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植物耐高盐和水分亏缺需要多种磷脂酶D。

Multiple PLDs required for high salinity and water deficit tolerance in plants.

作者信息

Bargmann Bastiaan O R, Laxalt Ana M, ter Riet Bas, van Schooten Bas, Merquiol Emmanuelle, Testerink Christa, Haring Michel A, Bartels Dorothea, Munnik Teun

机构信息

Section of Plant Physiology, Swammerdam Institute for Life Sciences (SILS), Universiteit van Amsterdam, Amsterdam, The Netherlands.

出版信息

Plant Cell Physiol. 2009 Jan;50(1):78-89. doi: 10.1093/pcp/pcn173. Epub 2008 Nov 18.

Abstract

High salinity and drought have received much attention because they severely affect crop production worldwide. Analysis and comprehension of the plant's response to excessive salt and dehydration will aid in the development of stress-tolerant crop varieties. Signal transduction lies at the basis of the response to these stresses, and numerous signaling pathways have been implicated. Here, we provide further evidence for the involvement of phospholipase D (PLD) in the plant's response to high salinity and dehydration. A tomato (Lycopersicon esculentum) alpha-class PLD, LePLDalpha1, is transcriptionally up-regulated and activated in cell suspension cultures treated with salt. Gene silencing revealed that this PLD is indeed involved in the salt-induced phosphatidic acid production, but not exclusively. Genetically modified tomato plants with reduced LePLDalpha1 protein levels did not reveal altered salt tolerance. In Arabidopsis (Arabidopsis thaliana), both AtPLDalpha1 and AtPLDdelta were found to be activated in response to salt stress. Moreover, pldalpha1 and plddelta single and double knock-out mutants exhibited enhanced sensitivity to high salinity stress in a plate assay. Furthermore, we show that both PLDs are activated upon dehydration and the knock-out mutants are hypersensitive to hyperosmotic stress, displaying strongly reduced growth.

摘要

高盐度和干旱备受关注,因为它们严重影响全球农作物产量。分析和理解植物对过量盐分和脱水的反应,将有助于培育耐胁迫的作物品种。信号转导是植物对这些胁迫反应的基础,并且已经涉及众多信号通路。在此,我们提供了磷脂酶D(PLD)参与植物对高盐度和脱水反应的进一步证据。一种番茄(Lycopersicon esculentum)α-类PLD,LePLDalpha1,在用盐处理的细胞悬浮培养物中,转录上调并被激活。基因沉默表明,这种PLD确实参与盐诱导的磷脂酸生成,但并非唯一参与。LePLDalpha1蛋白水平降低的转基因番茄植株未显示出耐盐性改变。在拟南芥(Arabidopsis thaliana)中,发现AtPLDalpha1和AtPLDdelta均响应盐胁迫而被激活。此外,在平板试验中,pldalpha1和plddelta单突变体及双突变体对高盐胁迫表现出增强的敏感性。此外,我们表明两种PLD在脱水时均被激活,且敲除突变体对高渗胁迫高度敏感,生长显著降低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26fd/2638713/05388a276591/pcn173f1.jpg

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