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A new mathematical model to explore microbial processes and their constraints in phytoplankton colonies and sinking marine aggregates

机译:探索浮游植物群落和沉没海洋团聚体中微生物过程及其限制的新数学模型

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N2-fixing colonies of cyanobacteria and aggregates of phytoplankton and detritus sinking hundreds of meters per day are instrumental for the ocean’s sequestration of CO2 from the atmosphere. Understanding of small-scale microbial processes associated with phytoplankton colonies and aggregates is therefore crucial for understanding large-scale biogeochemical processes in the ocean. Phytoplankton colonies and sinking aggregates are characterized by steep concentration gradients of gases and nutrients in their interior. Here, we present a mechanistic mathematical model designed to perform modeling of small-scale fluxes and evaluate the physical, chemical, and biological constraints of processes that co-occur in phytoplankton colonies and sinking porous aggregates. The model accurately reproduced empirical measurements of O2 concentrations and fluxes measured in sinking aggregates. Common theoretical assumptions of either constant concentration or constant flux over the entire surface did not apply to sinking aggregates. Consequently, previous theoretical models overestimate O2 flux in these aggregates by as high as 15-fold.
机译:每天要下沉数百米的蓝细菌的固氮菌落以及浮游植物和碎屑的聚集体,对海洋从大气中吸收二氧化碳起了重要作用。因此,了解与浮游植物群落和聚集体有关的小规模微生物过程对于理解海洋中的大规模生物地球化学过程至关重要。浮游植物群落和沉没的聚集体的特征是其内部气体和养分的浓度梯度陡峭。在这里,我们提出了一种机械数学模型,旨在进行小尺度通量的建模,并评估浮游植物群落和下沉多孔聚集体共同发生的过程的物理,化学和生物学约束。该模型准确地再现了下沉骨料中O2浓度和通量的经验测量值。整个表面上恒定浓度或恒定通量的常见理论假设不适用于沉没的聚集体。因此,以前的理论模型高估了这些聚集体中的O2通量,高达15倍。

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