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本文引用的文献

1
Genome-scale transcriptomic insights into early-stage fruit development in woodland strawberry Fragaria vesca.林地产草莓 Fragaria vesca 早期果实发育的全基因组转录组学研究
Plant Cell. 2013 Jun;25(6):1960-78. doi: 10.1105/tpc.113.111732. Epub 2013 Jun 28.
2
Molecular basis of age-dependent vernalization in Cardamine flexuosa.石竹科繁缕属植物春化作用的年龄依赖性的分子基础。
Science. 2013 May 31;340(6136):1097-100. doi: 10.1126/science.1234340.
3
Interlocking feedback loops govern the dynamic behavior of the floral transition in Arabidopsis.互锁反馈环控制拟南芥花转变的动态行为。
Plant Cell. 2013 Mar;25(3):820-33. doi: 10.1105/tpc.113.109355. Epub 2013 Mar 29.
4
A conserved genetic pathway determines inflorescence architecture in Arabidopsis and rice.一个保守的遗传途径决定了拟南芥和水稻的花序结构。
Dev Cell. 2013 Mar 25;24(6):612-22. doi: 10.1016/j.devcel.2013.02.013.
5
Gibberellins regulate the transcription of the continuous flowering regulator, RoKSN, a rose TFL1 homologue.赤霉素调节连续开花调节剂 RoKSN 的转录,RoKSN 是拟南芥 TFL1 同源物。
J Exp Bot. 2012 Nov;63(18):6543-54. doi: 10.1093/jxb/ers310.
6
Characterization of SOC1's central role in flowering by the identification of its upstream and downstream regulators.通过鉴定 SOC1 的上游和下游调控因子,阐明其在开花时间中的核心作用。
Plant Physiol. 2012 Sep;160(1):433-49. doi: 10.1104/pp.112.202614. Epub 2012 Jul 12.
7
The multifaceted roles of FLOWERING LOCUS T in plant development.FT 蛋白在植物发育中的多功能作用。
Plant Cell Environ. 2012 Oct;35(10):1742-55. doi: 10.1111/j.1365-3040.2012.02558.x. Epub 2012 Jul 15.
8
Mutation in TERMINAL FLOWER1 reverses the photoperiodic requirement for flowering in the wild strawberry Fragaria vesca.TERMINAL FLOWER1 突变逆转了野生草莓 Fragaria vesca 开花对光周期的需求。
Plant Physiol. 2012 Jul;159(3):1043-54. doi: 10.1104/pp.112.196659. Epub 2012 May 7.
9
TEMPRANILLO genes link photoperiod and gibberellin pathways to control flowering in Arabidopsis.TEMPRANILLO 基因将光周期和赤霉素途径联系起来,以控制拟南芥的开花。
Nat Commun. 2012 May 1;3:808. doi: 10.1038/ncomms1810.
10
Gibberellin biosynthesis and its regulation.赤霉素生物合成及其调控。
Biochem J. 2012 May 15;444(1):11-25. doi: 10.1042/BJ20120245.

抑制CONSTANS1过表达的同源基因抑制草莓开花并促进营养生长。

The Fragaria vesca homolog of suppressor of overexpression of constans1 represses flowering and promotes vegetative growth.

作者信息

Mouhu Katriina, Kurokura Takeshi, Koskela Elli A, Albert Victor A, Elomaa Paula, Hytönen Timo

机构信息

Department of Agricultural Sciences, University of Helsinki, Helsinki FIN-00014 Finland.

出版信息

Plant Cell. 2013 Sep;25(9):3296-310. doi: 10.1105/tpc.113.115055. Epub 2013 Sep 13.

DOI:10.1105/tpc.113.115055
PMID:24038650
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3809533/
Abstract

In the annual long-day plant Arabidopsis thaliana, suppressor of overexpression of constans1 (SOC1) integrates endogenous and environmental signals to promote flowering. We analyzed the function and regulation of the SOC1 homolog (Fragaria vesca [Fv] SOC1) in the perennial short-day plant woodland strawberry (Fragaria vesca). We found that Fv SOC1 overexpression represses flower initiation under inductive short days, whereas its silencing causes continuous flowering in both short days and noninductive long days, similar to mutants in the floral repressor Fv terminal flower1 (Fv TFL1). Molecular analysis of these transgenic lines revealed that Fv SOC1 activates Fv TFL1 in the shoot apex, leading to the repression of flowering in strawberry. In parallel, Fv SOC1 regulates the differentiation of axillary buds to runners or axillary leaf rosettes, probably through the activation of gibberellin biosynthetic genes. We also demonstrated that Fv SOC1 is regulated by photoperiod and Fv flowering locus T1, suggesting that it plays a central role in the photoperiodic control of both generative and vegetative growth in strawberry. In conclusion, we propose that Fv SOC1 is a signaling hub that regulates yearly cycles of vegetative and generative development through separate genetic pathways.

摘要

在一年生长日照植物拟南芥中,CONSTANS1过表达抑制因子1(SOC1)整合内源和环境信号以促进开花。我们分析了多年生短日照植物森林草莓(Fragaria vesca)中SOC1同源基因(Fv SOC1)的功能和调控。我们发现,Fv SOC1过表达在诱导性短日照条件下抑制花起始,而其沉默则导致在短日照和非诱导性长日照条件下持续开花,类似于花抑制因子Fv顶花1(Fv TFL1)的突变体。对这些转基因株系的分子分析表明,Fv SOC1在茎尖激活Fv TFL1,导致草莓开花受到抑制。同时,Fv SOC1可能通过激活赤霉素生物合成基因来调控腋芽分化为匍匐茎或腋生叶莲座。我们还证明Fv SOC1受光周期和Fv开花位点T1调控,表明它在草莓生殖生长和营养生长的光周期控制中起核心作用。总之,我们提出Fv SOC1是一个信号枢纽,通过独立的遗传途径调控营养生长和生殖发育的年度周期。