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首页> 外文期刊>The Plant Cell >Nonredundant regulation of rice arbuscular mycorrhizal symbiosis by two members of the PHOSPHATE TRANSPORTER1 gene family.
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Nonredundant regulation of rice arbuscular mycorrhizal symbiosis by two members of the PHOSPHATE TRANSPORTER1 gene family.

机译:PHOSPHATE TRANSPORTER1基因家族的两个成员对水稻丛枝菌根共生的非冗余调节。

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摘要

Pi acquisition of crops via arbuscular mycorrhizal (AM) symbiosis is becoming increasingly important due to limited high-grade rock Pi reserves and a demand for environmentally sustainable agriculture. Here, we show that 70% of the overall Pi acquired by rice (Oryza sativa) is delivered via the symbiotic route. To better understand this pathway, we combined genetic, molecular, and physiological approaches to determine the specific functions of two symbiosis-specific members of the PHOSPHATE TRANSPORTER1 (PHT1) gene family from rice, ORYsa;PHT1;11 (PT11) and ORYsa;PHT1;13 (PT13). The PT11 lineage of proteins from mono- and dicotyledons is most closely related to homologs from the ancient moss, indicating an early evolutionary origin. By contrast, PT13 arose in the Poaceae, suggesting that grasses acquired a particular strategy for the acquisition of symbiotic Pi. Surprisingly, mutations in either PT11 or PT13 affected the development of the symbiosis, demonstrating that both genes are important for AM symbiosis. For symbiotic Pi uptake, however, only PT11 is necessary and sufficient. Consequently, our results demonstrate that mycorrhizal rice depends on the AM symbiosis to satisfy its Pi demands, which is mediated by a single functional Pi transporter, PT11.Digital Object Identifier http://dx.doi.org/10.1105/tpc.112.104901
机译:由于高品位的岩石Pi储量有限和对环境可持续农业的需求,通过丛枝菌根(AM)共生获得Pi的作物变得越来越重要。在这里,我们表明,大米(Oryza sativa)获得的全部Pi的70%是通过共生途径传递的。为了更好地了解该途径,我们结合了遗传,分子和生理学方法,确定了水稻ORYsa; PHT1; 11(PT11)和ORYsa; PHT1的两个共生特异性成员PHOSPHATE TRANSPORTER1(PHT1)基因家族的特定功能。 ; 13(PT13)。单子叶和双子叶植物的PT11谱系与古代苔藓的同系物最密切相关,表明它是早期进化起源。相比之下,PT13在禾本科(Poaceae)中出现,表明草获得了获取共生Pi的特殊策略。出人意料的是,PT11或PT13中的突变影响共生的发展,表明这两个基因对于AM共生均很重要。但是,对于共生Pi的摄取,仅PT11是必要和充分的。因此,我们的结果表明,菌根水稻可以通过AM共生来满足其Pi需求,这是由单个功能性Pi转运蛋白PT11介导的。数字对象标识符http://dx.doi.org/10.1105/tpc.112.104901

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