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Spectro-Temporal Characterization of the Photoactivation Mechanism of Two New Oxidized Cryptochrome/Photolyase Photoreceptors

机译:两种新的氧化隐色染料/光裂解酶感光器的光激活机理的光谱-时间表征

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摘要

The photoactivation dynamics of two new flavoproteins (OtCPF1 and OtCPF2) of the cryptochrome photolyase family (CPF), belonging to the green alga Ostreococcus tauri, was studied by broadband UV-vis femtosecond absorption spectroscopy. Upon excitation of the protein chromophoric cofactor, flavin adenine dinucleotide in its oxidized form (FAD_(ox)), we observed in both cases the ultrafast photoreduction of FAD_(ox): in 390 fs for OtCPF1 and 590 fs for OtCPF2. Although such ultrafast electron transfer has already been reported for other flavoproteins and CPF members, the present result is the first demonstration with full spectral characterization of the mechanism. Analysis of the photoproduct spectra allowed identifying tryptophan as the primary electron donor. This residue is found to be oxidized to its protonated radical cation form (WH~(·+), while FAD_(ox) is reduced to FAD~(·-). Subsequent kinetics were observed in the picosecond and subnanosecond regime, mostly described by a biexponential partial decay of the photoproduct transient signal (9 and 81 ps for OtCPF1, and 13 and 340 ps for OtCPF2), with reduced spectral changes, while a long-lived photoproduct remains in the nanosecond time scale. We interpret these observations within the model proposed by the groups of Brettel and Vos, which describes the photoreduction of FADH~· within E. coli CPD photolyase (EcCPD) as a sequential electron transfer along a chain of three tryptophan residues, although in that case the rate limiting step was the primary photoreduction in 30 ps. In the present study, excitation of FAD_(ox) permitted to reveal the following steps and spectroscopically assign them to the hole-hopping process along the tryptophan chain, accompanied by partial charge recombination at each step. In addition, structural analysis performed by homology modeling allowed us to propose a tentative structure of the relative orientations of FAD and the conserved tryptophan triad. The results of preliminary transient anisotropy measurements performed on OtCPF2 finally showed good compatibility with the oxidation of the distal tryptophan residue (WH_(351)) in 340 ps, hence, with the overall Brettel-Vos mechanism.
机译:通过宽带紫外可见飞秒吸收光谱法研究了隐色光解酶家族(CPF)的两个新的黄素蛋白(OtCPF1和OtCPF2)的光活化动力学,它们属于绿藻tastorcoccus tauri。激发蛋白发色辅因子黄素腺嘌呤二核苷酸的氧化形式(FAD_(ox))后,我们在两种情况下均观察到FAD_(ox)的超快光还原:OtCPF1的光还原速度为390 fs,OtCPF2的光还原速度为590 fs。尽管已经报道了其他黄素蛋白和CPF成员的这种超快电子转移,但目前的结果是首次对该机理进行了全光谱表征。对光产物光谱的分析允许将色氨酸鉴定为主要电子供体。发现该残基被氧化成质子化的自由基阳离子形式(WH〜(·+),而FAD_(ox)被还原成FAD〜(·-)。随后在皮秒和亚纳秒范围内观察到动力学,主要描述为光产物瞬态信号的双指数部分衰减(OtCPF1分别为9和81 ps,OtCPF2为13和340 ps),光谱变化减小,而长寿命的光产物保留在纳秒级的时间范围内。由Brettel和Vos小组提出的模型,描述了大肠杆菌CPD光裂解酶(EcCPD)中FADH〜·的光还原是沿着三个色氨酸残基链的顺序电子转移,尽管在这种情况下限速步骤是在30 ps内进行一次光还原。在本研究中,激发FAD_(ox)可以揭示以下步骤,并在光谱上将它们分配给色氨酸链的空穴跳跃过程,并伴随部分电荷重组离子在每个步骤。此外,通过同源性建模进行的结构分析使我们能够提出FAD和保守的色氨酸三联体相对方向的暂定结构。在OtCPF2上进行的初步瞬态各向异性测量的结果最终表明与340 ps的远端色氨酸残基(WH_(351))的氧化具有良好的相容性,因此与整个Brettel-Vos机理兼容。

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  • 来源
    《Journal of the American Chemical Society》 |2010年第13期|p.4935-4945|共11页
  • 作者单位

    UMR 8640 CNRS-ENS-UPMC, Departement de Chimie, Ecole Normale Superieure, 24 rue Lhomond, 75005 Paris, France;

    UMR 8640 CNRS-ENS-UPMC, Departement de Chimie, Ecole Normale Superieure, 24 rue Lhomond, 75005 Paris, France;

    UMR 8640 CNRS-ENS-UPMC, Departement de Chimie, Ecole Normale Superieure, 24 rue Lhomond, 75005 Paris, France;

    UMR 8640 CNRS-ENS-UPMC, Departement de Chimie, Ecole Normale Superieure, 24 rue Lhomond, 75005 Paris, France;

    UMR 8640 CNRS-ENS-UPMC, Departement de Chimie, Ecole Normale Superieure, 24 rue Lhomond, 75005 Paris, France;

    UMR 8640 CNRS-ENS-UPMC, Departement de Chimie, Ecole Normale Superieure, 24 rue Lhomond, 75005 Paris, France;

    UMR 8601 CNRS, Laboratoire de Chimie et Biochimie Pharmacologies et Toxicologiques, Universite Paris Descartes, 12 rue de I'Ecole de medecine, 75006 Paris, France;

    UMR 8186 CNRS-ENS, Departement de Biologie, Ecole Normale Superieure, 46 rue d'Ulm, 75005 Paris, France;

    UMR 8186 CNRS-ENS, Departement de Biologie, Ecole Normale Superieure, 46 rue d'Ulm, 75005 Paris, France;

    UMR 8186 CNRS-ENS, Departement de Biologie, Ecole Normale Superieure, 46 rue d'Ulm, 75005 Paris, France;

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  • 入库时间 2022-08-18 03:15:28

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