首页> 美国卫生研究院文献>Plant Physiology >Focus Issue on Phosphorus Plant Physiology: White Lupin Cluster Root Acclimation to Phosphorus Deficiency and Root Hair Development Involve Unique Glycerophosphodiester Phosphodiesterases
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Focus Issue on Phosphorus Plant Physiology: White Lupin Cluster Root Acclimation to Phosphorus Deficiency and Root Hair Development Involve Unique Glycerophosphodiester Phosphodiesterases

机译:磷植物生理学的重点问题:白羽扇豆簇根适应磷缺乏和根毛发育涉及独特的甘油磷酸二酯磷酸二酯酶

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摘要

White lupin (Lupinus albus) is a legume that is very efficient in accessing unavailable phosphorus (Pi). It develops short, densely clustered tertiary lateral roots (cluster/proteoid roots) in response to Pi limitation. In this report, we characterize two glycerophosphodiester phosphodiesterase (GPX-PDE) genes (GPX-PDE1 and GPX-PDE2) from white lupin and propose a role for these two GPX-PDEs in root hair growth and development and in a Pi stress-induced phospholipid degradation pathway in cluster roots. Both GPX-PDE1 and GPX-PDE2 are highly expressed in Pi-deficient cluster roots, particularly in root hairs, epidermal cells, and vascular bundles. Expression of both genes is a function of both Pi availability and photosynthate. GPX-PDE1 Pi deficiency-induced expression is attenuated as photosynthate is deprived, while that of GPX-PDE2 is strikingly enhanced. Yeast complementation assays and in vitro enzyme assays revealed that GPX-PDE1 shows catalytic activity with glycerophosphocholine while GPX-PDE2 shows highest activity with glycerophosphoinositol. Cell-free protein extracts from Pi-deficient cluster roots display GPX-PDE enzyme activity for both glycerophosphocholine and glycerophosphoinositol. Knockdown of expression of GPX-PDE through RNA interference resulted in impaired root hair development and density. We propose that white lupin GPX-PDE1 and GPX-PDE2 are involved in the acclimation to Pi limitation by enhancing glycerophosphodiester degradation and mediating root hair development.
机译:白羽扇豆(Lupinus albus)是一种豆科植物,可有效吸收不可利用的磷(Pi)。响应Pi的限制,它会发育出短而致密的三级侧根(群/蛋白根)。在本报告中,我们描述了来自白羽扇豆的两个甘油二磷酸二酯磷酸二酯酶(GPX-PDE)基因(GPX-PDE1和GPX-PDE2),并提出了这两个GPX-PDE在根毛生长和发育以及Pi胁迫诱导下的作用。簇根中的磷脂降解途径。 GPX-PDE1和GPX-PDE2均在缺乏Pi的簇根中高表达,尤其是在根毛,表皮细胞和维管束中。这两个基因的表达是Pi的可利用性和光合产物的函数。随着光合产物的缺乏,GPX-PDE1的Pi缺乏诱导的表达减弱,而GPX-PDE2的表达显着增强。酵母互补测定和体外酶测定显示,GPX-PDE1对甘油磷酸胆碱具有催化活性,而GPX-PDE2对甘油磷酸肌醇具有最高活性。 Pi缺乏簇根的无细胞蛋白质提取物对甘油磷酸胆碱和甘油磷酸肌醇均显示GPX-PDE酶活性。通过RNA干扰抑制GPX-PDE的表达会导致根毛发育和密度受损。我们建议白色羽扇豆GPX-PDE1和GPX-PDE2通过增强甘油二磷酸二酯的降解并介导根毛的发育而参与Pi限制的适应。

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