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本文引用的文献

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Characterization of a Rapid, Blue Light-Mediated Change in Detectable Phosphorylation of a Plasma Membrane Protein from Etiolated Pea (Pisum sativum L.) Seedlings.黄化豌豆(Pisum sativum L.)幼苗质膜蛋白可检测磷酸化的快速蓝光介导变化的表征
Plant Physiol. 1990 Jan;92(1):179-85. doi: 10.1104/pp.92.1.179.
2
Evidence for a phytochrome-mediated phototropism in etiolated pea seedlings.证明黄化豌豆幼苗中存在光敏色素介导的向光性。
Plant Physiol. 1989 Feb;89(2):493-7. doi: 10.1104/pp.89.2.493.
3
Hierarchical Response of Light Harvesting Chlorophyll-Proteins in a Light-Sensitive Chlorophyll b-Deficient Mutant of Maize.玉米光敏感叶绿素b缺乏突变体中捕光叶绿素蛋白的分级响应
Plant Physiol. 1988 Jun;87(2):357-64. doi: 10.1104/pp.87.2.357.
4
Blue and Green Light-Induced Phototropism in Arabidopsis thaliana and Lactuca sativa L. Seedlings.蓝绿光诱导拟南芥和莴苣幼苗的向光性。
Plant Physiol. 1985 Jan;77(1):248-51. doi: 10.1104/pp.77.1.248.
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Second positive phototropism in the Avena coleoptile.燕麦胚芽鞘的二次正向光性。
Plant Physiol. 1968 Nov;43(11):1786-92. doi: 10.1104/pp.43.11.1786.
6
Phototropic Dosage-Response Curves for Oat Coleoptiles.燕麦胚芽鞘的向光性剂量-反应曲线。
Plant Physiol. 1963 May;38(3):248-53. doi: 10.1104/pp.38.3.248.
7
Action Spectrum of Phototropic Tip-Curvature of Avena.燕麦胚芽鞘向光性尖端弯曲的作用光谱。
Plant Physiol. 1958 Sep;33(5):360-5. doi: 10.1104/pp.33.5.360.
8
Dependence of the phototropic response of Arabidopsis thaliana on fluence rate and wavelength.拟南芥光形态建成反应对光强和光波长的依赖性。
Proc Natl Acad Sci U S A. 1989 Dec;86(24):9876-80. doi: 10.1073/pnas.86.24.9876.
9
A Pea Plasma Membrane Protein Exhibiting Blue Light-Induced Phosphorylation Retains Photosensitivity following Triton Solubilization.一种表现出蓝光诱导磷酸化的豌豆质膜蛋白在经曲拉通增溶后仍保持光敏性。
Plant Physiol. 1993 Feb;101(2):647-655. doi: 10.1104/pp.101.2.647.
10
Genetic separation of phototropism and blue light inhibition of stem elongation.向光性与蓝光抑制茎伸长的遗传分离
Plant Physiol. 1992 Sep;100(1):267-71. doi: 10.1104/pp.100.1.267.

拟南芥NPH1基因座的突变会破坏对向光性刺激的感知。

Mutations in the NPH1 locus of Arabidopsis disrupt the perception of phototropic stimuli.

作者信息

Liscum E, Briggs W R

机构信息

Department of Plant Biology, Carnegie Institution of Washington, Stanford, California 94305-1297, USA.

出版信息

Plant Cell. 1995 Apr;7(4):473-85. doi: 10.1105/tpc.7.4.473.

DOI:10.1105/tpc.7.4.473
PMID:7773019
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC160797/
Abstract

The phototropic response is an important component of seedling establishment in higher plants because it orients the young seedlings for maximal photosynthetic light capture. Despite their obvious importance, little is known about the mechanisms underlying the perception and transduction of the light signals that induce phototropic curvatures. Here, we report the isolation of eight mutants of Arabidopsis that lack or have severely impaired phototropic responses. These nph (for nonphototropic hypocotyl) mutants comprise four genetic loci: nph1, nph2, nph3, and nph4. Physiological and biochemical characterization of the nph1 allele series indicated that the NPH1 locus may encode the apoprotein for a dual-chromophoric or multichromophoric holoprotein photoreceptor capable of absorbing UV-A, blue, and green light and that this photoreceptor regulates all the phototropic responses of Arabidopsis. It appears that the NPH1 protein is most likely a 120-kD plasma membrane-associated phosphoprotein because all of the nph1 mutations negatively affected the abundance of this protein. In addition, the putative NPH1 photoreceptor protein is genetically and biochemically distinct from the HY4 protein, which most likely acts as a photoreceptor for blue light-mediated hypocotyl growth inhibition. Furthermore, the NPH1 and HY4 proteins are not functionally redundant because mutations in either gene alone affect only one physiological response but not the other, thus providing strong support for the hypothesis that more than one blue light photoreceptor is required for the normal growth and development of a seedling.

摘要

向光性反应是高等植物幼苗建立的一个重要组成部分,因为它能使幼苗定向,以最大限度地捕获光合作用所需的光。尽管其重要性显而易见,但对于诱导向光性弯曲的光信号的感知和转导机制却知之甚少。在此,我们报告了拟南芥八个突变体的分离,这些突变体缺乏或严重受损的向光性反应。这些nph(非向光性下胚轴)突变体包含四个基因位点:nph1、nph2、nph3和nph4。nph1等位基因系列的生理和生化特征表明,NPH1位点可能编码一种双发色团或多发色团全蛋白光感受器的脱辅基蛋白,该光感受器能够吸收UV-A、蓝光和绿光,并且这种光感受器调节拟南芥的所有向光性反应。看来NPH1蛋白很可能是一种120-kD的与质膜相关的磷蛋白,因为所有nph1突变都对该蛋白的丰度产生了负面影响。此外,推测的NPH1光感受器蛋白在遗传和生化上与HY4蛋白不同,后者很可能作为蓝光介导的下胚轴生长抑制的光感受器。此外,NPH1和HY4蛋白在功能上并非冗余,因为单独一个基因的突变仅影响一种生理反应而不影响另一种,从而为幼苗正常生长和发育需要不止一种蓝光光感受器这一假说提供了有力支持。