首页> 美国卫生研究院文献>Frontiers in Plant Science >Root physiological adaptations involved in enhancing P assimilation in mining and non-mining ecotypes of Polygonum hydropiper grown under organic P media
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Root physiological adaptations involved in enhancing P assimilation in mining and non-mining ecotypes of Polygonum hydropiper grown under organic P media

机译:在有机P介质下生长的何首乌水生植物的采矿和非采矿生态型中参与增强P同化的根系生理适应

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摘要

It is important to seek out plant species, high in phosphorus (P) uptake, for phytoremediation of P-enriched environments with a large amount of organic P (Po). P assimilation characteristics and the related mechanisms of Polygonum hydropiper were investigated in hydroponic media containing various concentrations of Po (1–8 mmol L-1) supplied as phytate. The mining ecotype (ME) showed significantly higher biomass in both shoots and roots compared to the non-mining ecotype (NME) at 4, 6, and 8 m mol L-1. Shoot P content of both ecotypes increased up to 4 mmol L-1 while root P content increased continually up to 8 mmol L-1 for the ME and up to 6 mmol L-1 for the NME. Root P content of the ME exceeded 1% dry weight under 6 and 8 mmol L-1. The ME had significantly higher P accumulation in both shoots and roots compared to the NME supplied with 6 and 8 mmol L-1. The ME showed higher total root length, specific root length, root surface area, root volume, and displayed significantly greater root length, root surface area, and root volume of lateral roots compared to the NME grown in all Po treatments. Average diameter of lateral roots was 0.17–19 mm for the ME and 0.18–0.21 mm for the NME. Greater acid phosphatase and phytase activities were observed in the ME grown under different levels of Po relative to the NME. This indicated fine root morphology, enhanced acid phosphatase and phytase activities might be adaptations to high Po media. Results from this study establish that the ME of P. hydropiper is capable of assimilating P from Po media and is a potential material for phytoremediation of polluted area with high Po.
机译:重要的是要找到对磷(P)吸收较高的植物物种,以便用大量有机P(Po)对富含P的环境进行植物修复。在含有不同浓度植酸磷(1-8 mmol L -1 )的水培培养基中,研究了何首乌的磷同化特性及其相关机理。在4、6和8 m mol L -1 下,采矿生态型(ME)的茎和根生物量均显着高于非采矿生态型(NME)。两种生态型的茎中P含量均增加至4 mmol L -1 ,而ME的根部P含量持续增加至8 mmol L -1 和6 mmol L NME的 -1 。在6和8 mmol L -1 下,ME的根磷含量超过干重的1%。与提供6和8 mmol L -1 的NME相比,ME在芽和根中均具有更高的P积累。与在所有Po处理中生长的NME相比,ME显示出更高的总根长,比根长,根表面积,根体积,并显示出明显更大的根长,根表面积和侧根的根体积。 ME侧根的平均直径为0.17–19 mm,NME为0.18–0.21 mm。相对于NME,在不同Po水平下生长的ME中观察到更高的酸性磷酸酶和植酸酶活性。这表明良好的根系形态,增强的酸性磷酸酶和植酸酶活性可能是对高Po培养基的适应。这项研究的结果表明,P。hydropiper的ME能够吸收Po介质中的P,并且是对高Po污染区进行植物修复的潜在材料。

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