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赤霉素参与了黄瓜在根区温度次优条件下生长和氮吸收的抑制过程。

Gibberellin Is Involved in Inhibition of Cucumber Growth and Nitrogen Uptake at Suboptimal Root-Zone Temperatures.

作者信息

Bai Longqiang, Deng Huihui, Zhang Xiaocui, Yu Xianchang, Li Yansu

机构信息

The Institute of Vegetables and Flowers, Chinese Academy of Agricultural Sciences, Beijing 100081, China.

College of Horticulture Science and Engineering, Shandong Agricultural University, Taian 271018, China.

出版信息

PLoS One. 2016 May 23;11(5):e0156188. doi: 10.1371/journal.pone.0156188. eCollection 2016.

Abstract

Suboptimal temperature stress often causes heavy yield losses of vegetables by suppressing plant growth during winter and early spring. Gibberellin acid (GA) has been reported to be involved in plant growth and acquisition of mineral nutrients. However, no studies have evaluated the role of GA in the regulation of growth and nutrient acquisition by vegetables under conditions of suboptimal temperatures in greenhouse. Here, we investigated the roles of GA in the regulation of growth and nitrate acquisition of cucumber (Cucumis sativus L.) plants under conditions of short-term suboptimal root-zone temperatures (Tr). Exposure of cucumber seedlings to a Tr of 16°C led to a significant reduction in root growth, and this inhibitory effect was reversed by exogenous application of GA. Expression patterns of several genes encoding key enzymes in GA metabolism were altered by suboptimal Tr treatment, and endogenous GA concentrations in cucumber roots were significantly reduced by exposure of cucumber plants to 16°C Tr, suggesting that inhibition of root growth by suboptimal Tr may result from disruption of endogenous GA homeostasis. To further explore the mechanism underlying the GA-dependent cucumber growth under suboptimal Tr, we studied the effect of suboptimal Tr and GA on nitrate uptake, and found that exposure of cucumber seedlings to 16°C Tr led to a significant reduction in nitrate uptake rate, and exogenous application GA can alleviate the down-regulation by up regulating the expression of genes associated with nitrate uptake. Finally, we demonstrated that N accumulation in cucumber seedlings under suboptimal Tr conditions was improved by exogenous application of GA due probably to both enhanced root growth and nitrate absorption activity. These results indicate that a reduction in endogenous GA concentrations in roots due to down-regulation of GA biosynthesis at transcriptional level may be a key event to underpin the suboptimal Tr-induced inhibition of root growth and nitrate uptake. These findings may have important practical implications in effective mitigation of suboptimal temperature-induced vegetable loss under greenhouse conditions.

摘要

低温胁迫常常通过在冬季和早春抑制植物生长而导致蔬菜严重减产。据报道,赤霉素(GA)参与植物生长和矿质营养的获取。然而,尚无研究评估GA在温室低温条件下对蔬菜生长和养分获取的调节作用。在此,我们研究了GA在短期根区低温(Tr)条件下对黄瓜(Cucumis sativus L.)植株生长和硝酸盐吸收的调节作用。将黄瓜幼苗暴露于16°C的根区温度下会导致根系生长显著减少,而外源施用GA可逆转这种抑制作用。GA代谢中几个关键酶编码基因的表达模式因低温Tr处理而改变,黄瓜植株暴露于16°C根区温度下会使黄瓜根内的内源GA浓度显著降低,这表明低温Tr对根系生长的抑制可能是由于内源GA稳态的破坏。为了进一步探究低温Tr条件下GA依赖的黄瓜生长的潜在机制,我们研究了低温Tr和GA对硝酸盐吸收的影响,发现将黄瓜幼苗暴露于16°C根区温度下会导致硝酸盐吸收速率显著降低,外源施用GA可通过上调与硝酸盐吸收相关基因的表达来缓解这种下调。最后,我们证明外源施用GA可改善低温Tr条件下黄瓜幼苗的氮积累,这可能是由于根系生长和硝酸盐吸收活性均增强所致。这些结果表明,转录水平上GA生物合成的下调导致根内内源GA浓度降低可能是低温Tr诱导根系生长和硝酸盐吸收抑制的关键因素。这些发现对于有效减轻温室条件下低温诱导的蔬菜损失可能具有重要的实际意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4611/4877016/dadf20af8fbe/pone.0156188.g001.jpg

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