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甘蓝型油菜 PHT1 磷酸盐转运蛋白 BnPht1;4 促进磷酸盐吸收并影响转基因拟南芥的根系结构。

A Brassica napus PHT1 phosphate transporter, BnPht1;4, promotes phosphate uptake and affects roots architecture of transgenic Arabidopsis.

机构信息

Hubei Key Laboratory of Genetic Regulation and Integrative Biology, School of Life Sciences, Central China Normal University, Wuhan, 430079, China.

出版信息

Plant Mol Biol. 2014 Dec;86(6):595-607. doi: 10.1007/s11103-014-0249-y. Epub 2014 Sep 7.

Abstract

Phosphorus (P) is one of the essential nutrient elements for plant development. In this work, BnPht1;4 gene, encoding a phosphate transporter of PHT1 family, was isolated from Brassica napus. BnPht1;4 possesses the major characteristic of PHT1 high-affinity Pi transporters in plants, such as plasma-membrane localization and 12 transmembrane-spanning domains. Quantitative reverse-transcription PCR analysis and promoter activity assay showed BnPht1;4 was inert in plants under Pi sufficient conditions. However, expression of this gene was remarkably enhanced in roots under Pi deficient conditions. Interestingly, under low Pi conditions, its promoter activity is impaired in tips of elongated roots, suggesting that the high-affinity Pi transporter may be not involved in low Pi response at root tip area. The experimental results also indicated that BnPht1;4 induction by Pi deficiency is dependent on the existence of sugar. In 35S:BnPht1;4 transgenic Arabidopsis, the increase of Pi availability resulted in the change of root architecture under Pi deficient conditions, showing longer primary roots and lower lateral root density than that of wild type. By cis-element analysis, two P1BS and two W-box elements were found in BnPht1;4 promoter. Yeast one-hybrid assay indicated that PHR1 could bind to the BnPht1;4 promoter. P1BS elements in BnPht1;4 promoter are essential for BnPht1;4 induction in Pi starvation response. Furthermore, WRKY75 could bind to the BnPht1;4 promoter, in which W-box elements are important for this binding. These results indicated BnPht1;4 may be dually controlled by two family regulators under low Pi responses. Thus, our data on the regulative mechanism of high-affinity Pi transporter in Pi starvation response will be valuable for B. napus molecular agriculture.

摘要

磷(P)是植物发育所必需的营养元素之一。在这项工作中,从油菜中分离出编码 PHT1 家族磷酸盐转运体的 BnPht1;4 基因。BnPht1;4 具有植物中 PHT1 高亲和力 Pi 转运体的主要特征,如质膜定位和 12 个跨膜结构域。定量反转录 PCR 分析和启动子活性测定表明,在磷充足条件下,BnPht1;4 在植物中不活跃。然而,在缺磷条件下,该基因在根中表达显著增强。有趣的是,在低磷条件下,其启动子活性在伸长根的尖端受损,表明高亲和力 Pi 转运体可能不参与根尖区的低磷响应。实验结果还表明,BnPht1;4 对缺磷的诱导依赖于糖的存在。在 35S:BnPht1;4 转基因拟南芥中,增加磷的可用性会导致在缺磷条件下根构型的改变,表现出比野生型更长的主根和更低的侧根密度。通过顺式元件分析,在 BnPht1;4 启动子中发现了两个 P1BS 和两个 W-box 元件。酵母单杂交分析表明,PHR1 可以结合到 BnPht1;4 启动子上。BnPht1;4 启动子中的 P1BS 元件对于 P1BS 诱导在磷饥饿响应中是必需的。此外,WRKY75 可以结合到 BnPht1;4 启动子上,其中 W-box 元件对于这种结合很重要。这些结果表明,在低磷响应下,BnPht1;4 可能受到两个家族调节剂的双重控制。因此,我们关于高亲和力 Pi 转运体在磷饥饿响应中的调控机制的数据对于油菜的分子农业将是有价值的。

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