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The importance of root gravitropism for inter-root competition and phosphorus acquisition efficiency: results from a geometric simulation model.

机译:根向重力作用对根间竞争和磷吸收效率的重要性:来自几何模拟模型的结果。

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Low soil phosphorus availability alters the gravitropic response of basal roots in common bean (Phaseolus vulgaris), resulting in a shallower root system. A geometric model was used to test the hypotheses that a shallower root system is a positive adaptive response to low soil P availability by (1) concentrating root foraging in surface soil horizons, which generally have the highest P availability, and (2) reducing spatial competition for P among roots of the same plant. The growth of nine root systems contrasting in gravitropic response over 320 h was simulated in SimRoot, a dynamic three-dimensional geometric model of root growth and architecture. Phosphorus acquisition and inter-root competition were estimated with Depzone, a program that dynamically models nutrient diffusion to roots. Shallower root systems had greater P acquisition per unit carbon cost than deeper root systems, especially in older root systems. This was due to greater inter-root competition in deeper root systems, as measured by the volume of overlapping P depletion zones. Inter-root competition for P was a significant fraction of total soil P depletion, and increased with increasing values of the P diffusion coefficient (De), with root age, and with increasing root gravitropism. In heterogeneous soil having greater P availability in surface horizons, shallower root systems had greater P acquisition than deeper root systems, because of less inter-root competition as well as increased root foraging in the topsoil. Root P acquisition predicted by SimRoot was validated against values for bean P uptake in the field, with an r2 between observed and predicted values of 0.75. The results support the hypothesis that altered gravitropic sensitivity in P-stressed roots, resultingin a shallower root system, is a positive adaptive response to low P availability by reducing inter-root competition within the same plant and by concentrating root activity in soil domains with the greatest P availability.
机译:土壤磷素利用率低会改变普通豆(菜豆)基部根的重力运动,导致根系变浅。几何模型用于检验以下假设:较浅的根系是对土壤低磷有效性的积极适应性响应,方法是:(1)将根系觅食集中在表层土壤中,后者通常具有最高的磷有效性,(2)减少空间同一植物的根之间竞争磷。在SimRoot中模拟了9个根系在320 h内的重力响应形成的增长,这是一个动态的3维根系生长和结构几何模型。通过动态模拟养分向根部扩散的程序Depzone可以估算磷的吸收和根际竞争。较浅的根系比较深的根系具有更高的每单位碳成本P吸收,尤其是在较老的根系中。这是由于更深的根系中根系间的竞争加剧(以重叠的P耗尽区的体积衡量)。磷的根际竞争是土壤总磷消耗的重要部分,并且随着磷扩散系数(De)值的增加,根系年龄的增加以及根系重力的增加而增加。在表层土壤中具有较高的磷有效性的异质土壤中,较浅的根系比较深的根系具有更高的磷素吸收,这是因为根系间的竞争较少以及表土中根系觅食的增加。 SimRoot预测的根磷获取量已针对田间的大豆P吸收值进行了验证,r2在观测值和预测值之间为0.75。结果支持这样的假说,即改变P胁迫根系的重力敏感性,导致较浅的根系,是通过减少同一植物内根系间的竞争并通过在土壤域中将根系活动集中于低磷而对低磷有效性的一种积极适应性反应。最大的磷可用性。

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