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向光蛋白LOV2结构域中保守的半胱氨酸对FMN基态电子结构的扰动。

Perturbation of the ground-state electronic structure of FMN by the conserved cysteine in phototropin LOV2 domains.

作者信息

Alexandre Maxime T A, van Grondelle Rienk, Hellingwerf Klaas J, Robert Bruno, Kennis John T M

机构信息

Department of Biophysics, Faculty of Sciences, Vrije Universiteit, De Boelelaan 1081, 1081HV, Amsterdam, The Netherlands.

出版信息

Phys Chem Chem Phys. 2008 Nov 28;10(44):6693-702. doi: 10.1039/b810040c. Epub 2008 Sep 30.

Abstract

In LOV2, the blue-light sensitive domain of phototropin, the primary photophysical event involves intersystem crossing (ISC) from the singlet-excited state to the triplet state. The ISC rate is enhanced in LOV2 as compared to flavin mononucleotide (FMN) in solution, which likely results from a heavy-atom effect of a nearby conserved cysteine, C450. Here, we applied fluorescence line narrowing (FLN), resonance Raman (RR) and Fourier-transform infrared (FTIR) spectroscopy to investigate the electronic structure of FMN bound to Avena sativa LOV2 (AsLOV2), its C450A mutant and Adiantum LOV2 (Phy3LOV2). We demonstrate that FLN is the method of choice to obtain accurate vibrational spectra on highly fluorescent flavoproteins. The vibrational spectrum of AsLOV2-C450A showed small but significant shifts with respect to those of wild type AsLOV2 and Phy3LOV2, with a systematic down-shift of Ring I vibrations, upshifts of Ring II and III vibrations and an upshift of the C2=O mode. These trends are similar to those in FMN model systems with an electron-donating group substituted at Ring I, known to induce a quinoid character to the electronic structure of oxidized flavin. Thus, enhancement of the ISC rate in LOV2 is induced through weak electron donation by the cysteine which mixes the FMN pi-electrons with the heavy sulfur orbitals, manifesting itself in a quinoid character of the ground electronic state of oxidized FMN. The proximity of the cysteine to FMN thus not only enables formation of a covalent adduct between FMN and cysteine, but also facilitates the rapid electronic formation of the reactive FMN triplet state.

摘要

在向光素的蓝光敏感结构域LOV2中,主要的光物理事件涉及从单重激发态到三重态的系间窜越(ISC)。与溶液中的黄素单核苷酸(FMN)相比,LOV2中的ISC速率有所提高,这可能是由于附近保守的半胱氨酸C450的重原子效应所致。在这里,我们应用了荧光线窄化(FLN)、共振拉曼(RR)和傅里叶变换红外(FTIR)光谱来研究与燕麦LOV2(AsLOV2)、其C450A突变体和铁线蕨LOV2(Phy3LOV2)结合的FMN的电子结构。我们证明,FLN是在高荧光黄素蛋白上获得准确振动光谱的首选方法。AsLOV2 - C450A的振动光谱与野生型AsLOV2和Phy3LOV2的振动光谱相比,显示出小但显著的位移,I环振动有系统的下移,II环和III环振动上移,C2 = O模式上移。这些趋势与在I环上有供电子基团取代的FMN模型系统中的趋势相似,已知这种取代会使氧化黄素的电子结构具有醌型特征。因此,LOV2中ISC速率的提高是由半胱氨酸的弱电子供体作用诱导的,半胱氨酸将FMN的π电子与重硫轨道混合,在氧化FMN基态的电子结构中表现为醌型特征。半胱氨酸与FMN的接近不仅使得FMN与半胱氨酸之间能够形成共价加合物,而且还促进了反应性FMN三重态的快速电子形成。

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