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光诱导pH梯度对细菌视紫红质从紫色到蓝色以及从紫色到红色转变的影响。

Effect of a light-induced pH gradient on purple-to-blue and purple-to-red transitions of bacteriorhodopsin.

作者信息

Nasuda-Kouyama A, Fukuda K, Iio T, Kouyama T

机构信息

Institute of Physical and Chemical Research, Saitama, Japan.

出版信息

Biochemistry. 1990 Jul 24;29(29):6778-88. doi: 10.1021/bi00481a005.

Abstract

Bacteriorhodopsin-containing vesicles that were able to alkalize the extravesicular medium by greater than 1.5 pH units under illumination, i.e., inside-out vesicles, were reconstituted by reverse-phase evaporation with Halobacterium halobium polar lipids or exogenous phospholipids. Acid titration of a dark-adapted sample was accompanied by a color change from purple to blue (pKa = 2.5-4.5 in 0.15 M K2SO4), and alkali titration resulted in the formation of a red species absorbing maximally at 480 nm (pKa = 7 to greater than 9), the pKa values and the extents of these color changes being dependent on the nature of lipid. When a vesicle suspension at neutral or weakly acidic pH was irradiated by continuous light so that a large pH gradient was generated across the membrane, either a purple-to-blue or a purple-to-red transition took place. The light-induced purple-to-red transition was significant in an unbuffered vesicle suspension and correlated with the pH change in the extravesicular medium. The result suggests that the purple-to-red transition is driven from the extravesicular side, i.e., from the C-terminal membrane surface. In the presence of buffer molecules outside, the dominant color change induced in the light was the purple-to-blue transition, which seemed to be due to a large decrease in the intravesicular pH. But an apparently inconsistent result was obtained when the extravesicular medium was acidified by a HCl pulse, which was accompanied by a rapid color change to blue. We arrived at the following explanation: The two bR isomers, one containing all-trans-retinal and the other 13-cis-retinal, respond differently to pH changes in the extravesicular and the intravesicular medium. In this relation, full light adaptation was not achieved when the light-induced purple-to-blue transition was significant; i.e., only the 13-cis isomer is likely to respond to a pH change at the N-terminal membrane surface.

摘要

通过反相蒸发法,用嗜盐菌极性脂质或外源性磷脂重构了含细菌视紫红质的囊泡,这种囊泡在光照下能够使囊泡外介质的碱化程度超过1.5个pH单位,即内向外囊泡。对暗适应样品进行酸滴定伴随着颜色从紫色变为蓝色(在0.15 M K2SO4中pKa = 2.5 - 4.5),碱滴定则导致形成在480 nm处有最大吸收的红色物种(pKa = 7至大于9),这些颜色变化的pKa值和程度取决于脂质的性质。当中性或弱酸性pH的囊泡悬浮液受到连续光照从而在膜上产生大的pH梯度时,会发生从紫色到蓝色或从紫色到红色的转变。光诱导的从紫色到红色的转变在无缓冲的囊泡悬浮液中很明显,并且与囊泡外介质中的pH变化相关。结果表明,从紫色到红色的转变是从囊泡外侧,即从C端膜表面驱动的。在外部存在缓冲分子的情况下,光照诱导的主要颜色变化是从紫色到蓝色的转变,这似乎是由于囊泡内pH大幅下降所致。但是当通过HCl脉冲使囊泡外介质酸化时,得到了一个明显不一致的结果,此时伴随着快速的颜色变化为蓝色。我们得到了以下解释:两种细菌视紫红质异构体,一种含有全反式视黄醛,另一种含有13 - 顺式视黄醛,它们对囊泡外和囊泡内介质中的pH变化反应不同。在这方面,当光诱导的从紫色到蓝色的转变很明显时,并未实现完全的光适应;即只有13 - 顺式异构体可能对N端膜表面的pH变化作出反应。

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