Integrated Study of Fluorescence Enhancement in the Y176H Variant of Cyanobacterial Phytochrome Cph1.

IF 2.9 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Soshichiro Nagano, Chen Song, Valentin Rohr, Megan J Mackintosh, Oanh Tu Hoang, Anastasia Kraskov, Yang Yang, Jon Hughes, Karsten Heyne, Maria-Andrea Mroginski, Igor Schapiro, Peter Hildebrandt
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引用次数: 0

Abstract

Phytochromes are red-light-sensitive biliprotein photoreceptors that control a variety of physiological processes in plants, fungi, and bacteria. Lately, greater attention has been paid to these photoreceptors due to their potential as fluorescent probes for deep-tissue microscopy. Such fluorescing phytochromes have been generated by multiple amino acid substitutions in weakly fluorescent wild-type (WT) proteins. Remarkably, the single substitution of conserved Tyr176 by His in cyanobacterial phytochrome Cph1 increases the fluorescence quantum yield from 2.4 to 14.5%. In this work, we studied this Y176H variant by crystallography, MAS NMR, resonance Raman spectroscopy, and ultrafast absorption spectroscopy complemented by theoretical methods. Two factors were identified to account for the strong fluorescence increase. First, the equilibrium between the photoactive and fluorescent substates of WT Cph1 was shown to shift entirely to the fluorescent substate in Y176H. Second, structural flexibility of the chromophore is drastically reduced and the photoisomerization barrier is raised, thereby increasing the excited-state lifetime. The most striking finding, however, is that Y176H includes the structural properties of both the dark-adapted Pr and the light-activated Pfr state. While the chromophore adopts the Pr-typical ZZZssa configuration, the tongue segment of the protein adopts a Pfr-typical α-helical structure. This implies that Tyr176 plays a key role in coupling chromophore photoisomerization to the sheet-to-helix transition of the tongue and the final Pfr structure. This conclusion extends to plant phytochromes, where the homologous substitution causes light-independent signaling activity akin to that of Pfr.

蓝藻植物色素 Cph1 Y176H 变体的荧光增强综合研究
植物色素是一种对红光敏感的双蛋白光感受器,可控制植物、真菌和细菌的各种生理过程。最近,由于这些光感受器有可能成为深层组织显微镜的荧光探针,因此受到了更多的关注。这种荧光植物色素是通过对弱荧光野生型(WT)蛋白质进行多个氨基酸置换而产生的。值得注意的是,蓝藻植物色素 Cph1 中保守的 Tyr176 被 His 单个取代后,其荧光量子产率从 2.4% 提高到 14.5%。在这项工作中,我们通过晶体学、MAS NMR、共振拉曼光谱和超快吸收光谱,并辅以理论方法研究了这种 Y176H 变体。我们发现有两个因素可以解释荧光的强烈增强。首先,在 Y176H 中,WT Cph1 的光活性亚基和荧光亚基之间的平衡被证明完全转向了荧光亚基。其次,发色团的结构灵活性大大降低,光异构化障碍提高,从而延长了激发态寿命。然而,最引人注目的发现是 Y176H 同时具有暗适应 Pr 状态和光激活 Pfr 状态的结构特性。发色团采用 Pr 典型的 ZZZssa 构型,而蛋白质的舌段则采用 Pfr 典型的 α 螺旋结构。这意味着 Tyr176 在发色团光异构化与舌片和最终 Pfr 结构的片状到螺旋状转变之间起着关键作用。这一结论也适用于植物的植物色素,在植物色素中,同源替代物会产生与 Pfr 类似的不依赖光的信号活性。
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来源期刊
Biochemistry Biochemistry
Biochemistry Biochemistry 生物-生化与分子生物学
CiteScore
5.50
自引率
3.40%
发文量
336
审稿时长
1-2 weeks
期刊介绍: Biochemistry provides an international forum for publishing exceptional, rigorous, high-impact research across all of biological chemistry. This broad scope includes studies on the chemical, physical, mechanistic, and/or structural basis of biological or cell function, and encompasses the fields of chemical biology, synthetic biology, disease biology, cell biology, nucleic acid biology, neuroscience, structural biology, and biophysics. In addition to traditional Research Articles, Biochemistry also publishes Communications, Viewpoints, and Perspectives, as well as From the Bench articles that report new methods of particular interest to the biological chemistry community.
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