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Dust-and mineral-iron utilization by the marine dinitrogen-fixer Trichodesmium

机译:海洋固氮剂Trichodesmium对粉尘和矿物铁的利用

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Trichodesmium, a filamentous dinitrogen-fixing cyanobacterium, forms extensive blooms in nutrient-poor tropical and subtropical ocean waters. These cyano-bacteria contribute significantly to biological fixation of nitrogen from the atmosphere in these waters, and thereby fuel primary production and influence nutrient flow and the cycling of organic and inorganic matter 1,2. Trichodesmium blooms require large quantities of iron, which is partly supplied by the influx of wind-blown dust3. However, the processes and mechanisms associated with dust acquisition are poorly understood3-6. Here, we incubate natural populations and laboratory cultures of Trichodesmium with isotopically labelled iron oxides and desert dust, to determine how these cyanobacteria collect, process and use particulate iron. We show that, like most phytoplankton, Trichodesmium acquires only dissolved iron. However, unlike other studied phytoplankton, Trichodesmium accelerates the rate of iron dissolution from oxides and dust, through as yet unspecified cell-surface processes, and thereby increases cellular iron uptake rates. We show that natural puff (ball-shaped) colonies of Trichodesmium are particularly effective at dissolving dust and oxides, which we attribute to efficient dust trapping in their intricate colony morphology, followed by active shuttling and packaging of the dust within the colony core. We suggest that colony formation in Trichodesmium is an adaptive strategy that enhances iron acquisition from particulate sources such as dust.
机译:Trichodesmium是一种固定双氮的丝状蓝细菌,在营养缺乏的热带和亚热带海水中形成大量的花。这些蓝细菌极大地促进了这些水中大气中氮的生物固着,从而为初级生产提供了燃料,并影响了养分流以及有机物和无机物1,2的循环。鳞茎花需要大量的铁,部分铁是由风吹尘埃的涌入提供的3。但是,与灰尘收集有关的过程和机理了解甚少3-6。在这里,我们用同位素标记的氧化铁和沙漠尘土孵化了Trichodesmium的自然种群和实验室培养物,以确定这些蓝细菌如何收集,加工和使用颗粒铁。我们表明,与大多数浮游植物一样,毛线虫仅获得溶解的铁。但是,与其他研究过的浮游植物不同,Trichodesmium通过尚未确定的细胞表面过程加快了铁从氧化物和粉尘中的溶解速度,从而提高了细胞对铁的吸收率。我们显示了天然的粉虱(球形)的毛状线虫菌落在溶解灰尘和氧化物方面特别有效,这归因于其复杂的菌落形态中有效的捕集灰尘,然后有效的穿梭和将菌落包装在菌落核心内。我们建议,在Trichodesmium中的菌落形成是一种适应性策略,可增强从粉尘等微粒源中获取铁的能力。

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