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本文引用的文献

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Leaf development and phytochrome modulate the activation ofpsbD-psbC transcription by high-fluence blue light in barley chloroplasts.叶片发育和光敏色素调节大麦叶绿体中高光强蓝光对 psbD-psbC 转录的激活。
Photosynth Res. 1996 Mar;47(3):239-51. doi: 10.1007/BF02184285.
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Phytochrome control of plastid mRNA in mustard (Sinapis alba L.).光敏色素对芥菜(Sinapis alba L.)质体 mRNA 的调控。
Planta. 1982 Mar;154(1):81-6. doi: 10.1007/BF00385501.
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Phytochrome control of RNA levels in developing pea and mung-bean leaves.光敏色素对发育中的豌豆和绿豆叶片中 RNA 水平的调控。
Planta. 1983 Aug;158(6):487-500. doi: 10.1007/BF00397240.
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Transcriptional control of plastid gene expression during development of primary foliage leaves of barley grown under a daily light-dark regime.在每日光暗循环条件下生长的大麦初生叶片发育过程中质体基因表达的转录调控。
Planta. 1992 Jan;186(2):294-303. doi: 10.1007/BF00196259.
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Phytochrome control of levels of mRNA complementary to plastid and nuclear genes of maize.玉米质体和核基因互补mRNA水平的光敏色素调控
Plant Physiol. 1985 Oct;79(2):371-6. doi: 10.1104/pp.79.2.371.
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Deoxyribonucleic Acid-dependent Ribonucleic Acid Polymerase Activity of Nuclei and Plastids from Etiolated Peas and their Response to Red and Far Red Light in Vivo.DNA 依赖的 RNA 聚合酶活性的核和质体从黄化豌豆及其对红光和远红光在体内的反应。
Plant Physiol. 1970 May;45(5):608-11. doi: 10.1104/pp.45.5.608.
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Expression dynamics of the pea rbcS multigene family and organ distribution of the transcripts.豌豆rbcS多基因家族的表达动态及转录本的器官分布
EMBO J. 1986 Sep;5(9):2063-2071. doi: 10.1002/j.1460-2075.1986.tb04467.x.
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NUCLEAR CONTROL OF PLASTID AND MITOCHONDRIAL DEVELOPMENT IN HIGHER PLANTS.高等植物中质体和线粒体发育的核控制
Annu Rev Plant Physiol Plant Mol Biol. 1998 Jun;49:453-480. doi: 10.1146/annurev.arplant.49.1.453.
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Different Roles for Phytochrome in Etiolated and Green Plants Deduced from Characterization of Arabidopsis thaliana Mutants.从拟南芥突变体的特征推断光敏色素在黄化植物和绿色植物中的不同作用。
Plant Cell. 1989 Sep;1(9):867-880. doi: 10.1105/tpc.1.9.867.
10
Differential Transcription of Pea Chloroplast Genes during Light-Induced Leaf Development (Continuous Far-Red Light Activates Chloroplast Transcription).豌豆叶绿体基因在光诱导叶片发育过程中的差异转录(连续远红光激活叶绿体转录)
Plant Physiol. 1995 Sep;109(1):105-112. doi: 10.1104/pp.109.1.105.

光敏色素A介导绿叶中蓝光和UV-A依赖的叶绿体基因转录。

Phytochrome A mediates blue light and UV-A-dependent chloroplast gene transcription in green leaves.

作者信息

Chun L, Kawakami A, Christopher D A

机构信息

Department of Molecular Biosciences and Biosystems Engineering, University of Hawaii, 1955 East-West Road, AgSciences III, Room 218, Honolulu, Hawaii 96822, USA.

出版信息

Plant Physiol. 2001 Apr;125(4):1957-66. doi: 10.1104/pp.125.4.1957.

DOI:10.1104/pp.125.4.1957
PMID:11299375
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC88851/
Abstract

We characterized the photobiology of light-activated chloroplast transcription and transcript abundance in mature primary leaves by using the following two systems: transplastomic promoter-reporter gene fusions in tobacco (Nicotiana tabacum), and phytochrome (phyA, phyB, and hy2) and cryptochrome (cry1) mutants of Arabidopsis. In both dicots, blue light and UV-A radiation were the major signals that activated total chloroplast and psbA, rbcL, and 16S rrn transcription. In contrast, transcription activities in plants exposed to red and far-red light were 30% to 85% less than in blue light/UV-A, depending on the gene and plant species. Total chloroplast, psbA, and 16S rrn transcription were 60% to 80% less in the Arabidopsis phyA mutant exposed to blue light/UV-A relative to wild type, thus definitively linking phyA signaling to these photoresponses. To our knowledge, the major role of phyA in mediating the blue light/UV-A photoresponses is a new function for phyA in chloroplast biogenesis at this stage of leaf development. Although rbcL expression in plants exposed to UV-A was 50% less in the phyA mutant relative to wild type, blue light-induced rbcL expression was not significantly affected in the phyA, phyB, and cry1 mutants. However, rbcL expression in blue light was 60% less in the phytochrome chromophore mutant, hy2, relative to wild type, indicating that another phytochrome species (phyC, D, or E) was involved in blue light-induced rbcL transcription. Therefore, at least two different phytochromes, as well as phytochrome-independent photosensory pathways, mediated blue light/UV-A-induced transcription of chloroplast genes in mature leaves.

摘要

我们通过使用以下两个系统,对成熟初生叶中光激活的叶绿体转录及转录本丰度的光生物学特性进行了表征:烟草(Nicotiana tabacum)中的转质体启动子 - 报告基因融合系统,以及拟南芥的光敏色素(phyA、phyB和hy2)和隐花色素(cry1)突变体。在这两种双子叶植物中,蓝光和UV - A辐射是激活总叶绿体以及psbA、rbcL和16S rrn转录的主要信号。相比之下,根据基因和植物种类的不同,暴露于红光和远红光下的植物中的转录活性比在蓝光/UV - A下低30%至85%。相对于野生型,暴露于蓝光/UV - A下的拟南芥phyA突变体中,总叶绿体、psbA和16S rrn转录减少了60%至80%,从而明确地将phyA信号传导与这些光反应联系起来。据我们所知,在叶片发育的这个阶段,phyA在介导蓝光/UV - A光反应中的主要作用是其在叶绿体生物发生中的一个新功能。尽管相对于野生型,暴露于UV - A下的phyA突变体中植物的rbcL表达减少了50%,但蓝光诱导的rbcL表达在phyA、phyB和cry1突变体中并未受到显著影响。然而,相对于野生型,光敏色素发色团突变体hy2在蓝光下的rbcL表达减少了60%,这表明另一种光敏色素(phyC、D或E)参与了蓝光诱导的rbcL转录。因此,至少两种不同的光敏色素以及不依赖光敏色素的光感受途径介导了成熟叶片中蓝光/UV - A诱导的叶绿体基因转录。