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Sequential nutrient uptake as a potential mechanism for phytoplankton to maintain high primary productivity and balanced nutrient stoichiometry

机译:连续吸收养分是浮游植物维持高初级生产力和平衡养分化学计量的潜在机制

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We hypothesize that phytoplankton have the sequential nutrient uptake strategy to maintain nutrient stoichiometry and high primary productivity in the water column. According to this hypothesis, phytoplankton take up the most limiting nutrient first until depletion, continue to draw down non-limiting nutrients and then take up the most limiting nutrient rapidly when it is available. These processes would result in the variation of ambient nutrient ratios in the water column around the Redfield ratio. We used high-resolution continuous vertical profiles of nutrients, nutrient ratios and on-board ship incubation experiments to test this hypothesis in the Strait of Georgia. At the surface in summer, ambient NOsub3/subsup?/sup was depleted with excess POsub4/subsup3?/sup and SiOsub4/subsup?/sup remaining, and as a result, both N?:?P and N?:?Si ratios were low. The two ratios increased to about 10?:?1 and 0.?45?:?1, respectively, at 20?m. Time series of vertical profiles showed that the leftover POsub4/subsup3?/sup continued to be removed, resulting in additional phosphorus storage by phytoplankton. The N?:?P ratios at the nutricline in vertical profiles responded differently to mixing events. Field incubation of seawater samples also demonstrated the sequential uptake of NOsub3/subsup?/sup (the most limiting nutrient) and then POsub4/subsup3?/sup and SiOsub4/subsup?/sup (the non-limiting nutrients). This sequential uptake strategy allows phytoplankton to acquire additional cellular phosphorus and silicon when they are available and wait for nitrogen to become available through frequent mixing of NOsub3/subsup?/sup (or pulsed regenerated NHsub4/sub). Thus, phytoplankton are able to maintain high productivity and balance nutrient stoichiometry by taking advantage of vigorous mixing regimes with the capacity of the stoichiometric plasticity. To our knowledge, this is the first study to show the in situ dynamics of continuous vertical profiles of N?:?P and N?:?Si ratios, which can provide insight into the in situ dynamics of nutrient stoichiometry in the water column and the inference of the transient status of phytoplankton nutrient stoichiometry in the coastal ocean.
机译:我们假设浮游植物具有顺序养分吸收策略,以维持水柱中养分化学计量和较高的初级生产力。根据这一假设,浮游植物首先吸收最主要的养分,直至枯竭,然后继续吸收非限制性的养分,然后在可用时迅速吸收最主要的养分。这些过程将导致水域中Redfield比率附近的环境养分比率发生变化。我们使用了高分辨率的养分连续垂直剖面,养分比和船上孵化实验来检验乔治亚海峡的这一假设。在夏季的表层,周围的NO 3 被过量的PO 4 3?和SiO 4 ,结果,N 2 ∶P和N 2 ∶Si的比率均较低。在20μm处,这两个比率分别增加到约10 ∶1:1和0.45 ∶1:1。垂直剖面的时间序列显示,剩余的PO 4 3?继续被去除,导致浮游植物增加了磷的储存。垂直剖面中营养素的N + ∶P比率对混合事件的反应不同。海水样品的现场温育还表明,NO 3 (限制性最强的营养素)随后被PO 4 3?依次吸收。 和SiO 4 (非限制性营养素)。这种顺序吸收策略可使浮游植物在可用时获得额外的细胞磷和硅,并通过频繁混合NO 3 (或脉冲再生的NH)等待氮变得可用。 4 )。因此,浮游植物能够通过利用有力的混合机制和化学计量可塑性的能力来维持高生产率并平衡营养化学计量。据我们所知,这是第一项显示N 2:?P和N 2:?Si比的连续垂直剖面的原位动力学的研究,该研究可提供水柱和土壤中养分化学计量的原位动力学的信息。在沿海海洋中浮游植物营养素化学计量的瞬时状态的推论。

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