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首页> 外文期刊>Plant physiology >Constitutive and Companion Cell-Specific Overexpression of AVP1, Encoding a Proton-Pumping Pyrophosphatase, Enhances Biomass Accumulation, Phloem Loading, and Long-Distance Transport
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Constitutive and Companion Cell-Specific Overexpression of AVP1, Encoding a Proton-Pumping Pyrophosphatase, Enhances Biomass Accumulation, Phloem Loading, and Long-Distance Transport

机译:AVP1的本构和伴侣细胞特异表达,编码质子泵浦焦磷酸酶,增强生物量积累,韧皮部负载和远距离运输

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Plant productivity is determined in large part by the partitioning of assimilates between the sites of production and the sites of utilization. Proton-pumping pyrophosphatases (H+-PPases) are shown to participate in many energetic plant processes, including general growth and biomass accumulation, CO2 fixation, nutrient acquisition, and stress responses. H+-PPases have a well-documented role in hydrolyzing pyrophosphate (PPi) and capturing the released energy to pump H+ across the tonoplast and endomembranes to create proton motive force (pmf). Recently, an additional role for H+-PPases in phloem loading and biomass partitioning was proposed. In companion cells (CCs) of the phloem, H+-PPases localize to the plasma membrane rather than endomembranes, and rather than hydrolyzing PPi to create pmf, pmf is utilized to synthesize PPi. Additional PPi in the CCs promotes sucrose oxidation and ATP synthesis, which the plasma membrane P-type ATPase in turn uses to create more pmf for phloem loading of sucrose via sucrose-H+ symporters. To test this model, transgenic Arabidopsis (Arabidopsis thaliana) plants were generated with constitutive and CC-specific overexpression of AVP1, encoding type 1 ARABIDOPSIS VACUOLAR PYROPHOSPHATASE1. Plants with both constitutive and CC-specific overexpression accumulated more biomass in shoot and root systems. C-14-labeling experiments showed enhanced photosynthesis, phloem loading, phloem transport, and delivery to sink organs. The results obtained with constitutive and CC-specific promoters were very similar, such that the growth enhancement mediated by AVP1 overexpression can be attributed to its role in phloem CCs. This supports the model for H+-PPases functioning as PPi synthases in the phloem by arguing that the increases in biomass observed with AVP1 overexpression stem from improved phloem loading and transport.
机译:植物生产力在很大程度上取决于生产场所和利用场所之间同化物的分配。质子泵浦焦磷酸酶(H + -PPases)已显示出参与许多充满活力的植物过程,包括一般生长和生物量积累,CO2固定,养分获取和胁迫反应。 H + -PPases在水解焦磷酸盐(PPi)和捕获释放的能量以将H +泵送到液泡膜和内膜中以产生质子动力(pmf)方面具有广泛的作用。最近,有人提出了H + -PPases在韧皮部负载和生物量分配中的其他作用。在韧皮部的陪伴细胞(CC)中,H + -PPase定位于质膜而非内膜,并且不水解PPi产生pmf,而是利用pmf合成PPi。 CC中额外的PPi促进了蔗糖的氧化和ATP的合成,质膜P型ATPase继而利用这些糖来产生更多的pmf,以通过蔗糖-H +转运体增加蔗糖的韧皮部负载。为了测试该模型,产生了转基因拟南芥(Arabidopsis thaliana)植物,其组成型和CC特异表达的AVP1编码1型拟南芥球状焦磷酸酶1。组成型和CC特异表达的植物在芽和根系中积累了更多的生物量。 C-14标记实验显示出增强的光合作用,韧皮部负载,韧皮部运输以及向水槽器官的传递。用组成型启动子和CC特异性启动子获得的结果非常相似,因此AVP1过表达介导的生长增强可归因于其在韧皮部CC中的作用。这支持了H + -PPases在韧皮部中充当PPi合成酶的模型,理由是AVP1过表达所观察到的生物量增加源于韧皮部的负载和运输改善。

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