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Enhancement of Abscisic Acid Sensitivity and Reduction of Water Consumption in Arabidopsis by Combined Inactivation of the Protein Phosphatases Type 2C ABI1 and HAB11,[W]

机译:通过联合灭活2C ABI1型蛋白磷酸酶和HAB11来增强拟南芥中脱落酸的敏感性并减少耗水量[W]

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Abscisic acid (ABA) plays a key role in plant responses to abiotic stress, particularly drought stress. A wide number of ABA-hypersensitive mutants is known, however, only a few of them resist/avoid drought stress. In this work we have generated ABA-hypersensitive drought-avoidant mutants by simultaneous inactivation of two negative regulators of ABA signaling, i.e. the protein phosphatases type 2C (PP2Cs) ABA-INSENSITIVE1 (ABI1) and HYPERSENSITIVE TO ABA1 (HAB1). Two new recessive loss-of-function alleles of ABI1, abi1-2 and abi1-3, were identified in an Arabidopsis (Arabidopsis thaliana) T-DNA collection. These mutants showed enhanced responses to ABA both in seed and vegetative tissues, but only a limited effect on plant drought avoidance. In contrast, generation of double hab1-1 abi1-2 and hab1-1 abi1-3 mutants strongly increased plant responsiveness to ABA. Thus, both hab1-1 abi1-2 and hab1-1 abi1-3 were particularly sensitive to ABA-mediated inhibition of seed germination. Additionally, vegetative responses to ABA were reinforced in the double mutants, which showed a strong hypersensitivity to ABA in growth assays, stomatal closure, and induction of ABA-responsive genes. Transpirational water loss under drought conditions was noticeably reduced in the double mutants as compared to single parental mutants, which resulted in reduced water consumption of whole plants. Taken together, these results reveal cooperative negative regulation of ABA signaling by ABI1 and HAB1 and suggest that fine tuning of ABA signaling can be attained through combined action of PP2Cs. Finally, these results suggest that combined inactivation of specific PP2Cs involved in ABA signaling could provide an approach for improving crop performance under drought stress conditions.
机译:脱落酸(ABA)在植物应对非生物胁迫(尤其是干旱胁迫)中起关键作用。已知许多ABA超敏突变体,其中只有少数抵抗/避免干旱胁迫。在这项工作中,我们通过同时灭活ABA信号的两个负调控因子(即2C型蛋白磷酸酶(PP2Cs)ABA-INSENSITIVE1(ABI1)和对ABA1过敏的人)产生了ABA超敏干旱避免突变体。在拟南芥(拟南芥)T-DNA集合中鉴定出两个新的ABI1隐性功能丧失等位基因abi1-2和abi1-3。这些突变体在种子和营养组织中均显示出对ABA的增强反应,但对避免植物干旱的作用有限。相反,双hab1-1 abi1-2和hab1-1 abi1-3突变体的产生强烈增加了植物对ABA的响应能力。因此,hab1-1 abi1-2和hab1-1 abi1-3都对ABA介导的种子发芽抑制特别敏感。此外,双重突变体增强了对ABA的营养反应,这在生长测定,气孔关闭和ABA响应基因的诱导中显示出对ABA的强烈超敏性。与单亲本突变体相比,双突变体在干旱条件下的蒸腾失水明显减少,这导致整株植物的耗水量减少。综上所述,这些结果揭示了ABI1和HAB1对ABA信号的协同负调节作用,并暗示可以通过PP2C的联合作用实现ABA信号的微调。最后,这些结果表明,与ABA信号传导有关的特定PP2C的联合失活可以提供一种在干旱胁迫条件下提高作物生长性能的方法。

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  • 来源
    《Plant Physiology》 |2006年第4期|p.1389-1399|共11页
  • 作者单位

    Instituto de Biología Molecular y Celular de Plantas, Universidad Politécnica de Valencia-Consejo Superior de Investigaciones Científicas, E–46022 Valencia, Spain (A.S., R.S., P.L.R.);

    and Cell and Developmental Biology Section, Division of Biological Sciences and Center for Molecular Genetics, University of California, San Diego, La Jolla, California 92093–0116 (N.R., M.H.M., J.I.S.);

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