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Allocation of foliar phosphorus fractions and leaf traits of tropical tree species in response to decreased soil phosphorus availability on Mount Kinabalu, Borneo

机译:婆罗洲京那巴鲁山土壤磷的有效利用减少对热带树种叶片磷含量和叶片性状的分配

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P>1. Foliar phosphorus (P) concentration is the sum of the concentrations of P fractions in cells, such as inorganic P and various P-containing biochemical compounds (e.g. nucleic acids, lipids and sugar phosphates). Plants generally reduce foliar P concentration and enhance P-use efficiency in response to low soil P availability. However, how plants allocate P among foliar P fractions to reduce foliar P concentration remains unclear.2. We investigated foliar P fractions and leaf traits of 21 tropical tree species along a soil P availability gradient across three tropical montane rain forests on Mount Kinabalu, Borneo. We chemically and sequentially fractionated foliar P into the following four fractions: structural P (i.e. phospholipids), metabolic P (collectively including Pi, ATP and sugar phosphates), nucleic acid P and residual P (phosphoproteins and unidentified residue).3. With decreasing soil P availability, foliar P concentration decreased and leaf mass per area (LMA) increased. The reduction in foliar P concentration strongly correlated with the reduction in the concentrations of both metabolic P and nucleic acid P. Although increased LMA implies an increased allocation to structural tissues, there was no trade-off in P allocation between metabolic P and structural P with increasing LMA. This suggests that tropical tree species on P-poor soils increase the toughness of leaves (i.e. prolonged leaf life span) and also maintain high photosynthetic P-use efficiency (PPUE) without increasing the cost of P for structural tissues.4. Phosphorus resorption efficiency increased with decreasing soil P availability. The amount of P resorbed before leaf abscission on P-poor soils exceeded that of metabolic P. This suggests that tropical tree species achieve the high P resorption efficiency by withdrawing immobile fractions (i.e. nucleic acid P and structural P) in addition to metabolic P.5. Synthesis. We conclude that tree species on P-poor soils reduce the demand for foliar P by reducing concentrations of both metabolic P and nucleic acid P, which may potentially limit growth and productivity. However, these tree species can maintain high whole-plant P-use efficiency, because such responses in foliar P fractions do not decrease PPUE, leaf life span and P resorption efficiency.
机译:P> 1。叶磷(P)浓度是细胞中P馏分浓度的总和,例如无机P和各种含P的生化化合物(例如核酸,脂质和糖磷酸酯)。植物通常会降低土壤磷的利用率,从而降低叶面磷的浓度并提高磷的利用效率。然而,植物如何在叶面磷级分中分配磷以降低叶面磷浓度尚不清楚。2。我们调查了婆罗洲Mount Kinabalu上三个热带山地雨林上沿土壤P有效性梯度分布的21种热带树种的叶面P含量和叶片性状。我们将叶面P进行化学和顺序分离,分为以下四个部分:结构性P(即磷脂),代谢性P(共同包括Pi,ATP和糖磷酸酯),核酸P和残余P(磷蛋白和未鉴定的残基); 3。随着土壤磷有效性的降低,叶面磷的浓度降低,每单位叶片质量(LMA)增加。叶面P浓度的降低与代谢P和核酸P的浓度降低密切相关。尽管LMA的增加暗示着对结构组织的分配增加,但是代谢P和结构P之间的P分配没有权衡。越来越多的LMA。这表明贫磷土壤上的热带树种增加了叶片的韧性(即延长了叶片的寿命),并且在不增加磷对结构组织的成本的情况下也保持了较高的光合磷利用效率(PPUE).4。磷的吸收效率随着土壤磷素利用率的降低而增加。在缺磷的土壤上叶片脱落之前吸收的P量超过了代谢P的量。这表明热带树木通过除代谢P之外还通过提取固定部分(即核酸P和结构P)来实现高P吸收效率。 5,合成。我们得出的结论是,贫磷土壤上的树种通过降低代谢磷和核酸P的浓度来减少对叶面磷的需求,这可能会限制其生长和生产力。但是,这些树种可以维持较高的全植物磷利用效率,因为叶面磷级分中的此类反应不会降低PPUE,叶片寿命和磷吸收效率。

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