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光敏色素信号转导的细胞生物学

The cell biology of phytochrome signalling.

作者信息

Møller Simon G, Ingles Patricia J, Whitelam Garry C

机构信息

Department of Biology, University of Leicester, University Road, Leicester, LE1 7RH, UK.

出版信息

New Phytol. 2002 Jun;154(3):553-590. doi: 10.1046/j.1469-8137.2002.00419.x.

DOI:10.1046/j.1469-8137.2002.00419.x
PMID:33873456
Abstract

Phytochrome signal transduction has in the past often been viewed as being a nonspatially separated linear chain of events. However, through a combination of molecular, genetic and cell biological approaches, it is becoming increasingly evident that phytochrome signalling constitutes a highly ordered multidimensional network of events. The discovery that some phytochromes and signalling intermediates show light-dependent nucleo-cytoplasmic partitioning has not only led to the suggestion that early signalling events take place in the nucleus, but also that subcellular localization patterns most probably represent an important signalling control point. Moreover, detailed characterization of signalling intermediates has demonstrated that various branches of the signalling network are spatially separated and take place in different cellular compartments including the nucleus, cytosol, and chloroplasts. In addition, proteasome-mediated degradation of signalling intermediates most probably act in concert with subcellular partitioning events as an integrated checkpoint. An emerging view from this is that phytochrome signalling is separated into several subcellular organelles and that these are interconnected in order to execute accurate responses to changes in the light environment. By integrating the available data, both at the cellular and subcellular level, we should be able to construct a solid foundation for further dissection of phytochrome signal transduction in plants. Contents Summary 553 I. Introduction 554 II. Nucleus vs cytoplasm 556 III. The nucleus 562 IV. The cytoplasm 571 V. Interactions with other signalling pathways 577 VI. Conclusions and the future 582 Acknowledgements 583 References 583.

摘要

过去,人们常常认为光敏色素信号转导是一系列在空间上无分隔的线性事件。然而,通过分子、遗传和细胞生物学方法的结合,越来越明显的是,光敏色素信号传导构成了一个高度有序的多维事件网络。一些光敏色素和信号中间体表现出光依赖的核质分配这一发现,不仅表明早期信号事件发生在细胞核中,还表明亚细胞定位模式很可能代表一个重要的信号控制点。此外,对信号中间体的详细表征表明,信号网络的各个分支在空间上是分隔的,发生在包括细胞核、细胞质和叶绿体在内的不同细胞区室中。此外,蛋白酶体介导的信号中间体降解很可能与亚细胞分配事件协同作用,作为一个综合检查点。由此产生的一个新观点是,光敏色素信号传导被分隔到几个亚细胞器中,并且这些亚细胞器相互连接,以便对光环境的变化做出准确反应。通过整合细胞和亚细胞水平上的现有数据,我们应该能够为进一步剖析植物中的光敏色素信号转导奠定坚实的基础。内容摘要553 一、引言554 二、细胞核与细胞质556 三、细胞核562 四、细胞质571 五、与其他信号通路的相互作用577 六、结论与未来582 致谢583 参考文献583

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本文引用的文献

1
Overexpression of Phytochrome B Induces a Short Hypocotyl Phenotype in Transgenic Arabidopsis.光敏色素B的过表达在转基因拟南芥中诱导短下胚轴表型。
Plant Cell. 1991 Dec;3(12):1275-1288. doi: 10.1105/tpc.3.12.1275.
2
Photoresponses of Light-Grown phyA Mutants of Arabidopsis (Phytochrome A Is Required for the Perception of Daylength Extensions).光生长的拟南芥phyA突变体的光响应(感知日长延长需要光敏色素A)
Plant Physiol. 1994 May;105(1):141-149. doi: 10.1104/pp.105.1.141.
3
Phytochrome B and at Least One Other Phytochrome Mediate the Accelerated Flowering Response of Arabidopsis thaliana L. to Low Red/Far-Red Ratio.
Front Plant Sci. 2014 Oct 28;5:563. doi: 10.3389/fpls.2014.00563. eCollection 2014.
4
Signal Integration by ABA in the Blue Light-Induced Acidification of Leaf Pavement Cells in Pea (Pisum sativum L. var. Argenteum).ABA 在蓝光诱导的豌豆(Pisum sativum L. var. Argenteum)叶表皮细胞酸化中的信号整合。
Plant Signal Behav. 2007 May;2(3):146-52. doi: 10.4161/psb.2.3.4314.
5
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.
6
Distinct light-initiated gene expression and cell cycle programs in the shoot apex and cotyledons of Arabidopsis.拟南芥茎尖和子叶中不同的光启动基因表达和细胞周期程序。
Plant Cell. 2008 Apr;20(4):947-68. doi: 10.1105/tpc.107.057075. Epub 2008 Apr 18.
7
An integrated genetic, genomic and systems approach defines gene networks regulated by the interaction of light and carbon signaling pathways in Arabidopsis.一种整合的遗传、基因组和系统方法定义了拟南芥中受光信号通路和碳信号通路相互作用调控的基因网络。
BMC Syst Biol. 2008 Apr 4;2:31. doi: 10.1186/1752-0509-2-31.
8
Femtosecond kinetics of photoconversion of the higher plant photoreceptor phytochrome carrying native and modified chromophores.携带天然和修饰发色团的高等植物光受体光敏色素光转换的飞秒动力学。
Biophys J. 2008 Jun;94(11):4370-82. doi: 10.1529/biophysj.106.091652. Epub 2008 Jan 16.
9
Phytochrome structure and signaling mechanisms.光敏色素的结构与信号传导机制。
Annu Rev Plant Biol. 2006;57:837-58. doi: 10.1146/annurev.arplant.56.032604.144208.
10
Phytochromes and shade-avoidance responses in plants.植物中的光敏色素与避荫反应
Ann Bot. 2005 Aug;96(2):169-75. doi: 10.1093/aob/mci165. Epub 2005 May 13.
光敏色素B和至少一种其他光敏色素介导拟南芥对低红/远红比率的加速开花反应。
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4
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Plant Physiol. 1993 Aug;102(4):1179-1184. doi: 10.1104/pp.102.4.1179.
5
Phytochrome E controls light-induced germination of Arabidopsis.光敏色素E调控拟南芥的光诱导萌发。
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6
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7
LAF1, a MYB transcription activator for phytochrome A signaling.LAF1,一种参与光敏色素A信号传导的MYB转录激活因子。
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shl, a New set of Arabidopsis mutants with exaggerated developmental responses to available red, far-red, and blue light.shl,一组对可用红光、远红光和蓝光具有夸张发育反应的拟南芥新突变体。
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9
Direct interaction of Arabidopsis cryptochromes with COP1 in light control development.拟南芥隐花色素与COP1在光控发育中的直接相互作用。
Science. 2001 Oct 5;294(5540):154-8. doi: 10.1126/science.1063630. Epub 2001 Aug 16.
10
The U-box protein family in plants.植物中的U-box蛋白家族。
Trends Plant Sci. 2001 Aug;6(8):354-8. doi: 10.1016/s1360-1385(01)01960-4.