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CO2 leakage alters biogeochemical and ecological functions of submarine sands

机译:CO2泄漏改变海底砂的生物地球化学和生态功能

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Subseabed CO2 storage is considered a future climate change mitigation technology. We investigated the ecological consequences of CO2 leakage for a marine benthic ecosystem. For the first time with a multidisciplinary integrated study, we tested hypotheses derived from a meta-analysis of previous experimental and in situ high-CO2 impact studies. For this, we compared ecological functions of naturally CO2-vented seafloor off the Mediterranean island Panarea (Tyrrhenian Sea, Italy) to those of nonvented sands, with a focus on biogeochemical processes and microbial and faunal community composition. High CO2 fluxes (up to 4 to 7 mol CO2 m?2 hour?1) dissolved all sedimentary carbonate, and comigration of silicate and iron led to local increases of microphytobenthos productivity (+450%) and standing stocks (+300%). Despite the higher food availability, faunal biomass (?80%) and trophic diversity were substantially lower compared to those at the reference site. Bacterial communities were also structurally and functionally affected, most notably in the composition of heterotrophs and microbial sulfate reduction rates (?90%). The observed ecological effects of CO2 leakage on submarine sands were reproduced with medium-term transplant experiments. This study assesses indicators of environmental impact by CO2 leakage and finds that community compositions and important ecological functions are permanently altered under high CO2.
机译:水下CO 2 存储被认为是未来的缓解气候变化技术。我们调查了CO 2 泄漏对海洋底栖生态系统的生态后果。我们首次进行了多学科综合研究,检验了对先前的实验性和原位高CO 2 影响研究的荟萃分析得出的假设。为此,我们比较了地中海岛屿Panarea(意大利第勒尼安海)附近自然排放的CO 2 排放的海底与未排放的沙子的生态功能,重点是生物地球化学过程以及微生物和动物群落组成。高CO 2 通量(高达4至7 mol CO 2 m ?2 小时?1 )全部溶解沉积碳酸盐以及硅酸盐和铁的迁移导致了微底栖鱼类生产力(+ 450%)和常规种群(+ 300%)的局部增加。尽管可获得更多的食物,但与参考地点相比,动物的生物量(约80%)和营养多样性要低得多。细菌群落也受到结构和功能的影响,最显着的是异养菌的组成和硫酸盐微生物的减少率(≥90%)。通过中期移植实验再现了CO 2 泄漏对海底砂的生态效应。这项研究评估了CO 2 泄漏对环境的影响指标,并发现在高CO 2 下,群落组成和重要的生态功能会永久改变。

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