昼夜节律钟对番茄盐胁迫相关基因表达的时间限制。

IF 1.4 4区 生物学 Q4 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
K. Coyne, M. M. Davis, T. Mizoguchi, Ryosuke Hayama
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引用次数: 7

摘要

暴露于盐度会导致植物触发一组特定基因的转录诱导,以启动盐度胁迫反应。最近的转录组分析显示,盐度诱导基因群体的表达也表现出昼夜节律。然而,由于这些分析是独立于盐度胁迫的分析进行的,因此尚不清楚观察到的昼夜节律是否只是独立于盐度诱导的基础表达水平,或者这些节律证明了昼夜节律时钟的功能,以主动地将盐度诱导的发生时间限制在一天中的特定时间。在这里,通过使用番茄,我们证明了特定盐度胁迫相关基因表达中的盐诱导性在一天中是受时间控制的。编码钠/氢反转运蛋白和脯氨酸生物合成酶的SlSOS2和P5CS的表达中盐度诱导的发生仅限于早晨,而编码参与番茄对几种非生物胁迫(如盐度和干旱)反应的转录因子的SlDREB2的表达仅限于傍晚。我们的研究结果不仅证明了进一步研究昼夜波动条件下昼夜节律门控盐度胁迫反应的基础和意义的潜在重要性,而且为开发一种提高番茄耐盐性能的有效方法提供了潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Temporal restriction of salt inducibility in expression of salinity-stress related gene by the circadian clock in Solanum lycopersicum.
Exposure to salinity causes plants to trigger transcriptional induction of a particular set of genes for initiating salinity-stress responses. Recent transcriptome analyses reveal that expression of a population of salinity-inducible genes also exhibits circadian rhythms. However, since the analyses were performed independently from those with salinity stress, it is unclear whether the observed circadian rhythms simply represent their basal expression levels independently from their induction by salinity, or these rhythms demonstrate the function of the circadian clock to actively limit the timing of occurrence of the salinity induction to particular times in the day. Here, by using tomato, we demonstrate that salt inducibility in expression of particular salinity-stress related genes is temporally controlled in the day. Occurrence of salinity induction in expression of SlSOS2 and P5CS, encoding a sodium/hydrogen antiporter and an enzyme for proline biosynthesis, is limited specifically to the morning, whereas that of SlDREB2, which encodes a transcription factor involved in tomato responses to several abiotic stresses such as salinity and drought, is restricted specifically to the evening. Our findings not only demonstrate potential importance in further investigating the basis and significance of circadian gated salinity stress responses under fluctuating day/night conditions, but also provide the potential to exploit an effective way for improving performance of salinity resistance in tomato.
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来源期刊
Plant Biotechnology
Plant Biotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-PLANT SCIENCES
CiteScore
2.90
自引率
18.80%
发文量
45
审稿时长
6-12 weeks
期刊介绍: Plant Biotechnology is an international, open-access, and online journal, published every three months by the Japanese Society for Plant Biotechnology. The journal, first published in 1984 as the predecessor journal, “Plant Tissue Culture Letters” and became its present form in 1997 when the society name was renamed to Japanese Society for Plant Cell and Molecular Biology, publishes findings in the areas from basic- to application research of plant biotechnology. The aim of Plant Biotechnology is to publish original and high-impact papers, in the most rapid turnaround time for reviewing, on the plant biotechnology including tissue culture, production of specialized metabolites, transgenic technology, and genome editing technology, and also on the related research fields including molecular biology, cell biology, genetics, plant breeding, plant physiology and biochemistry, metabolic engineering, synthetic biology, and bioinformatics.
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