首页> 美国卫生研究院文献>Plant Physiology >Focus Issue on Phosphorus Plant Physiology: Phosphate Utilization Efficiency Correlates with Expression of Low-Affinity Phosphate Transporters and Noncoding RNA IPS1 in Barley
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Focus Issue on Phosphorus Plant Physiology: Phosphate Utilization Efficiency Correlates with Expression of Low-Affinity Phosphate Transporters and Noncoding RNA IPS1 in Barley

机译:磷植物生理学的重点问题:大麦中磷酸盐的利用效率与低亲和力磷酸盐转运蛋白和非编码RNA IPS1的表达相关

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摘要

Genetic variation in phosphorus (P) efficiency exists among wheat (Triticum aestivum) and barley (Hordeum vulgare) genotypes, but the underlying mechanisms for the variation remain elusive. High- and low-affinity phosphate (Pi) PHT1 transporters play an indispensable role in P acquisition and remobilization. However, little is known about genetic variation in PHT1 gene expression and association with P acquisition efficiency (PAE) and P utilization efficiency (PUE). Here, we present quantitative analyses of transcript levels of high- and low-affinity PHT1 Pi transporters in four barley genotypes differing in PAE. The results showed that there was no clear pattern in the expression of four paralogs of the high-affinity Pi transporter HvPHT1;1 among the four barley genotypes, but the expression of a low-affinity Pi transporter, HvPHT1;6, and its close homolog HvHPT1;3 was correlated with the genotypes differing in PUE. Interestingly, the expression of HvPHT1;6 and HvPHT1;3 was correlated with the expression of HvIPS1 (for P starvation inducible; noncoding RNA) but not with HvIPS2, suggesting that HvIPS1 plays a distinct role in the regulation of the low-affinity Pi transporters. In addition, high PUE was found to be associated with high root-shoot ratios in low-P conditions, indicating that high carbohydrate partitioning into roots occurs simultaneously with high PUE. However, high PUE accompanying high carbon partitioning into roots could result in low PAE. Therefore, the optimization of PUE through the modification of low-affinity Pi transporter expression may assist further improvement of PAE for low-input agriculture systems.
机译:小麦(Triticum aestivum)和大麦(Hordeum vulgare)基因型之间存在磷(P)效率的遗传变异,但变异的潜在机制仍然难以捉摸。高亲和力和低亲和力磷酸盐(Pi)PHT1转运蛋白在磷的获取和迁移中起着不可或缺的作用。但是,关于PHT1基因表达的遗传变异以及与P采集效率(PAE)和P利用效率(PUE)的关联知之甚少。在这里,我们目前定量分析高亲和力和低亲和力PHT1 Pi转运蛋白在四种大麦基因型中PAE不同的转录水平。结果显示,在四种大麦基因型中,高亲和力Pi转运蛋白HvPHT1; 1的四个旁系同源物的表达没有明确的模式,但是低亲和力Pi转运蛋白HvPHT1; 6及其紧密同源物的表达没有明显的模式。 HvHPT1; 3与PUE不同的基因型相关。有趣的是,HvPHT1; 6和HvPHT1; 3的表达与HvIPS1的表达相关(对于P饥饿诱导;非编码RNA),但与HvIPS2不相关,这表明HvIPS1在低亲和力Pi转运蛋白的调控中起着独特的作用。 。另外,在低磷条件下,高PUE与高根冠比率相关,表明高碳水化合物分配到根中与高PUE同时发生。然而,伴随着高碳分配到根中的高PUE可能导致低PAE。因此,通过修饰低亲和力Pi转运蛋白表达优化PUE可能有助于进一步改善低投入农业系统的PAE。

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