首页> 外文期刊>Plant physiology >The grapevine root-specific aquaporin VvPIP2;4N controls root hydraulic conductance and leaf gas exchange under well-watered conditions but not under water stress
【24h】

The grapevine root-specific aquaporin VvPIP2;4N controls root hydraulic conductance and leaf gas exchange under well-watered conditions but not under water stress

机译:葡萄根特有的水通道蛋白VvPIP2; 4N在灌溉条件良好的条件下控制根系的水力传导和叶片气体交换,但在水分胁迫下却不起作用

获取原文
获取原文并翻译 | 示例
           

摘要

We functionally characterized the grape (Vitis vinifera) VvPIP2;4N (for Plasma membrane Intrinsic Protein) aquaporin gene. Expression of VvPIP2;4N in Xenopus laevis oocytes increased their swelling rate 54-fold. Northern blot and quantitative reverse transcription-polymerase chain reaction analyses showed that VvPIP2;4N is the most expressed PIP2 gene in root. In situ hybridization confirmed root localization in the cortical parenchyma and close to the endodermis. We then constitutively overexpressed VvPIP2;4N in grape 'Brachetto', and in the resulting transgenic plants we analyzed (1) the expression of endogenous and transgenic VvPIP2;4N and of four other aquaporins, (2) whole-plant, root, and leaf ecophysiological parameters, and (3) leaf abscisic acid content. Expression of transgenic VvPIP2;4N inhibited neither the expression of the endogenous gene nor that of other PIP aquaporins in both root and leaf. Under well-watered conditions, transgenic plants showed higher stomatal conductance, gas exchange, and shoot growth. The expression level of VvPIP2;4N (endogenous + transgene) was inversely correlated to root hydraulic resistance. The leaf component of total plant hydraulic resistance was low and unaffected by overexpression of VvPIP2;4N. Upon water stress, the overexpression of VvPIP2;4N induced a surge in leaf abscisic acid content and a decrease in stomatal conductance and leaf gas exchange. Our results show that aquaporin-mediated modifications of root hydraulics play a substantial role in the regulation of water flow in well-watered grapevine plants, while they have a minor role upon drought, probably because other signals, such as abscisic acid, take over the control of water flow.
机译:我们在功能上表征了葡萄(Vitis vinifera)VvPIP2; 4N(质膜固有蛋白)水通道蛋白基因。非洲爪蟾卵母细胞中VvPIP2; 4N的表达使其溶胀率提高了54倍。 Northern印迹和定量逆转录-聚合酶链反应分析表明,VvPIP2; 4N是根中表达最多的PIP2基因。原位杂交证实了根在皮质薄壁组织中并靠近内胚层。然后,我们在葡萄“ Brachetto”中组成型过表达VvPIP2; 4N,在所得的转基因植物中,我们分析了(1)内源性和转基因VvPIP2; 4N和其他四种水通道蛋白的表达,(2)全株,根和叶生理参数,以及(3)叶片脱落酸含量。转基因VvPIP2; 4N的表达在根和叶中均不抑制内源基因或其他PIP水通道蛋白的表达。在灌溉条件良好的条件下,转基因植物表现出更高的气孔导度,气体交换和枝条生长。 VvPIP2; 4N(内源性+转基因)的表达水平与根部水力阻力成反比。 VvPIP2; 4N的过量表达对植物总水力阻力的叶片成分影响不大。在水分胁迫下,VvPIP2; 4N的过度表达引起叶片脱落酸含量的增加以及气孔导度和叶片气体交换的降低。我们的结果表明,水通道蛋白介导的根系水力调节在水分充足的葡萄植物中对水流的调节中起着重要作用,而在干旱时它们的作用很小,这可能是因为其他信号(例如脱落酸)接管了控制水流。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号