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对微生物视紫红质的蛋白质功能和吸收波长的见解。

Insights into the Protein Functions and Absorption Wavelengths of Microbial Rhodopsins.

作者信息

Tsujimura Masaki, Ishikita Hiroshi

机构信息

Department of Applied Chemistry, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8654, Japan.

Research Center for Advanced Science and Technology, The University of Tokyo, 4-6-1 Komaba, Meguro-ku, Tokyo 153-8904, Japan.

出版信息

J Phys Chem B. 2020 Dec 31;124(52):11819-11826. doi: 10.1021/acs.jpcb.0c08910. Epub 2020 Nov 25.

Abstract

Using a quantum mechanical/molecular mechanical approach, the absorption wavelength of the retinal Schiff base was calculated based on 13 microbial rhodopsin crystal structures. The results showed that the protein electrostatic environment decreases the absorption wavelength significantly in the cation-conducting rhodopsin but only slightly in the sensory rhodopsin. Among the microbial rhodopsins with different functions, the differences in the absorption wavelengths are caused by differences in the arrangement of the charged residues at the retinal Schiff base binding moiety, namely, one or two counterions at the three common positions. Among the microbial rhodopsins with similar functions, the differences in the polar residues at the retinal Schiff base binding site are responsible for the differences in the absorption wavelengths. Counterions contribute to an absorption wavelength shift of 50-120 nm, whereas polar groups contribute to a shift of up to ∼10 nm. It seems likely that protein function is directly associated with the absorption wavelength in microbial rhodopsins.

摘要

采用量子力学/分子力学方法,基于13种微生物视紫红质晶体结构计算了视黄醛席夫碱的吸收波长。结果表明,蛋白质静电环境在阳离子传导视紫红质中显著降低吸收波长,而在感官视紫红质中仅略有降低。在具有不同功能的微生物视紫红质中,吸收波长的差异是由视黄醛席夫碱结合部分带电残基的排列差异引起的,即在三个常见位置上有一个或两个抗衡离子。在具有相似功能的微生物视紫红质中,视黄醛席夫碱结合位点极性残基的差异导致了吸收波长的差异。抗衡离子导致吸收波长偏移50 - 120 nm,而极性基团导致的偏移高达约10 nm。在微生物视紫红质中,蛋白质功能似乎与吸收波长直接相关。

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