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细菌视紫红质从紫色到蓝色的转变伴随着六方晶格的丧失和构象变化。

The purple to blue transition of bacteriorhodopsin is accompanied by a loss of the hexagonal lattice and a conformational change.

作者信息

Heyn M P, Dudda C, Otto H, Seiff F, Wallat I

机构信息

Department of Physics, Freie Universität Berlin, FRG.

出版信息

Biochemistry. 1989 Nov 14;28(23):9166-72. doi: 10.1021/bi00449a031.

DOI:10.1021/bi00449a031
PMID:2605250
Abstract

X-ray diffraction measurements show that in contrast to the purple membrane, the bacteriorhodopsin molecules are not organized in a hexagonal lattice in the deionized blue membrane. Addition of Ca2+ restores both the purple color and the normal (63 A) hexagonal protein lattice. In the blue state, the circular dichroism spectrum in the visible has the typical exciton features indicating that a trimeric structure is retained. Time-resolved linear dichroism measurements show that the blue patch rotates in aqueous suspension with a mean correlation time of 11 ms and provide no evidence for rotational mobility of bacteriorhodopsin within the membrane. The circular dichroism spectra of the blue and the Ca2+-regenerated purple state in the far-UV are different, indicating a small change in secondary structure. The thermal stability of the blue membrane is much smaller than that of the purple membrane. At pH 5.0, the irreversible denaturation transition of the blue form has a midpoint at 61 degrees C. The photocycle of the blue membrane (lambda ex 590 nm) has an L intermediate around 540 nm whose decay is slowed down into the millisecond time range (5 ms). Light-dark adaptation in the blue membrane is rapid with an exponential decay time of 38 s at 25 degrees C. The purple to blue transition apparently involves a conformational change in the protein leading to a change in the aggregation state from a highly ordered and stable hexagonal lattice to a disordered array of thermally more labile trimers.(ABSTRACT TRUNCATED AT 250 WORDS)

摘要

X射线衍射测量表明,与紫膜不同,去离子化蓝膜中的细菌视紫红质分子并非以六边形晶格形式排列。添加Ca2+可恢复紫色以及正常的(63埃)六边形蛋白质晶格。在蓝色状态下,可见光区域的圆二色光谱具有典型的激子特征,表明三聚体结构得以保留。时间分辨线性二色性测量表明,蓝色斑块在水悬浮液中旋转,平均相关时间为11毫秒,且未提供细菌视紫红质在膜内旋转流动性的证据。远紫外区域中蓝色和Ca2+再生紫色状态的圆二色光谱不同,表明二级结构有微小变化。蓝膜的热稳定性远低于紫膜。在pH 5.0时,蓝色形式的不可逆变性转变中点为61℃。蓝膜(激发波长590纳米)的光循环在540纳米左右有一个L中间体,其衰减减缓至毫秒时间范围(5毫秒)。蓝膜中的明暗适应很快,在25℃时指数衰减时间为38秒。从紫色到蓝色的转变显然涉及蛋白质的构象变化,导致聚集状态从高度有序且稳定的六边形晶格变为热稳定性较差的三聚体无序阵列。(摘要截选至250词)

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