The Arabidopsis PLAT domain protein1 promotes abiotic stress tolerance and growth in tobacco

被引:0
|
作者
Tae Kyung Hyun
Alfonso Albacete
Eric van der Graaff
Seung Hee Eom
Dominik K. Großkinsky
Hannah Böhm
Ursula Janschek
Yeonggil Rim
Walid Wahid Ali
Soo Young Kim
Thomas Roitsch
机构
[1] University of Graz,Institute of Plant Sciences
[2] Chungbuk National University,Department of Industrial Plant Science and Technology, College of Agricultural, Life and Environmental Sciences
[3] CEBAS-CSIC,Departamento de Nutrición Vegetal
[4] University of Copenhagen,Department of Plant and Environmental Sciences, Copenhagen Plant Science Centre
[5] Gyeongsang National University,Plant Molecular Biology and Biotechnology Research Center
[6] University of Würzburg,Department of Pharmaceutical Biology
[7] Chonnam National University,Department of Molecular Biotechnology and Kumho Life Science Laboratory, College of Agriculture and Life Sciences
[8] CzechGlobe AS CR,Global Change Research Centre
[9] v.v.i.,undefined
来源
Transgenic Research | 2015年 / 24卷
关键词
Abiotic stress; Biotic stress; Plant growth; gene; Tobacco;
D O I
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中图分类号
学科分类号
摘要
Plant growth and consequently crop yield can be severely compromised by abiotic and biotic stress conditions. Transgenic approaches that resulted in increased tolerance against abiotic stresses often were typically accompanied by adverse effects on plant growth and fitness under optimal growing conditions. Proteins that belong to the PLAT-plant-stress protein family harbour a single PLAT (Polycystin, Lipoxygenase, Alpha-toxin and Triacylglycerol lipase) domain and are ubiquitously present in monocot and dicot plant species. Until now, only limited data is available for PLAT-plant-stress family members, which suggested that these proteins in general could promote tolerance towards stress responses. We studied the function of the Arabidopsis PLAT-plant-stress protein AtPLAT1 employing heterologous gain-of-function analysis in tobacco. AtPLAT1 conferred increased abiotic stress tolerance in tobacco, evident by improved tolerance towards cold, drought and salt stresses, and promoted growth, reflected by a faster development under non-stressed conditions. However, the overexpression of AtPLAT1 in tobacco reduced the tolerance towards biotic stress conditions and, therefore, could be involved in regulating the crosstalk between abiotic and biotic stress responses. Thus, we showed that heterologously expressed AtPLAT1 functions as positive regulator of abiotic stress tolerance and plant growth, which could be an important new asset for strategies to develop plants with improved abiotic stress tolerance, without growth and subsequent yield penalties under optimal growth conditions.
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页码:651 / 663
页数:12
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