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细菌视紫红质光循环中的光谱沉默跃迁。

Spectrally silent transitions in the bacteriorhodopsin photocycle.

作者信息

Chizhov I, Chernavskii D S, Engelhard M, Mueller K H, Zubov B V, Hess B

机构信息

Max-Planck-Institut für Molekulare Physiologie, Dortmund, Germany.

出版信息

Biophys J. 1996 Nov;71(5):2329-45. doi: 10.1016/S0006-3495(96)79475-4.

Abstract

The photocycle kinetics of bacteriorhodopsin were analyzed from 0 to 40 degrees C at 101 wavelengths (330-730 nm). The data can be satisfactorily approximated by eight exponents. The slowest component (half-time 20 ms at 20 degrees C) belongs to the 13-cis cycle. The residual seven exponentials that are sufficient to describe the all-trans photocycle indicate that at least seven intermediates of the all-trans cycle must exist, although only five spectrally distinct species (K, L, M, N, and O) have been identified. These seven exponentials and their spectra at different temperatures provide the basis for the discussion of various kinetic schemes of the relaxation. The simplest model of irreversible sequential transitions includes after the first K--> L step the quasiequilibria of L<-->M, M<-->N, and N<-->O intermediates. These quasiequilibria are controlled by rate-limiting dynamics of the protein and/or proton transfer steps outside the chromophore region. Thus there exists an apparent kinetic paradox (i.e., why is the number of exponents of relaxation (at least seven) higher than the number of distinct spectral intermediates (only five)), which can be explained by assuming that some of the transitions correspond to changes in the quasiequilibria between spectrally distinct intermediates (i.e., are spectrally silent).

摘要

在101个波长(330 - 730纳米)下,分析了0至40摄氏度范围内细菌视紫红质的光循环动力学。数据可以用八个指数令人满意地近似。最慢的成分(20摄氏度下半衰期为20毫秒)属于13 - 顺式循环。描述全反式光循环的其余七个指数表明,全反式循环中至少必须存在七个中间体,尽管仅鉴定出五个光谱上不同的物种(K、L、M、N和O)。这些七个指数及其在不同温度下的光谱为讨论各种弛豫动力学方案提供了基础。不可逆顺序转变的最简单模型在第一个K→L步骤之后包括L⇆M、M⇆N和N⇆O中间体的准平衡。这些准平衡由蛋白质的限速动力学和/或发色团区域之外的质子转移步骤控制。因此存在一个明显的动力学悖论(即,为什么弛豫的指数数量(至少七个)高于不同光谱中间体的数量(仅五个)),这可以通过假设一些转变对应于光谱上不同中间体之间准平衡的变化(即光谱上无信号)来解释。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fe8e/1233723/a1540ef805fd/biophysj00041-0094-a.jpg

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