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谷氨酸204是细菌视紫红质细胞外表面的末端质子释放基团。

Glutamic acid 204 is the terminal proton release group at the extracellular surface of bacteriorhodopsin.

作者信息

Brown L S, Sasaki J, Kandori H, Maeda A, Needleman R, Lanyi J K

机构信息

Department of Physiology and Biophysics, University of California, Irvine 92717, USA.

出版信息

J Biol Chem. 1995 Nov 10;270(45):27122-6. doi: 10.1074/jbc.270.45.27122.

DOI:10.1074/jbc.270.45.27122
PMID:7592966
Abstract

We have measured proton release into the medium after proton transfer from the retinal Schiff base to Asp85 in the photocycle and the C = O stretch bands of carboxylic acids in wild type bacteriorhodopsin and the E204Q and E204D mutants. In E204Q, but not in E204D, the normal proton release is absent. Consistent with this, a negative band in the Fourier transform infrared difference spectra at 1700 cm-1 in the wild type, which we now attribute to depletion of the protonated E204, is also absent in E204Q. In E204D, this band is shifted to 1714 cm-1, as expected from the higher frequency for a protonated aspartic than for a glutamic acid. Consistent with their origin from protonated carboxyls, the depletion bands in the wild type and E204D shift in D2O to 1690 and 1703 cm-1, respectively. In the protein structure, Glu204 seems to be connected to the Schiff base region by a chain of hydrogen-bonded water. As with other residues closer to the Schiff base, replacement of Glu204 with glutamine changes the O-H stretch frequency of the bound water molecule near Asp85 that undergoes hydrogen-bonding change in the photocycle. The results therefore identify Glu204 as XH, the earlier postulated residue that is the source of the released proton during the transport, and suggest that its deprotonation is triggered by the protonation of Asp85 through a network that contains water dipoles.

摘要

我们已经测量了在光循环中质子从视黄醛席夫碱转移到Asp85后质子释放到介质中的情况,以及野生型细菌视紫红质、E204Q和E204D突变体中羧酸的C=O伸缩带。在E204Q中,但不在E204D中,正常的质子释放不存在。与此一致的是,野生型中在1700 cm-1处的傅里叶变换红外差谱中的负带(我们现在将其归因于质子化的E204的耗尽)在E204Q中也不存在。在E204D中,该带移至1714 cm-1,正如质子化天冬氨酸比谷氨酸频率更高所预期的那样。与它们源自质子化羧基一致,野生型和E204D中的耗尽带在D2O中分别移至1690和1703 cm-1。在蛋白质结构中,Glu204似乎通过氢键连接的水链与席夫碱区域相连。与其他更靠近席夫碱的残基一样,用谷氨酰胺取代Glu204会改变靠近Asp85的结合水分子的O-H伸缩频率,该水分子在光循环中会发生氢键变化。因此,结果确定Glu204为XH,即先前推测的在转运过程中释放质子的来源残基,并表明其去质子化是由Asp85通过包含水偶极子的网络质子化触发的。

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