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Effects of an Acute Hypoxic Event on Microplankton Community Structure in a Coastal Harbor of Southern California

机译:急性缺氧事件对南加州沿海港口浮游植物群落结构的影响

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Fish mortality and hypoxic events occur in many coastal and inland systems and may result from natural or anthropogenically mediated processes. The effects of consequent changes in water biogeochemistry have been investigated for communities of benthic invertebrates and pelagic metazoans. The responses of micro-plankton assemblages, however, have remained largely unstudied. The northern basin of King Harbor, a small embayment within Santa Monica Bay, CA, USA, suffered a massive fish kill in March 2011 as a consequence of acute hypoxia. Dissolved oxygen concentrations < 0. 1 ml l~(-1) were measured in the northern basin of the harbor for several days following the mortality event, and a strong spatial gradient of oxygen was observed from the northern basin to waters outside the harbor. The microplankton community within King Harbor differed significantly from a diatom-dominated community present in neighboring Santa Monica Bay. The latter region appeared unaffected by physicochemical changes, induced by the fish kill, that were observed within the harbor. A trophic shift was observed throughout King Harbor from a photoautotrophic-dominated assemblage to one of heterotrophic forms, with relative abundances of bacterivorous ciliates increasing by more than 80 % in the most impacted part of the harbor. Significant changes in community structure were observed together with dramatically reduced photosynthetic yield of the remaining phytoplankton, indicating severe physiological stress during the extreme hypoxia.
机译:鱼类死亡和缺氧事件发生在许多沿海和内陆系统,可能是自然或人为介导的过程造成的。对底栖无脊椎动物和浮游后生动物群落的水生物地球化学变化的影响进行了研究。然而,微浮游生物集合的反应仍未研究。国王港北部盆地是美国加利福尼亚州圣莫尼卡湾内的一个小小海湾,由于急性缺氧,2011年3月遭受了大规模的鱼类杀害。死亡事件发生后几天,在港口的北部盆地中测得的溶解氧浓度<0. 1 ml l〜(-1),并且从北部盆地到港口以外的水域均观察到强烈的氧气空间梯度。金港内的微浮游生物群落与邻近的圣莫尼卡湾中存在的以硅藻为主的群落明显不同。在港口内观察到的后者区域不受鱼类杀死引起的理化变化的影响。在整个金港,从营养自养为主的组合到异养形式之一都发生了营养转移,在受影响最严重的港口,细菌性纤毛的相对丰度增加了80%以上。观察到群落结构的显着变化以及剩余浮游植物的光合作用产量显着降低,表明在极端低氧状态下严重的生理压力。

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