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首页> 外文期刊>Plant physiology >The dual-targeted purple acid phosphatase isozyme AtPAP26 is essential for efficient acclimation of Arabidopsis to nutritional phosphate deprivation
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The dual-targeted purple acid phosphatase isozyme AtPAP26 is essential for efficient acclimation of Arabidopsis to nutritional phosphate deprivation

机译:双靶点紫色酸性磷酸酶同工酶AtPAP26对于拟南芥有效适应营养性磷酸盐剥夺至关重要

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摘要

Induction of intracellular and secreted acid phosphatases (APases) is a widespread response of orthophosphate (Pi)-starved (2Pi) plants. APases catalyze Pi hydrolysis from a broad range of phosphomonoesters at an acidic pH. The largest class of nonspecific plant APases is comprised of the purple APases (PAPs). Although the biochemical properties, subcellular location, and expression of several plant PAPs have been described, their physiological functions have not been fully resolved. Recent biochemical studies indicated that AtPAP26, one of 29 PAPs encoded by the Arabidopsis (Arabidopsis thaliana) genome, is the predominant intracellular APase, as well as a major secreted APase isozyme up-regulated by 2Pi Arabidopsis. An atpap26 T-DNA insertion mutant lacking AtPAP26 transcripts and 55-kD immunoreactive AtPAP26 polypeptides exhibited: (1) 9-and 5-fold lower shoot and root APase activity, respectively, which did not change in response to Pi starvation, (2) a 40% decrease in secreted APase activity during Pi deprivation, (3) 35% and 50% reductions in free and total Pi concentration, respectively, as well as 5-fold higher anthocyanin levels in shoots of soil-grown 2Pi plants, and (4) impaired shoot and root development when subjected to Pi deficiency. By contrast, no deleterious influence of AtPAP26 loss of function occurred under Pi-replete conditions, or during nitrogen or potassium-limited growth, or oxidative stress. Transient expression of AtPAP26-mCherry in Arabidopsis suspension cells verified that AtPAP26 is targeted to the cell vacuole. Our results confirm that AtPAP26 is a principal contributor to Pi stress-inducible APase activity, and that it plays an important role in the Pi metabolism of 2Pi Arabidopsis.
机译:细胞内和分泌型酸性磷酸酶(APase)的诱导是正磷酸盐(Pi)饥饿(2Pi)植物的普遍反应。 APases在酸性pH值下可催化多种磷酸单酯的Pi水解。最大类别的非特异性植物APase由紫色APase(PAP)组成。尽管已描述了几种植物PAP的生化特性,亚细胞定位和表达,但它们的生理功能尚未完全解决。最近的生化研究表明,AtPAP26是拟南芥(Arabidopsis thaliana)基因组编码的29个PAP之一,是主要的细胞内APase,也是2Pi拟南芥上调的主要分泌型APase同工酶。缺少AtPAP26转录本和55-kD免疫反应性AtPAP26多肽的atpap26 T-DNA插入突变体表现出:(1)芽和根的APase活性分别降低了9倍和5倍,对Pi饥饿反应没有改变,(2)剥夺Pi期间,分泌的APase活性降低40%;(3)土壤生长的2Pi植物的芽中游离和总Pi浓度分别降低35%和50%,以及花色苷水平提高5倍,并且( 4)缺乏Pi时,芽和根发育受损。相比之下,在Pi充足的条件下,在氮或钾有限的生长或氧化应激期间,没有发生AtPAP26功能丧失的有害影响。 AtPAP26-mCherry在拟南芥悬浮细胞中的瞬时表达证实了AtPAP26靶向细胞液泡。我们的结果证实,AtPAP26是Pi胁迫诱导的APase活性的主要贡献者,并且在2Pi拟南芥的Pi代谢中起重要作用。

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