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Coupling zymography with pH mapping reveals a shift in lupine phosphorus acquisition strategy driven by cluster roots

机译:具有pH映射的偶联酶谱显示由簇根驱动的羽扇磷磷采集策略的转变

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Phosphorus (P) availability affects the spatial and temporal distribution of phosphatase activity and acidification in the rhizosphere: two strongly interactive key strategies of nutrient acquisition by roots. Zymography was coupled with pH planar optode mapping to reveal the effects of P-availability (P deficiency, or with phytate or Ca(H2PO4)(2) amendment) on the spatial distribution of phosphatase activity, pH and rhizosphere extent around the taproot of lupine before and after cluster root formation. Before cluster root formation, phosphorus deficiency increased acid phosphatase activities by 20%, decreased pH by 0.8 units and broadened the rhizosphere extent by 0.4 mm across the taproot. Phytate (80 mg kg(-1)) addition dampened these changes before duster root formations. In contrast, the rhizosphere extent of phosphatase activity after cluster root formation was 0.2 mm narrower under P-deficiency than with Ca(H2PO4)(2) amendment. Due to cluster root formation, the hotspot areas of alkaline phosphatase activity were 40% larger for lupine grown under P-deficiency than amended with Ca(H2PO4)(2). Lupine rhizosphere strategies shifted during growth: increasing phosphatase activity, acidifying soil and broadening the rhizosphere around the taproot are dominant mechanisms before cluster root formation. After cluster root development, the main mechanism is increasing the area of phosphatase activity hotspots around cluster roots to enlarge the exploited soil volume.
机译:磷(P)可用性影响了根际磷酸酶活性的空间和时间分布和酸化:根系营养收集的两种强烈互动关键策略。酶谱系与pH平面光电极映射偶联,揭示p可用性(p缺乏或植物或植物或植物或植物或植物或钙酸盐或Ca(2)修正)对羽扇豆的噻虫的磷酸酶活性,pH和根际范围的空间分布的影响在群集根形成之前和之后。在簇根部形成之前,磷缺乏增加酸性磷酸酶活性将酸性磷酸酶活性增加20%,降低pH值0.8个单位,并在纺织根部的0.4毫米升高了根际程度。植物(80mg kg(-1))加加入在喷粉器根部形成前蘸湿这些变化。相反,簇根部形成后的磷酸酶活性的根际范围比p缺乏率窄0.2mm,而不是与Ca(H2PO4)(2)修正。由于簇根部形成,在p缺乏下生长的碱性磷酸酶活性的热点区域比用Ca(H2PO4)(2)修正为更大。羽扇豆根际策略在增长期间转移:磷酸酶活性,酸化土壤围绕根部形成前的酸化污染物和扩大根际,是簇根部形成前的主要机制。在簇根开发后,主要机制正在增加簇根部周围的磷酸酶活性热点面积,以扩大剥削的土壤体积。

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