首页> 外文OA文献 >Characterization of the Rice PHO1 Gene Family Reveals a Key Role for OsPHO1;2 in Phosphate Homeostasis and the Evolution of a Distinct Clade in Dicotyledons1[C][W][OA]
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Characterization of the Rice PHO1 Gene Family Reveals a Key Role for OsPHO1;2 in Phosphate Homeostasis and the Evolution of a Distinct Clade in Dicotyledons1[C][W][OA]

机译:水稻PHO1基因家族的特征揭示了OsPHO1; 2在磷酸盐稳态和双子叶植物1进化枝进化中的关键作用[C] [W] [OA]

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摘要

Phosphate homeostasis was studied in a monocotyledonous model plant through the characterization of the PHO1 gene family in rice (Oryza sativa). Bioinformatics and phylogenetic analysis showed that the rice genome has three PHO1 homologs, which cluster with the Arabidopsis (Arabidopsis thaliana) AtPHO1 and AtPHO1;H1, the only two genes known to be involved in root-to-shoot transfer of phosphate. In contrast to the Arabidopsis PHO1 gene family, all three rice PHO1 genes have a cis-natural antisense transcript located at the 5 ′ end of the genes. Strand-specific quantitative reverse transcription-PCR analyses revealed distinct patterns of expression for sense and antisense transcripts for all three genes, both at the level of tissue expression and in response to nutrient stress. The most abundantly expressed gene was OsPHO1;2 in the roots, for both sense and antisense transcripts. However, while the OsPHO1;2 sense transcript was relatively stable under various nutrient deficiencies, the antisense transcript was highly induced by inorganic phosphate (Pi) deficiency. Characterization of Ospho1;1 and Ospho1;2 insertion mutants revealed that only Ospho1;2 mutants had defects in Pi homeostasis, namely strong reduction in Pi transfer from root to shoot, which was accompanied by low-shoot and high-root Pi. Our data identify OsPHO1;2 as playing a key role in the transfer of Pi from roots to shoots in rice, and indicate that this gene could be regulated by its cis-natural antisense transcripts. Furthermore, phylogenetic analysis of PHO1 homologs in monocotyledons and dicotyledons revealed the emergence of a distinct clade of PHO1 genes in dicotyledons, which include members having roles other than long-distance Pi transport.
机译:通过对水稻(Oryza sativa)中PHO1基因家族的鉴定,在单子叶植物模型中研究了磷酸盐的动态平衡。生物信息学和系统发育分析表明,水稻基因组具有三个PHO1同源物,它们与拟南芥(Arabidopsis thaliana)AtPHO1和AtPHO1; H1聚在一起,这是唯一已知与磷酸盐的根到茎转移有关的两个基因。与拟南芥PHO1基因家族相反,所有三个水稻PHO1基因在其基因的5'端均具有顺式天然反义转录本。链特异性定量逆转录-PCR分析揭示了在组织表达水平和对营养胁迫的响应下,所有三个基因的有义和反义转录本的不同表达模式。无论是有义还是反义转录本,表达最丰富的基因在根中都是OsPHO1; 2。但是,虽然OsPHO1; 2有义转录本在各种营养缺乏条件下相对稳定,但反义转录本是由无机磷酸盐(Pi)缺乏引起的。 Ospho1; 1和Ospho1; 2插入突变体的特征表明,只有Ospho1; 2突变体在Pi稳态中存在缺陷,即从根到芽的Pi转移强烈减少,并伴有低芽和高根Pi。我们的数据确定OsPHO1; 2在Pi从根到芽的转移中起着关键作用,并表明该基因可以由其顺式-天然反义转录物调控。此外,对单子叶植物和双子叶植物中PHO1同源物的系统发育分析表明,在双子叶植物中出现了明显的PHO1基因进化枝,其中包括除长距离Pi转运外还具有其他作用的成员。

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