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The Arabidopsis Purple Acid Phosphatase AtPAP10 Is Predominantly Associated with the Root Surface and Plays an Important Role in Plant Tolerance to Phosphate Limitation

机译:拟南芥紫色酸性磷酸酶AtPAP10主要与根表面相关并在植物对磷酸盐限制的耐受性中起重要作用

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摘要

Induction of secreted acid phosphatase (APase) is a universal response of higher plants to phosphate (Pi) limitation. These enzymes are thought to scavenge Pi from organophosphate compounds in the rhizosphere and thus to increase Pi availability to plants when Pi is deficient. The tight association of secreted APase with the root surface may make plants more efficient in the utilization of soil Pi around root tissues, which is present in organophosphate forms. To date, however, no systematic molecular, biochemical, and functional studies have been reported for any of the Pi starvation-induced APases that are associated with the root surface after secretion. In this work, using genetic and molecular approaches, we identified Arabidopsis (Arabidopsis thaliana) Purple Acid Phosphatase10 (AtPAP10) as a Pi starvation-induced APase that is predominantly associated with the root surface. The AtPAP10 protein has phosphatase activity against a variety of substrates. Expression of AtPAP10 is specifically induced by Pi limitation at both transcriptional and posttranscriptional levels. Functional analyses of multiple atpap10 mutant alleles and overexpressing lines indicated that AtPAP10 plays an important role in plant tolerance to Pi limitation. Genetic manipulation of AtPAP10 expression may provide an effective means for engineering new crops with increased tolerance to Pi deprivation.
机译:分泌型酸性磷酸酶(APase)的诱导是高等植物对磷酸盐(Pi)限制的普遍反应。人们认为这些酶从根际中的有机磷酸盐化合物中清除了Pi,从而在Pi缺乏时增加了植物对Pi的利用度。分泌的APase与根表面的紧密结合可以使植物更有效地利用以有机磷酸盐形式存在的根组织周围的土壤Pi。然而,迄今为止,还没有关于分泌后与根表面相关的任何由Pi饥饿诱导的APase进行系统的分子,生物化学和功能研究的报道。在这项工作中,使用遗传和分子方法,我们确定了拟南芥(Arabidopsis thaliana)紫色酸性磷酸酶10(AtPAP10)是Pi饥饿诱导的APase,主要与根表面相关。 AtPAP10蛋白具有针对多种底物的磷酸酶活性。 AtPAP10的表达在转录和转录后水平都受到Pi限制的特异性诱导。对多个atpap10突变等位基因和过表达系的功能分析表明,AtPAP10在植物对Pi限制的耐受性中起重要作用。 AtPAP10表达的遗传操作可能为工程化对Pi剥夺的耐受性增强的新作物提供有效手段。

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