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On the effect of low oxygen concentrations on bacterial degradation of sinking particles

机译:关于低氧浓度对沉没颗粒细菌降解的影响

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摘要

In marine oxygen (O2) minimum zones (OMZs), the transfer of particulate organic carbon (POC) to depth via the biological carbon pump might be enhanced as a result of slower remineralisation under lower dissolved O2 concentrations (DO). In parallel, nitrogen (N) loss to the atmosphere through microbial processes, such as denitrification and anammox, is directly linked to particulate nitrogen (PN) export. However it is unclear (1) whether DO is the only factor that potentially enhances POC transfer in OMZs, and (2) if particle fluxes are sufficient to support observed N loss rates. We performed a degradation experiment on sinking particles collected from the Baltic Sea, where anoxic zones are observed. Sinking material was harvested using surface-tethered sediment traps and subsequently incubated in darkness at different DO levels, including severe suboxia (<0.5 mg l−1 DO). Our results show that DO plays a role in regulating POC and PN degradation rates. POC(PN) degradation was reduced by approximately 100% from the high to low DO to the lowest DO. The amount of NH4 + produced from the pool of remineralising organic N matched estimations of NH4 + anammox requirements during our experiment. This anammox was likely fueled by DON degradation rather than PON degradation.
机译:在海洋氧气(O2)最小区域(OMZs)中,由于在较低的溶解氧浓度(DO)下进行的再矿化速度较慢,因此可能会增加通过生物碳泵将颗粒有机碳(POC)传递至深度。同时,通过微生物过程(例如反硝化和厌氧氨氧化)损失到大气中的氮(N)与颗粒氮(PN)的出口直接相关。但是,目前尚不清楚(1)DO是否是可能增强OMZ中POC转移的唯一因素,以及(2)粒子通量是否足以支持观察到的N损失率。我们对从波罗的海收集的沉没颗粒进行了降解实验,观察到了缺氧区域。使用表面束缚的沉积物捕集器收集沉没材料,然后在黑暗中以不同的溶解氧水平进行孵育,包括严重的亚氧不足(<0.5 mg l -1 DO)。我们的结果表明,溶解氧在调节POC和PN降解速率中发挥作用。从高DO到低DO到最低DO,POC(PN)降解降低了大约100%。在我们的实验中,从重新矿化有机N池中产生的NH4 + 的量与对NH4 + 厌氧菌的需求量的估计值匹配。这种厌氧菌可能是由DON降解而不是PON降解推动的。

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