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嗜盐碱红菌感官视紫红质II中抗衡离子突变对光反应和受体激活的影响:傅里叶变换红外光谱研究

Consequences of counterion mutation in sensory rhodopsin II of Natronobacterium pharaonis for photoreaction and receptor activation: an FTIR study.

作者信息

Hein Michael, Radu Ionela, Klare Johann P, Engelhard Martin, Siebert Friedrich

机构信息

Sektion Biophysik, Institut für Molekulare Medizin und Zellforschung, Albert-Ludwigs-Universität, Hermann-Herderstrasse 9, 79104 Freiburg, Germany.

出版信息

Biochemistry. 2004 Feb 3;43(4):995-1002. doi: 10.1021/bi0354381.

Abstract

In many retinal proteins the proton transfer from the Schiff base to the counterion represents a functionally important step of the photoreaction. In the signaling state of sensory rhodopsin II from Natronobacterium pharaonis this transfer has already occurred, but in the counterion mutant Asp75Asn it is blocked during all steps of the photocycle. Therefore, the study of the molecular changes during the photoreaction of this mutant should provide a deeper understanding of the activation mechanism, and for this, we have applied time-resolved step-scan FTIR spectroscopy. The photoreaction is drastically altered; only red-shifted intermediates are formed with a chromophore strongly twisted around the 14-15 single bond. In addition, the photocycle is shortened by 2 orders of magnitude. Nevertheless, a transition involving only protein changes similar to that of the wild type is observed, which has been correlated with the formation of the signaling state. However, whereas in the wild type this transition occurs in the millisecond range, it is shortened to 200 micros in the mutant. The results are discussed with respect to the altered electrostatic interactions, role of proton transfer, the published 3D structure, and physiological activity.

摘要

在许多视网膜蛋白中,质子从席夫碱转移到抗衡离子是光反应中一个功能上重要的步骤。在嗜盐碱红菌的感官视紫红质II的信号状态下,这种转移已经发生,但在抗衡离子突变体Asp75Asn中,它在光循环的所有步骤中都被阻断。因此,研究该突变体光反应过程中的分子变化应该能更深入地理解激活机制,为此,我们应用了时间分辨步进扫描傅里叶变换红外光谱技术。光反应发生了巨大变化;只形成了红移中间体,发色团围绕14-15单键强烈扭曲。此外,光循环缩短了2个数量级。然而,观察到一个仅涉及与野生型类似的蛋白质变化的转变,这与信号状态的形成有关。然而,在野生型中,这种转变发生在毫秒范围内,而在突变体中缩短到了200微秒。结合改变的静电相互作用、质子转移的作用、已发表的三维结构和生理活性对结果进行了讨论。

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