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The rise and fall of methanotrophy following a deepwater oil-well blowout

机译:深水油井井喷后甲烷异养系的兴衰

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摘要

The blowout of the Macondo oil well in the Gulf of Mexico in April 2010 injected up to 500,000 tonnes of natural gas, mainly methane, into the deep sea1. Most of the methane released was thought to have been consumed by marine microbes between July and August 20102, 3. Here, we report spatially extensive measurements of methane concentrations and oxidation rates in the nine months following the spill. We show that although gas-rich deepwater plumes were a short-lived feature, water column concentrations of methane remained above background levels throughout the rest of the year. Rates of microbial methane oxidation peaked in the deepwater plumes in May and early June, coincident with a rapid rise in the abundance of known and new methane-oxidizing microbes. At this time, rates of methane oxidation reached up to 5,900 nmol l−1 d−1—the highest rates documented in the global pelagic ocean before the blowout4. Rates of methane oxidation fell to less than 50 nmol l−1 d−1 in late June, and continued to decline throughout the remainder of the year. We suggest the precipitous drop in methane consumption in late June, despite the persistence of methane in the water column, underscores the important role that physiological and environmental factors play in constraining the activity of methane-oxidizing bacteria in the Gulf of Mexico.
机译:2010年4月,墨西哥湾Macondo油井的井喷向深海注入了多达500,000吨天然气,主要是甲烷。据认为,大部分释放的甲烷是在20102年7月至8月3日之间被海洋微生物消耗的。在这里,我们报告了泄漏后9个月中甲烷浓度和氧化速率的空间广泛测量。我们显示,尽管富含气体的深水羽流是一个短暂的特征,但在全年的其余时间中,水柱中甲烷的浓度仍高于本底水平。微生物甲烷氧化速率在5月和6月初的深水羽流中达到峰值,与此同时,已知的和新的甲烷氧化微生物的数量迅速增加。此时,甲烷氧化速率达到了5,900nmol l-1 d-1,这是井喷之前全球中上层海洋记录的最高速率4。甲烷氧化速率在6月下旬降至低于50 nmol l-1 d-1,并在全年剩余时间内持续下降。我们建议,尽管水柱中甲烷的持续存在,但6月下旬甲烷的消耗量却急剧下降,这突显了生理和环境因素在限制墨西哥湾甲烷氧化细菌活动方面所起的重要作用。

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