首页> 美国卫生研究院文献>Journal of Experimental Botany >Overexpression of VP a vacuolar H+-pyrophosphatase gene in wheat (Triticum aestivum L.) improves tobacco plant growth under Pi and N deprivation high salinity and drought
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Overexpression of VP a vacuolar H+-pyrophosphatase gene in wheat (Triticum aestivum L.) improves tobacco plant growth under Pi and N deprivation high salinity and drought

机译:小麦(Triticum aestivum L.)的液泡H +焦磷酸酶基因VP的过量表达可改善Pi和N剥夺高盐度和干旱条件下的烟草植物生长。

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摘要

Establishing crop cultivars with strong tolerance to P and N deprivation, high salinity, and drought is an effective way to improve crop yield and promote sustainable agriculture worldwide. A vacuolar H+-pyrophosphatase (V-H+-PPase) gene in wheat (TaVP) was functionally characterized in this study. TaVP cDNA is 2586-bp long and encodes a 775-amino-acid polypeptide that contains 10 conserved membrane-spanning domains. Transcription of TaVP was upregulated by inorganic phosphate (Pi) and N deprivation, high salinity, and drought. Transgene analysis revealed that TaVP overexpression improved plant growth under normal conditions and specifically under Pi and N deprivation stresses, high salinity, and drought. The improvement of growth of the transgenic plants was found to be closely related to elevated V-H+-PPase activities in their tonoplasts and enlarged root systems, which possibly resulted from elevated expression of auxin transport-associated genes. TaVP-overexpressing plants showed high dry mass, photosynthetic efficiencies, antioxidant enzyme activities, and P, N, and soluble carbohydrate concentrations under various growth conditions, particularly under the stress conditions. The transcription of phosphate and nitrate transporter genes was not altered in TaVP-overexpressing plants compared with the wild type, suggesting that high P and N concentrations regulated by TaVP were caused by increased root absorption area instead of alteration of Pi and NO3 acquisition kinetics. TaVP is important in the tolerance of multiple stresses and can serve as a useful genetic resource to improve plant P- and N-use efficiencies and to increase tolerance to high salinity and drought.
机译:建立对磷和氮缺乏,高盐分和干旱具有较强耐受性的作物品种,是提高作物产量和促进世界范围内可持续农业的有效途径。本研究对小麦的空泡H + -焦磷酸酶(V-H + -PPase)基因进行了功能鉴定。 TaVP cDNA长2586 bp,编码一个775个氨基酸的多肽,其中包含10个保守的跨膜结构域。无机磷酸盐(Pi)和氮的缺乏,高盐度和干旱会上调TaVP的转录。转基因分析表明,TaVP的过量表达在正常条件下,特别是在Pi和N缺乏胁迫,高盐度和干旱条件下,可改善植物的生长。发现转基因植物生长的改善与其在液泡中的V-H + -PPase活性升高和根系扩大密切相关,这可能是由于生长素运输相关基因表达升高所致。 TaVP过表达的植物在各种生长条件下,特别是在胁迫条件下,表现出较高的干重,光合效率,抗氧化酶活性以及P,N和可溶性碳水化合物的浓度。与野生型相比,过表达TaVP的植物的磷酸盐和硝酸盐转运蛋白基因的转录没有改变,这表明由TaVP调节的高P和N浓度是由根吸收面积增加而不是Pi和NO3的改变引起的。 的获取动力学。 TaVP对多种胁迫的耐受性很重要,并且可以作为有用的遗传资源,以提高植物对磷和氮的利用效率,并提高对高盐分和干旱的耐受性。

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