photon process distinct from the two photon process observed by others in purple membrane suspensions (Sperling, W., C. N. Rafferty, K. D. Kohl, and N. A. Dencher, 1978, FEBS (Fed. Eur. Biochem. Soc.) Lett. 97:129-132). Its quantum efficiency increases monotonously on reducing the hydration level, and is paralleled by an increase in the lifetime of the M410 intermediate of the trans photocycle. We suggest that at this point a branch leads from the all-trans into the 13-cis photocycle. It is probably the same reaction that causes the reduced light adaptation in monomeric bacteriorhodopsin (Casadio, R., H. Gutowitz, P. Mowery, M. Taylor, and W. Stoeckenius, 1980, Biochim. Biophys. Acta. 590:13-23; Casadio, R., and W. Stoeckenius, 1980, Biochemistry. 19:3374-3381).

摘要

在相对湿度低于100%的紫色膜多层结构中,细菌视紫红质的暗适应和光适应与悬浮液中的情况不同。光适应状态下两种细菌视紫红质异构体(bR顺式550和bR反式570)之间的平衡变得依赖于光化光的波长。在可见吸收带的红边进行激发会使光适应样品发生暗适应。使用偏振光化光和测量光,我们表明光化光加热导致的暗适应加速无法解释这一现象。在我们的实验条件下,必定存在一个与著名的13-顺式到全反式光适应反应相竞争的光驱动bR反式570到bR顺式550反应。反式到顺式的转换是一个单光子过程,不同于其他人在紫色膜悬浮液中观察到的双光子过程(斯珀林,W.,C. N. 拉弗蒂,K. D. 科尔,和N. A. 登彻,1978年,欧洲生物化学联合会快报97:129 - 132)。其量子效率在降低水合水平时单调增加,并且与反式光循环中M410中间体寿命的增加平行。我们认为,此时有一个分支从全反式光循环通向13-顺式光循环。可能是同一个反应导致单体细菌视紫红质的光适应降低(卡萨迪奥,R.,H. 古托维茨,P. 莫韦里,M. 泰勒,和W. 斯托肯纽斯,1980年,生物化学与生物物理学报590:13 - 23;卡萨迪奥,R.,和W. 斯托肯纽斯,1980年,生物化学19:3374 - 3381)。

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