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短柄草中磷转运蛋白(PHT)基因在缺磷响应中的鉴定与表达分析

Identification and expression analysis of phosphate transporter (PHT) genes in Brachypodium distachyon in response to phosphorus deficiency.

作者信息

Friji Chiraz, Boubakri Hatem, Martinez Luisa M, Torres Laura Ruiz, Manzaneda Antonio José, Gandour Mhemmed

机构信息

Laboratory of Extremophile Plants, Centre of Biotechnology of Borj-Cedria, Hammam-Lif, Tunisia.

Faculty of Science and Technics of Sidi Bouzid, University of Kairouan, Kairouan, Tunisia.

出版信息

Protoplasma. 2025 May;262(3):515-529. doi: 10.1007/s00709-024-02014-0. Epub 2024 Dec 3.

Abstract

Phosphorus (P) is a macronutrient that plays a crucial role in critical plant functions. Phosphate transporters (PHTs) ensure the acquisition and translocation of Pi in the plant, thereby playing a key role in maintaining normal plant growth under Pi deficiency conditions. In Brachypodium distachyon, the grass model system, the function of individual PHT genes, remains largely unknown. Here, we identified the complete PHT gene family in B. distachyon, for the first time, and analyzed their expression profiles under Pi deficiency. Overall, 25 PHT genes in B. distachyon (BdPHTs) were identified, which were divided into four clades (PHT1-4). BdPHT genes were found to be unevenly distributed across the five chromosomes. Both segmental and tandem duplication events contributed to PHT gene expansion in B. distachyon which underwent a strong purifying selection. Moreover, exon-intron organization and motif composition were conserved within each PHT group consolidating the classification of the phylogenetic tree. Motif composition differs among the four PHT groups, indicating their functional divergence. Gene expression analysis using real-time quantitative PCR revealed that two BdPHT1 genes (BdPHT1.9 and BdPHT1.10) were upregulated in leaves, and seven (BdPHT1.9, BdPHT1.8, BdPHT1.7, BdPHT1.11, BdPHT1.12, BdPHT1.5, and BdPHT1.13) in roots under P deficiency suggesting their involvement in P uptake and translocation. Therefore, these results lay the foundation for future functional analyses in B. distachyon to improve P deficiency tolerance in B. distachyon and other cereals.

摘要

磷(P)是一种大量营养素,在植物的关键功能中起着至关重要的作用。磷酸盐转运蛋白(PHTs)确保植物体内无机磷(Pi)的获取和转运,从而在维持缺磷条件下植物的正常生长中发挥关键作用。在禾本科模式植物二穗短柄草中,单个PHT基因的功能仍 largely未知。在此,我们首次鉴定了二穗短柄草中的完整PHT基因家族,并分析了它们在缺磷条件下的表达谱。总体而言,在二穗短柄草中鉴定出了25个PHT基因(BdPHTs),它们被分为四个进化枝(PHT1 - 4)。发现BdPHT基因在五条染色体上分布不均。片段重复和串联重复事件都促成了二穗短柄草中PHT基因的扩增,该过程经历了强烈的纯化选择。此外,每个PHT组内的外显子 - 内含子组织和基序组成是保守的,这巩固了系统发育树的分类。四个PHT组之间的基序组成不同,表明它们的功能存在差异。使用实时定量PCR进行的基因表达分析表明,两个BdPHT1基因(BdPHT1.9和BdPHT1.10)在叶片中上调表达,七个基因(BdPHT1.9、BdPHT1.8、BdPHT1.7、BdPHT1.11、BdPHT1.12、BdPHT1.5和BdPHT1.13)在缺磷条件下的根中上调表达,表明它们参与了磷的吸收和转运。因此,这些结果为未来在二穗短柄草中进行功能分析奠定了基础,以提高二穗短柄草和其他谷类作物对缺磷的耐受性。

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