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Nocturnal gibberellin biosynthesis is carbon dependent and adjusts leaf expansion rates to variable conditions.夜间赤霉素的生物合成依赖于碳,并且可以根据环境条件的变化来调节叶片的扩展速度。
Plant Physiol. 2021 Feb 25;185(1):228-239. doi: 10.1093/plphys/kiaa019.
2
Gibberellin driven growth in elf3 mutants requires PIF4 and PIF5.赤霉素驱动的elf3突变体生长需要PIF4和PIF5。
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3
Genetic analyses of the interaction between abscisic acid and gibberellins in the control of leaf development in Arabidopsis thaliana.拟南芥叶片发育调控中脱落酸与赤霉素相互作用的遗传分析
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Starch and the clock: the dark side of plant productivity.淀粉和时钟:植物生产力的阴暗面。
Trends Plant Sci. 2011 Mar;16(3):169-75. doi: 10.1016/j.tplants.2010.12.003. Epub 2011 Jan 7.
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Immunomodulation of bioactive gibberellin confers gibberellin-deficient phenotypes in plants.生物活性赤霉素的免疫调节赋予植物赤霉素缺乏表型。
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6
Nighttime sugar starvation orchestrates gibberellin biosynthesis and plant growth in Arabidopsis.夜间糖饥饿调控拟南芥赤霉素的生物合成和植物生长。
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Sucrose-induced hypocotyl elongation of Arabidopsis seedlings in darkness depends on the presence of gibberellins.蔗糖诱导黑暗中拟南芥幼苗下胚轴伸长依赖于赤霉素的存在。
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Gibberellins are involved in effect of near-null magnetic field on Arabidopsis flowering.赤霉素参与近零磁场对拟南芥开花的影响。
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Control of leaf expansion: a developmental switch from metabolics to hydraulics.控制叶片伸展:从代谢到水力的发育开关。
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Natural Variation of Molecular and Morphological Gibberellin Responses.赤霉素反应的分子和形态学自然变异
Plant Physiol. 2017 Jan;173(1):703-714. doi: 10.1104/pp.16.01626. Epub 2016 Nov 22.

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Ectopic expression of Camellia oleifera Abel. gibberellin 20-oxidase gene increased plant height and promoted secondary cell walls deposition in Arabidopsis.油茶 20-氧化酶基因的异位表达增加了拟南芥的株高,并促进了次生细胞壁的沉积。
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The Roles of Gibberellins in Regulating Leaf Development.赤霉素在调控叶片发育中的作用
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Isoprenoid-Derived Metabolites and Sugars in the Regulation of Flowering Time: Does Day Length Matter?类异戊二烯衍生代谢物和糖类在开花时间调控中的作用:日长是否重要?
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本文引用的文献

1
Gibberellin Metabolism in Flowering Plants: An Update and Perspectives.开花植物中的赤霉素代谢:最新进展与展望
Front Plant Sci. 2020 May 19;11:532. doi: 10.3389/fpls.2020.00532. eCollection 2020.
2
CYP72A enzymes catalyse 13-hydrolyzation of gibberellins.CYP72A 酶催化赤霉素的 13-水解。
Nat Plants. 2019 Oct;5(10):1057-1065. doi: 10.1038/s41477-019-0511-z. Epub 2019 Sep 16.
3
Growth rate regulation is associated with developmental modification of source efficiency.生长速率的调控与源效率的发育修饰有关。
Nat Plants. 2019 Feb;5(2):148-152. doi: 10.1038/s41477-018-0357-9. Epub 2019 Feb 4.
4
Response of the Circadian Clock and Diel Starch Turnover to One Day of Low Light or Low CO.circadian clock 译为生物钟,CO 是 carbon monoxide 的缩写,指一氧化碳。因此,译文为: 生物钟和日淀粉周转率对一天低光照或低一氧化碳的反应。
Plant Physiol. 2019 Apr;179(4):1457-1478. doi: 10.1104/pp.18.01418. Epub 2019 Jan 22.
5
Evolution and diversification of the plant gibberellin receptor GID1.植物赤霉素受体 GID1 的进化和多样化。
Proc Natl Acad Sci U S A. 2018 Aug 14;115(33):E7844-E7853. doi: 10.1073/pnas.1806040115. Epub 2018 Aug 1.
6
Photosynthate partitioning to starch in Arabidopsis thaliana is insensitive to light intensity but sensitive to photoperiod due to a restriction on growth in the light in short photoperiods.在拟南芥中,光合作用产物向淀粉的分配对光强不敏感,但对光周期敏感,这是由于在短光周期下光照生长受到限制。
Plant Cell Environ. 2017 Nov;40(11):2608-2627. doi: 10.1111/pce.13000. Epub 2017 Aug 17.
7
Circadian, Carbon, and Light Control of Expansion Growth and Leaf Movement.昼夜节律、碳以及光照对扩展生长和叶片运动的调控
Plant Physiol. 2017 Jul;174(3):1949-1968. doi: 10.1104/pp.17.00503. Epub 2017 May 30.
8
Cellulose Synthesis and Cell Expansion Are Regulated by Different Mechanisms in Growing Arabidopsis Hypocotyls.在生长中的拟南芥下胚轴中,纤维素合成和细胞扩张受不同机制调控。
Plant Cell. 2017 Jun;29(6):1305-1315. doi: 10.1105/tpc.16.00782. Epub 2017 May 26.
9
Selective Autophagy of BES1 Mediated by DSK2 Balances Plant Growth and Survival.DSK2介导的BES1选择性自噬平衡植物生长与存活
Dev Cell. 2017 Apr 10;41(1):33-46.e7. doi: 10.1016/j.devcel.2017.03.013.
10
Natural Variation of Molecular and Morphological Gibberellin Responses.赤霉素反应的分子和形态学自然变异
Plant Physiol. 2017 Jan;173(1):703-714. doi: 10.1104/pp.16.01626. Epub 2016 Nov 22.

夜间赤霉素的生物合成依赖于碳,并且可以根据环境条件的变化来调节叶片的扩展速度。

Nocturnal gibberellin biosynthesis is carbon dependent and adjusts leaf expansion rates to variable conditions.

机构信息

PLANTLAB, Institute of Life Sciences, Scuola Superiore Sant'Anna, Pisa 56127, Italy.

Department of Agriculture, Food and Environment, University of Pisa, Pisa 56124, Italy.

出版信息

Plant Physiol. 2021 Feb 25;185(1):228-239. doi: 10.1093/plphys/kiaa019.

DOI:10.1093/plphys/kiaa019
PMID:33631808
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8133661/
Abstract

Optimal plant growth performance requires that the presence and action of growth signals, such as gibberellins (GAs), are coordinated with the availability of photo-assimilates. Here, we studied the links between GA biosynthesis and carbon availability, and the subsequent effects on growth. We established that carbon availability, light and dark cues, and the circadian clock ensure the timing and magnitude of GA biosynthesis and that disruption of these factors results in reduced GA levels and expression of downstream genes. Carbon-dependent nighttime induction of gibberellin 3-beta-dioxygenase 1 (GA3ox1) was severely hampered when preceded by reduced daytime light availability, leading specifically to reduced bioactive GA4 levels, and coinciding with a decline in leaf expansion rate during the night. We attributed this decline in leaf expansion mostly to reduced photo-assimilates. However, plants in which GA limitation was alleviated had significantly improved leaf expansion, demonstrating the relevance of GAs in growth control under varying carbon availability. Carbon-dependent expression of upstream GA biosynthesis genes (Kaurene synthase and gibberellin 20 oxidase 1, GA20ox1) was not translated into metabolite changes within this short timeframe. We propose a model in which the extent of nighttime biosynthesis of bioactive GA4 by GA3ox1 is determined by nighttime consumption of starch reserves, thus providing day-to-day adjustments of GA responses.

摘要

最佳的植物生长表现需要生长信号(如赤霉素(GA))的存在和作用与光合物的可用性相协调。在这里,我们研究了 GA 生物合成与碳可用性之间的联系,以及它们对生长的后续影响。我们确定了碳可用性、光照和黑暗线索以及生物钟确保了 GA 生物合成的时间和幅度,而这些因素的破坏会导致 GA 水平降低和下游基因的表达降低。当白天光照减少时,夜间的 gibberellin 3-beta-dioxygenase 1 (GA3ox1) 的碳依赖性诱导受到严重阻碍,特别是导致生物活性 GA4 水平降低,同时夜间叶片扩展率下降。我们将这种叶片扩展率的下降主要归因于光合物的减少。然而,缓解 GA 限制的植物的叶片扩展有显著改善,这表明在不同的碳可用性下,GA 在生长控制中的重要性。在这个短时间内,上游 GA 生物合成基因(贝壳杉烯合酶和赤霉素 20 氧化酶 1,GA20ox1)的碳依赖性表达并没有转化为代谢物的变化。我们提出了一个模型,其中 GA3ox1 夜间生物合成生物活性 GA4 的程度由夜间淀粉储备的消耗决定,从而提供了 GA 响应的日常调整。