首页> 外文期刊>Plant and Soil >Phosphorus acquisition characteristics of cotton (Gossypium hirsutum L.), wheat (Triticum aestivum L.) and white lupin (Lupinus albus L.) under P deficient conditions
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Phosphorus acquisition characteristics of cotton (Gossypium hirsutum L.), wheat (Triticum aestivum L.) and white lupin (Lupinus albus L.) under P deficient conditions

机译:缺磷条件下棉花(Gossypium hirsutum L.),小麦(Triticum aestivum L.)和白羽扇豆(Lupinus albus L.)的磷吸收特性

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A rhizobox experiment was conducted to examine the P acquisition characteristics of cotton (Gossypium hirsutum L.), wheat (Triticum aestivum L.) and white lupin (Lupinus albus L.) under P-deficient conditions. We aimed to identify whether cotton is physiologically efficient at acquiring P through release of protons, phosphatases or carboxylates. Plants were pre-grown in the upper compartment of rhizoboxes filled with a sand and soil mixture to create a dense root mat against a 53 om polyester mesh. For each species, two P treatments (0 and 20 mg P kgp#) were applied to the upper compartment in order to create P-deficient and P-sufficient plants. At harvest, the upper compartment with intact plants was used for collection of root exudates while the lower soil compartment was sliced into thin layers (1 mm) parallel to the rhizoplane. Noticeable carboxylates release was only detected for white lupin. All P-deficient plants showed a capacity to acidify their rhizosphere soil to a distance of 3 mm. The activity of acid phosphatase was significantly enhanced in the soil-root interfaces of P-stressed cotton and wheat. Under P-deficient conditions, the P depletion zone of cotton from the lower soil compartment was narrowest (<2 mm) among the species. Phosphorus fractionation of the rhizosphere soil showed that P utilized by cotton mainly come from NaHCO-Pi and NaOH-Po pools while wheat and white lupin markedly depleted NaHCO-Pi and HCl-P pools, and the depletion zone extended to 3 mm. Wheat also depleted NaOH-Po to a significant level irrespective of P supply. The study suggests that acquisition of soil P is enhanced through P mobilization by root exudates for white lupin, and possibly proton release and extensive roots for wheat under P deficiency. In contrast, the P acquisition of cotton was associated with increased activity of phosphatases in rhizosphere soil.
机译:进行了根瘤菌试验,以研究在缺磷条件下棉花(Gossypium hirsutum L.),小麦(Triticum aestivum L.)和白羽扇豆(Lupinus albus L.)的磷吸收特性。我们旨在确定棉花是否在生理上有效地通过释放质子,磷酸酶或羧酸盐来获取磷。在装有沙子和土壤混合物的根际盒子的上部隔室中预种植植物,以在53 om聚酯网上形成致密的根垫。对于每个物种,对上部隔室进行两次磷处理(0和20 mg P kgp#),以创建磷缺乏和磷充足的植物。收获时,将上层完整的植物用于收集根系分泌物,而下层土壤则切成平行于根际平面的薄层(1毫米)。仅检测到白色羽扇豆有明显的羧酸盐释放。所有缺磷植物均具有将其根际土壤酸化至3 mm距离的能力。在磷胁迫的棉花和小麦的土壤-根界面,酸性磷酸酶的活性显着增强。在缺磷条件下,下部土壤区系棉花的P耗尽区在所有物种中最窄(<2 mm)。根际土壤的磷分级显示,棉花利用的磷主要来自NaHCO-Pi和NaOH-Po池,而小麦和白羽扇豆显着耗尽了NaHCO-Pi和HCl-P池,耗尽区扩展至3 mm。小麦也将NaOH-Po消耗到显着水平,而与磷的供应无关。该研究表明,白色羽扇豆的根系分泌物可通过动员磷来提高土壤对磷的吸收,在缺磷条件下,小麦的质子释放和广泛的根系可能会增加磷的吸收。相反,棉花的磷吸收与根际土壤中磷酸酶的活性增加有关。

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