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细菌视紫红质的双光子吸收:形成红移热稳定光产物F620。

Two-photon absorption of bacteriorhodopsin: formation of a red-shifted thermally stable photoproduct F620.

作者信息

Fischer Thorsten, Hampp Norbert A

机构信息

University of Marburg, Department of Chemistry, Germany.

出版信息

Biophys J. 2005 Aug;89(2):1175-82. doi: 10.1529/biophysj.104.055806. Epub 2005 May 13.

Abstract

By means of high-intensity 532 nm laser pulses, a photochemical conversion of the initial B(570) state of bacteriorhodopsin (BR) to a stable photoproduct absorbing maximally at approximately 620 nm in BR suspensions and at approximately 610 nm in BR films is induced. This state, which we named F(620), is photochemically further converted to a group of three products with maximal absorptions in the wavelength range from 340 nm to 380 nm, which show identical spectral properties to the so-called P(360) state reported in the literature. The photoconversion from B(570) to F(620) is most likely a resonant two-photon absorption induced step. The formation of F(620) and P(360) leads to a distinguished photo-induced permanent optical anisotropy in BR films. The spectral dependence of the photo-induced anisotropy and the anisotropy orientations at the educt (B(570)) and product (F(620)) wavelengths are strong indicators that F(620) is formed in a direct photochemical step from B(570). The chemical nature of the P(360) products probably is that of a retro-retinal containing BR, but the structural characteristics of the F(620) state are still unclear. The photo-induced permanent anisotropy induced by short laser pulses in BR films helps to better understand the photochemical pathways related to this transition, and it is interesting in view of potential applications as this feature is the molecular basis for permanent optical data storage using BR films.

摘要

通过高强度532 nm激光脉冲,可诱导细菌视紫红质(BR)初始的B(570)态在BR悬浮液中光化学转化为在约620 nm处有最大吸收的稳定光产物,在BR薄膜中则在约610 nm处有最大吸收。我们将此状态命名为F(620),它在光化学上进一步转化为一组三种产物,其最大吸收在340 nm至380 nm波长范围内,这些产物与文献中报道的所谓P(360)态具有相同的光谱特性。从B(570)到F(620)的光转化很可能是一个共振双光子吸收诱导步骤。F(620)和P(360)的形成导致BR薄膜中出现显著的光致永久光学各向异性。光致各向异性的光谱依赖性以及在反应物(B(570))和产物(F(620))波长处的各向异性取向强烈表明F(620)是由B(570)通过直接光化学步骤形成的。P(360)产物的化学性质可能是含有视黄醛的BR的性质,但F(620)态的结构特征仍不清楚。短激光脉冲在BR薄膜中诱导的光致永久各向异性有助于更好地理解与这种转变相关的光化学途径,并且鉴于其潜在应用,这一特性作为使用BR薄膜进行永久光学数据存储的分子基础,是很有趣的。

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