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拟南芥光敏色素A的组氨酸激酶相关结构域控制着该光感受器的光谱敏感性和亚细胞分布。

The histidine kinase-related domain of Arabidopsis phytochrome a controls the spectral sensitivity and the subcellular distribution of the photoreceptor.

作者信息

Müller Rebecca, Fernández Aurora Piñas, Hiltbrunner Andreas, Schäfer Eberhard, Kretsch Thomas

机构信息

Albert-Ludwigs-Universität Freiburg, Institut für Biologie 2/Botanik, 79104 Freiburg, Germany.

出版信息

Plant Physiol. 2009 Jul;150(3):1297-309. doi: 10.1104/pp.109.135988. Epub 2009 Apr 29.

DOI:10.1104/pp.109.135988
PMID:19403732
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2705050/
Abstract

Phytochrome A (phyA) is the primary photoreceptor for sensing extremely low amounts of light and for mediating various far-red light-induced responses in higher plants. Translocation from the cytosol to the nucleus is an essential step in phyA signal transduction. EID1 (for EMPFINDLICHER IM DUNKELROTEN LICHT1) is an F-box protein that functions as a negative regulator in far-red light signaling downstream of the phyA in Arabidopsis (Arabidopsis thaliana). To identify factors involved in EID1-dependent light signal transduction, pools of ethylmethylsulfonate-treated eid1-3 seeds were screened for seedlings that suppress the hypersensitive phenotype of the mutant. The phenotype of the suppressor mutant presented here is caused by a missense mutation in the PHYA gene that leads to an amino acid transition in its histidine kinase-related domain. The novel phyA-402 allele alters the spectral sensitivity and the persistence of far-red light-induced high-irradiance responses. The strong eid1-3 suppressor phenotype of phyA-402 contrasts with the moderate phenotype observed when phyA-402 is introgressed into the wild-type background, which indicates that the mutation mainly alters functions in an EID1-dependent signaling cascade. The mutation specifically inhibits nuclear accumulation of the photoreceptor molecule upon red light irradiation, even though it still interacts with FHY1 (for far-red long hypocotyl 1) and FHL (for FHY1-like protein), two factors that are essential for nuclear accumulation of phyA. Degradation of the mutated phyA is unaltered even under light conditions that inhibit its nuclear accumulation, indicating that phyA degradation may occur mostly in the cytoplasm.

摘要

光敏色素A(phyA)是高等植物中感知极少量光并介导各种远红光诱导反应的主要光感受器。从细胞质转移到细胞核是phyA信号转导的关键步骤。EID1(意为“对深红色光敏感1”)是一种F-box蛋白,在拟南芥中作为phyA下游远红光信号传导的负调节因子发挥作用。为了鉴定参与EID1依赖的光信号转导的因子,对经甲基磺酸乙酯处理的eid1-3种子库进行筛选,以寻找能抑制该突变体超敏表型的幼苗。本文呈现的抑制突变体的表型是由PHYA基因中的错义突变引起的,该突变导致其组氨酸激酶相关结构域中的氨基酸转变。新的phyA-402等位基因改变了光谱敏感性以及远红光诱导的高辐照度反应的持续性。phyA-402的强eid1-3抑制表型与phyA-402导入野生型背景时观察到的中等表型形成对比,这表明该突变主要改变了EID1依赖的信号级联反应中的功能。即使在红光照射下,该突变体仍与FHY1(意为“远红光长下胚轴1”)和FHL(意为“FHY1样蛋白”)相互作用,这两个因子对phyA的核积累至关重要,但该突变特异性抑制了光感受器分子的核积累。即使在抑制其核积累的光照条件下,突变的phyA的降解也未改变,这表明phyA的降解可能主要发生在细胞质中。

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The histidine kinase-related domain of Arabidopsis phytochrome a controls the spectral sensitivity and the subcellular distribution of the photoreceptor.拟南芥光敏色素A的组氨酸激酶相关结构域控制着该光感受器的光谱敏感性和亚细胞分布。
Plant Physiol. 2009 Jul;150(3):1297-309. doi: 10.1104/pp.109.135988. Epub 2009 Apr 29.
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本文引用的文献

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The cell biology of phytochrome signalling.光敏色素信号转导的细胞生物学
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Intracellular localisation of phytochrome and ubiquitin in red-light-irradiated oat coleoptiles by electron microscopy.电镜观察红光照射的燕麦胚芽鞘中光敏色素和泛素的细胞内定位。
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Biochemical characterization of Arabidopsis complexes containing CONSTITUTIVELY PHOTOMORPHOGENIC1 and SUPPRESSOR OF PHYA proteins in light control of plant development.拟南芥中包含组成型光形态建成1和光敏色素A蛋白抑制因子的复合物在植物发育光控中的生化特性分析
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Arabidopsis fhl/fhy1 double mutant reveals a distinct cytoplasmic action of phytochrome A.拟南芥fhl/fhy1双突变体揭示了光敏色素A独特的细胞质作用。
Proc Natl Acad Sci U S A. 2007 Jun 19;104(25):10737-42. doi: 10.1073/pnas.0703855104. Epub 2007 Jun 12.
8
FHY1 and FHL act together to mediate nuclear accumulation of the phytochrome A photoreceptor.FHY1和FHL共同作用以介导光敏色素A光受体的核积累。
Plant Cell Physiol. 2006 Aug;47(8):1023-34. doi: 10.1093/pcp/pcj087. Epub 2006 Jul 22.
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Phytochrome structure and signaling mechanisms.光敏色素的结构与信号传导机制。
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Functional analysis of EID1, an F-box protein involved in phytochrome A-dependent light signal transduction.EID1的功能分析,EID1是一种参与光敏色素A依赖的光信号转导的F-box蛋白。
Plant J. 2006 Feb;45(3):423-38. doi: 10.1111/j.1365-313X.2005.02635.x.