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时间分辨步进扫描傅里叶变换红外(FTIR)光谱揭示的细菌视紫红质L和M光循环中间体中的水结构变化。

Water structural changes in the L and M photocycle intermediates of bacteriorhodopsin as revealed by time-resolved step-scan Fourier transform infrared (FTIR) spectroscopy.

作者信息

Morgan Joel E, Vakkasoglu Ahmet S, Gennis Robert B, Maeda Akio

机构信息

Department of Biology, Center for Biotechnology and Interdisciplinary Studies, Room 2237, Rensselaer Polytechnic Institute, 110 Eighth Street, Troy, New York 12180, USA.

出版信息

Biochemistry. 2007 Mar 13;46(10):2787-96. doi: 10.1021/bi0616596. Epub 2007 Feb 15.

Abstract

In previous Fourier transform infrared (FTIR) studies of the photocycle intermediates of bacteriorhodopsin at cryogenic temperatures, water molecules were observed in the L intermediate, in the region surrounded by protein residues between the Schiff base and Asp96. In the M intermediate, the water molecules had moved away toward the Phe219-Thr46 region. To evaluate the relevance of this scheme at room temperature, time-resolved FTIR difference spectra of bacteriorhodopsin, including the water O-H stretching vibration frequency regions, were recorded in the micro- and millisecond time ranges. Vibrational changes of weakly hydrogen-bonded water molecules were observed in L, M, and N. In each of these intermediates, the depletion of a water O-H stretching vibration at 3645 cm-1, originating from the initial unphotolyzed bacteriorhodopsin, was observed as a trough in the difference spectrum. This vibration is due to the dangling O-H group of a water molecule, which interacts with Asp85, and its absence in each of these intermediates indicates that there is perturbation of this O-H group. The formation of M is accompanied by the appearance of water O-H stretching vibrations at 3670 and 3657 cm-1, the latter of which persists to N. The 3670 cm-1 band of M is due to water molecules present in the region surrounded by Thr46, Asp96, and Phe219. The formation of L at 298 K is accompanied by the perturbations of Asp96 and the Schiff base, although in different ways from what is observed at 170 K. Changes in a broad water vibrational feature, centered around 3610 cm-1, are kinetically correlated with the L-M transition. These results imply that, even at room temperature, water molecules interact with Asp96 and the Schiff base in L, although with a less rigid structure than at cryogenic temperatures.

摘要

在之前对嗜盐菌视紫红质光循环中间体进行的低温傅里叶变换红外(FTIR)研究中,在L中间体中,即在席夫碱和天冬氨酸96之间被蛋白质残基包围的区域观察到了水分子。在M中间体中,水分子朝着苯丙氨酸219 - 苏氨酸46区域移动。为了评估该机制在室温下的相关性,在微秒和毫秒时间范围内记录了嗜盐菌视紫红质的时间分辨FTIR差谱,包括水的O - H伸缩振动频率区域。在L、M和N中间体中均观察到了弱氢键合水分子的振动变化。在这些中间体的每一个中,源于初始未光解的嗜盐菌视紫红质的3645 cm⁻¹处水的O - H伸缩振动的耗尽,在差谱中表现为一个波谷。这种振动归因于与天冬氨酸85相互作用的水分子的悬空O - H基团,而在这些中间体的每一个中该基团的缺失表明该O - H基团受到了扰动。M的形成伴随着3670和3657 cm⁻¹处水的O - H伸缩振动的出现,后者持续到N中间体。M的3670 cm⁻¹谱带归因于存在于苏氨酸46、天冬氨酸96和苯丙氨酸219所包围区域的水分子。在298 K下L的形成伴随着天冬氨酸96和席夫碱的扰动,尽管与在170 K下观察到的方式不同。以3610 cm⁻¹为中心的宽水振动特征的变化在动力学上与L - M转变相关。这些结果表明,即使在室温下,水分子在L中间体中也与天冬氨酸96和席夫碱相互作用,尽管其结构刚性不如低温时。

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