Mn-porphyrins in a four-helix bundle participate in photo-induced electron transfer with a bacterial reaction center.

IF 2.9 3区 生物学 Q2 PLANT SCIENCES
J C Williams, M S Faillace, E J Gonzalez, R E Dominguez, K Knappenberger, D A Heredia, T A Moore, A L Moore, J P Allen
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Abstract

Hybrid complexes incorporating synthetic Mn-porphyrins into an artificial four-helix bundle domain of bacterial reaction centers created a system to investigate new electron transfer pathways. The reactions were initiated by illumination of the bacterial reaction centers, whose primary photochemistry involves electron transfer from the bacteriochlorophyll dimer through a series of electron acceptors to the quinone electron acceptors. Porphyrins with diphenyl, dimesityl, or fluorinated substituents were synthesized containing either Mn or Zn. Electrochemical measurements revealed potentials for Mn(III)/Mn(II) transitions that are ~ 0.4 V higher for the fluorinated Mn-porphyrins than the diphenyl and dimesityl Mn-porphyrins. The synthetic porphyrins were introduced into the proteins by binding to a four-helix bundle domain that was genetically fused to the reaction center. Light excitation of the bacteriochlorophyll dimer of the reaction center resulted in new derivative signals, in the 400 to 450 nm region of light-minus-dark spectra, that are consistent with oxidation of the fluorinated Mn(II) porphyrins and reduction of the diphenyl and dimesityl Mn(III) porphyrins. These features recovered in the dark and were not observed in the Zn(II) porphyrins. The amplitudes of the signals were dependent upon the oxidation/reduction midpoint potentials of the bacteriochlorophyll dimer. These results are interpreted as photo-induced charge-separation processes resulting in redox changes of the Mn-porphyrins, demonstrating the utility of the hybrid artificial reaction center system to establish design guidelines for novel electron transfer reactions.

Abstract Image

四螺旋束中的Mn卟啉参与与细菌反应中心的光诱导电子转移。
将合成的锰卟啉结合到细菌反应中心的人工四螺旋束结构域中的杂化复合物创造了一个研究新电子转移途径的系统。反应是由细菌反应中心的光照引发的,其主要光化学涉及从细菌叶绿素二聚体通过一系列电子受体到醌电子受体的电子转移。合成了含有Mn或Zn的具有二苯基、二甲基或氟化取代基的卟啉。电化学测量揭示了Mn(III)/Mn(II)跃迁的电势 ~ 氟化的Mn卟啉比二苯基和二甲基Mn卟啉高0.4V。合成卟啉通过与四螺旋束结构域结合而被引入蛋白质中,该结构域与反应中心基因融合。反应中心的细菌叶绿素二聚体的光激发在光减去暗光谱的400至450nm区域中产生新的衍生物信号,其与氟化Mn(II)卟啉的氧化和二苯基和二甲基Mn(III)卟啉的还原一致。这些特征在黑暗中恢复,并且在Zn(II)卟啉中没有观察到。信号的幅度取决于细菌叶绿素二聚体的氧化/还原中点电位。这些结果被解释为光诱导的电荷分离过程导致Mn卟啉的氧化还原变化,证明了混合人工反应中心系统在建立新型电子转移反应设计指南方面的实用性。
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来源期刊
Photosynthesis Research
Photosynthesis Research 生物-植物科学
CiteScore
6.90
自引率
8.10%
发文量
91
审稿时长
4.5 months
期刊介绍: Photosynthesis Research is an international journal open to papers of merit dealing with both basic and applied aspects of photosynthesis. It covers all aspects of photosynthesis research, including, but not limited to, light absorption and emission, excitation energy transfer, primary photochemistry, model systems, membrane components, protein complexes, electron transport, photophosphorylation, carbon assimilation, regulatory phenomena, molecular biology, environmental and ecological aspects, photorespiration, and bacterial and algal photosynthesis.
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