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本文引用的文献

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Electron tunneling pathways and role of adenine in repair of cyclobutane pyrimidine dimer by DNA photolyase.电子隧道途径和腺嘌呤在 DNA 光解酶修复环丁烷嘧啶二聚体中的作用。
J Am Chem Soc. 2012 May 16;134(19):8104-14. doi: 10.1021/ja2105009. Epub 2012 May 4.
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Light helps bacteria make important lifestyle decisions.光帮助细菌做出重要的生活方式决策。
Trends Microbiol. 2011 Sep;19(9):441-8. doi: 10.1016/j.tim.2011.05.002. Epub 2011 Jun 12.
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The hydrogen-bond switch reaction of the Blrb Bluf domain of Rhodobacter sphaeroides.Rhodobacter sphaeroides Blrb Bluf 结构域的氢键开关反应。
J Phys Chem B. 2011 Jun 23;115(24):7963-71. doi: 10.1021/jp201296m. Epub 2011 May 31.
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Modeling the light- and redox-dependent interaction of PpsR/AppA in Rhodobacter sphaeroides.在球形红杆菌中模拟 PpsR/AppA 的光依赖和氧化还原依赖相互作用。
Biophys J. 2011 May 18;100(10):2347-55. doi: 10.1016/j.bpj.2011.04.017.
5
Proton coupled electron transfer and redox active tyrosines in Photosystem II.光系统 II 中的质子偶联电子转移和氧化还原活性酪氨酸。
J Photochem Photobiol B. 2011 Jul-Aug;104(1-2):60-71. doi: 10.1016/j.jphotobiol.2011.01.026. Epub 2011 Mar 17.
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Light-generated paramagnetic intermediates in BLUF domains.BLUF 结构域中的光致顺磁中间体。
Photochem Photobiol. 2011 May-Jun;87(3):574-83. doi: 10.1111/j.1751-1097.2010.00885.x. Epub 2011 Jan 28.
7
Photoreaction in BLUF receptors: proton-coupled electron transfer in the flavin-Gln-Tyr system.BLUF 受体中的光反应:黄素-谷氨酰胺-酪氨酸系统中的质子耦合电子转移。
Photochem Photobiol. 2011 May-Jun;87(3):554-63. doi: 10.1111/j.1751-1097.2010.00884.x. Epub 2011 Jan 28.
8
PACα--an optogenetic tool for in vivo manipulation of cellular cAMP levels, neurotransmitter release, and behavior in Caenorhabditis elegans.PACα--一种光遗传学工具,用于在活体中操纵细胞 cAMP 水平、神经递质释放以及秀丽隐杆线虫的行为。
J Neurochem. 2011 Feb;116(4):616-25. doi: 10.1111/j.1471-4159.2010.07148.x. Epub 2011 Jan 20.
9
On the midpoint potential of the FAD chromophore in a BLUF-domain containing photoreceptor protein.BLUF 结构域含感光蛋白中 FAD 生色团的中点电势。
FEBS Lett. 2011 Jan 3;585(1):167-72. doi: 10.1016/j.febslet.2010.11.035. Epub 2010 Nov 24.
10
Light modulation of cellular cAMP by a small bacterial photoactivated adenylyl cyclase, bPAC, of the soil bacterium Beggiatoa.通过土壤细菌 Beggiatoa 的一种小型细菌光激活腺苷酸环化酶 bPAC 对细胞 cAMP 的光调节。
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黄素和酪氨酸的氧化还原调节决定 BLUF 光感受器的光诱导质子耦合电子转移和光激活。

Redox modulation of flavin and tyrosine determines photoinduced proton-coupled electron transfer and photoactivation of BLUF photoreceptors.

机构信息

Biophysics Group, Department of Physics and Astronomy, Faculty of Sciences, Vrije Universiteit, De Boelelaan 1081A, 1081 HV, Amsterdam, The Netherlands.

出版信息

J Biol Chem. 2012 Sep 14;287(38):31725-38. doi: 10.1074/jbc.M112.391896. Epub 2012 Jul 25.

DOI:10.1074/jbc.M112.391896
PMID:22833672
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3442507/
Abstract

Photoinduced electron transfer in biological systems, especially in proteins, is a highly intriguing matter. Its mechanistic details cannot be addressed by structural data obtained by crystallography alone because this provides only static information on a given redox system. In combination with transient spectroscopy and site-directed manipulation of the protein, however, a dynamic molecular picture of the ET process may be obtained. In BLUF (blue light sensors using FAD) photoreceptors, proton-coupled electron transfer between a tyrosine and the flavin cofactor is the key reaction to switch from a dark-adapted to a light-adapted state, which corresponds to the biological signaling state. Particularly puzzling is the fact that, although the various naturally occurring BLUF domains show little difference in the amino acid composition of the flavin binding pocket, the reaction rates of the forward reaction differ quite largely from a few ps up to several hundred ps. In this study, we modified the redox potential of the flavin/tyrosine redox pair by site-directed mutagenesis close to the flavin C2 carbonyl and fluorination of the tyrosine, respectively. We provide information on how changes in the redox potential of either reaction partner significantly influence photoinduced proton-coupled electron transfer. The altered redox potentials allowed us furthermore to experimentally describe an excited state charge transfer intermediately prior to electron transfer in the BLUF photocycle. Additionally, we show that the electron transfer rate directly correlates with the quantum yield of signaling state formation.

摘要

生物体系中(尤其是蛋白质中)的光诱导电子转移是一个非常有趣的问题。其反应机制的详细信息无法仅通过晶体学获得的结构数据来阐明,因为这只能提供给定氧化还原体系的静态信息。然而,结合瞬态光谱学和对蛋白质的定点操作,可以获得电子转移过程的动态分子图像。在 BLUF(使用 FAD 的蓝光传感器)光受体中,酪氨酸和黄素辅因子之间的质子耦合电子转移是从暗适应状态转换为光适应状态(对应于生物信号状态)的关键反应。特别令人困惑的是,尽管各种天然存在的 BLUF 结构域在黄素结合口袋的氨基酸组成上差异很小,但正向反应的速率却相差很大,从几个 ps 到几百 ps 不等。在这项研究中,我们通过定点突变分别接近黄素 C2 羰基和酪氨酸的氟取代,修饰了黄素/酪氨酸氧化还原对的氧化还原电位。我们提供了有关反应伙伴的氧化还原电位变化如何显著影响光诱导质子耦合电子转移的信息。改变的氧化还原电位使我们能够进一步在 BLUF 光循环中在电子转移之前的激发态电荷转移中间实验描述。此外,我们表明电子转移速率直接与信号状态形成的量子产率相关。