Phytochromobilin Binding and Specific Amino Acid Residues Near The Chromophore Contribute To Orange Light Perception By The Dualchrome Phytochrome Region.

IF 3.9 2区 生物学 Q2 CELL BIOLOGY
Mana Fukazawa, Keita Miyake, Hiroki Hoshino, Keiji Fushimi, Rei Narikawa
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Abstract

A novel photoreceptor dualchrome 1 (DUC1), containing a fused structure of cryptochrome and phytochrome, was discovered in the marine green alga Pycnococcus provasolli. The DUC1 phytochrome region (PpDUC1-N) binds to the bilin (linear tetrapyrrole) chromophores, phytochromobilin (PΦB) or phycocyanobilin (PCB), and reversibly photoconverts between the orange-absorbing dark-adapted state and the far-red-absorbing photoproduct state. This contrasts with typical phytochromes, which photoconvert between the red-absorbing dark-adapted and far-red-absorbing photoproduct states. In this study, we examined the molecular mechanism of PpDUC1-N to sense orange light by identifying the chromophore species synthesized by P. provasolli and the amino acid residues within the PpDUC1-N responsible for sensing orange light in the dark-adapted state. We focused on the PcyA homolog of P. provasolli (PpPcyA). Coexpression with the photoreceptors followed by an enzymatic assay revealed that PpPcyA synthesized PCB. Next, we focused on the PpDUC1-N GAF domain responsible for chromophore binding and light sensing. Ten amino acid residues were selected as the mutagenesis target near the chromophore. Replacement of these residues with those conserved in typical phytochromes revealed that three mutations (F290Y/M304S/L353M) resulted in a 23-nm red-shift in the dark-adapted state. Finally, we combined these constructs to obtain the PΦB-binding F290Y/M304S/L353M mutant and a 38-nm red-shift was observed compared with the PCB-binding wild-type PpDUC1. The binding chromophore species and the key residues near the chromophore contribute to blue-shifted orange light sensing in the dark-adapted state of the PpDUC1-N.

植物色素结合和色团附近的特定氨基酸残基有助于双色植物色素区感知橙色光。
在海洋绿藻Pycnococcus provasolli中发现了一种新型感光器双色素1(DUC1),它含有隐色色素和植物色素的融合结构。DUC1 植物色素区域(PpDUC1-N)与比林(线性四吡咯)发色团、植物色素(PΦB)或植物花青素(PCB)结合,并在橙色吸收暗适应状态和远红吸收光产物状态之间进行可逆光转换。这与典型的植物色素形成鲜明对比,后者在红色吸收的暗适应态和远红吸收的光产物态之间进行光转换。在本研究中,我们通过确定普罗瓦索里藻合成的发色团种类以及 PpDUC1-N 中负责在暗适应状态下感知橙光的氨基酸残基,研究了 PpDUC1-N 感知橙光的分子机制。我们重点研究了provasolli的PcyA同源物(PpPcyA)。与光感受器共表达后进行的酶测定显示,PpPcyA 能合成多氯联苯。接下来,我们重点研究了负责发色团结合和光感应的 PpDUC1-N GAF 结构域。我们选择了发色团附近的 10 个氨基酸残基作为诱变目标。将这些残基替换为典型植物色素中的保守残基后发现,三个突变(F290Y/M304S/L353M)导致了暗适应状态下23纳米的红移。最后,我们将这些构建体结合起来,得到了结合 PΦB 的 F290Y/M304S/L353M 突变体,与结合 PCB 的野生型 PpDUC1 相比,观察到了 38-nm 的红移。结合的发色团种类和发色团附近的关键残基有助于 PpDUC1-N 在暗适应状态下的橙色光感蓝移。
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来源期刊
Plant and Cell Physiology
Plant and Cell Physiology 生物-细胞生物学
CiteScore
8.40
自引率
4.10%
发文量
166
审稿时长
1.7 months
期刊介绍: Plant & Cell Physiology (PCP) was established in 1959 and is the official journal of the Japanese Society of Plant Physiologists (JSPP). The title reflects the journal''s original interest and scope to encompass research not just at the whole-organism level but also at the cellular and subcellular levels. Amongst the broad range of topics covered by this international journal, readers will find the very best original research on plant physiology, biochemistry, cell biology, molecular genetics, epigenetics, biotechnology, bioinformatics and –omics; as well as how plants respond to and interact with their environment (abiotic and biotic factors), and the biology of photosynthetic microorganisms.
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