Department of Chemistry and ‡Department of Molecular and Cell Biology, University of California-Davis , One Shields Avenue, Davis, California 95616, United States.
Biochemistry. 2014 Feb 18;53(6):1029-40. doi: 10.1021/bi4015538. Epub 2014 Feb 3.
Cyanobacteriochromes (CBCRs) are cyanobacterial photoreceptors distantly related to phytochromes. Like phytochromes, CBCRs photointerconvert between two photostates that accompany photoisomerization of their bilin chromophores. While phytochromes typically exhibit red/far-red photocycles, CBCR photocycles are much more diverse, spanning the near-ultraviolet and the entire visible region. All CBCRs described to date have a conserved Cys residue covalently attached to the linear tetrapyrrole (bilin) chromophore; two CBCR subfamilies also exploit a second thioether linkage to the chromophore for detection of near-ultraviolet to blue light. Here, we present the photodynamic analysis of the insert-Cys CBCR NpF2164g3, a representative of the second class of two-cysteine CBCRs. Using broadband transient absorption pump-probe spectroscopy, we characterize the primary (100 fs to 10 ns) and secondary (10 ns to 1 ms) photodynamics in both directions, examining photodynamics over nine decades of time. Primary isomerization dynamics occur on a ~10 ps time scale for both forward and reverse reactions. In contrast to previous studies on Tlr0924, a representative of the other class of two-cysteine CBCRs, formation and elimination of the second linkage are slower than the 1 ms experimental range probed here. These results extend our understanding of dual-cysteine CBCR photocycles in the phytochrome superfamily.
蓝藻藻胆体(CBCRs)是与光敏色素远缘相关的蓝藻光受体。与光敏色素一样,CBCRs 在其双吡咯发色团的光异构化伴随的两种光态之间光互变。虽然光敏色素通常表现出红/远红光循环,但 CBCR 光循环更加多样化,涵盖近紫外光和整个可见光区域。迄今为止描述的所有 CBCRs 都具有保守的半胱氨酸残基与线性四吡咯(藻胆素)发色团共价连接;两个 CBCR 亚家族还利用第二个硫醚键与发色团结合,用于检测近紫外到蓝光。在这里,我们介绍了插入半胱氨酸的 CBCR NpF2164g3 的光动力分析,它是第二类双半胱氨酸 CBCR 的代表。使用宽带瞬态吸收泵浦探针光谱法,我们在两个方向上表征了主要(100 fs 到 10 ns)和次要(10 ns 到 1 ms)光动力学,检查了九个时间数量级的光动力学。正向和反向反应的主要异构化动力学都发生在~10 ps 的时间尺度上。与其他类双半胱氨酸 CBCR Tlr0924 的先前研究相比,第二个键的形成和消除比这里探测到的 1 ms 实验范围慢。这些结果扩展了我们对植物色素超家族中双半胱氨酸 CBCR 光循环的理解。