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基于瞬态自由基的光学吸收和磁场效应的成像。

Optical Absorption and Magnetic Field Effect Based Imaging of Transient Radicals.

机构信息

Graduate School of Arts and Sciences, The University of Tokyo, 3-8-1 Komaba, Meguro-ku (Japan).

出版信息

Angew Chem Int Ed Engl. 2015 Jul 13;54(29):8494-7. doi: 10.1002/anie.201502591. Epub 2015 Jun 3.

Abstract

Short-lived radicals generated in the photoexcitation of flavin adenine dinucleotide (FAD) in aqueous solution at low pH are detected with high sensitivity and spatial resolution using a newly developed transient optical absorption detection (TOAD) imaging microscope. Radicals can be studied under both flash photolysis and continuous irradiation conditions, providing a means of directly probing potential biological magnetoreception within sub-cellular structures. Direct spatial imaging of magnetic field effects (MFEs) by magnetic intensity modulation (MIM) imaging is demonstrated along with transfer and inversion of the magnetic field sensitivity of the flavin semiquinone radical concentration to that of the ground state of the flavin under strongly pumped reaction cycling conditions. A low field effect (LFE) on the flavin semiquinone-adenine radical pair is resolved for the first time, with important implications for biological magnetoreception through the radical pair mechanism.

摘要

在低 pH 值的水溶液中,黄素腺嘌呤二核苷酸(FAD)的光激发会产生短寿命自由基,我们使用新开发的瞬态光吸收检测(TOAD)成像显微镜,以高灵敏度和空间分辨率对其进行检测。在闪光光解和连续辐照条件下都可以研究自由基,这为直接探测亚细胞结构内潜在的生物磁受体提供了一种手段。通过磁场强度调制(MIM)成像,我们展示了磁场效应(MFEs)的直接空间成像,以及在强泵浦反应循环条件下,黄素半醌自由基浓度的磁场灵敏度向黄素基态的转移和反转。我们首次解析了黄素半醌-腺嘌呤自由基对的低场效应(LFE),这对通过自由基对机制进行生物磁受体具有重要意义。

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