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复杂的微生物群落驱动北极峡湾沉积物中的铁和硫循环。

Complex Microbial Communities Drive Iron and Sulfur Cycling in Arctic Fjord Sediments.

机构信息

Department of Microbiology, University of Tennessee, Knoxville, Knoxville, Tennessee, USA.

School of Marine and Atmospheric Sciences, Stony Brook University, Stony Brook, New York, USA.

出版信息

Appl Environ Microbiol. 2019 Jul 1;85(14). doi: 10.1128/AEM.00949-19. Print 2019 Jul 15.

Abstract

Glacial retreat is changing biogeochemical cycling in the Arctic, where glacial runoff contributes iron for oceanic shelf primary production. We hypothesize that in Svalbard fjords, microbes catalyze intense iron and sulfur cycling in low-organic-matter sediments. This is because low organic matter limits sulfide generation, allowing iron mobility to the water column instead of precipitation as iron monosulfides. In this study, we tested this with high-depth-resolution 16S rRNA gene libraries in the upper 20 cm at two sites in Van Keulenfjorden, Svalbard. At the site closer to the glaciers, iron-reducing , iron-oxidizing and , and sulfur-oxidizing and were abundant above a 12-cm depth. Below this depth, the relative abundances of sequences for sulfate-reducing and increased. At the outer station, the switch from iron-cycling clades to sulfate reducers occurred at shallower depths (∼5 cm), corresponding to higher sulfate reduction rates. Relatively labile organic matter (shown by δC and C/N ratios) was more abundant at this outer site, and ordination analysis suggested that this affected microbial community structure in surface sediments. Network analysis revealed more correlations between predicted iron- and sulfur-cycling taxa and with uncultured clades proximal to the glacier. Together, these results suggest that complex microbial communities catalyze redox cycling of iron and sulfur, especially closer to the glacier, where sulfate reduction is limited due to low availability of organic matter. Diminished sulfate reduction in upper sediments enables iron to flux into the overlying water, where it may be transported to the shelf. Glacial runoff is a key source of iron for primary production in the Arctic. In the fjords of the Svalbard archipelago, glacial retreat is predicted to stimulate phytoplankton blooms that were previously restricted to outer margins. Decreased sediment delivery and enhanced primary production have been hypothesized to alter sediment biogeochemistry, wherein any free reduced iron that could potentially be delivered to the shelf will instead become buried with sulfide generated through microbial sulfate reduction. We support this hypothesis with sequencing data that showed increases in the relative abundance of sulfate reducing taxa and sulfate reduction rates with increasing distance from the glaciers in Van Keulenfjorden, Svalbard. Community structure was driven by organic geochemistry, suggesting that enhanced input of organic material will stimulate sulfate reduction in interior fjord sediments as glaciers continue to recede.

摘要

冰川退缩正在改变北极的生物地球化学循环,冰川径流为海洋大陆架初级生产提供了铁。我们假设,在斯瓦尔巴德峡湾,微生物在低有机物质沉积物中催化强烈的铁和硫循环。这是因为低有机物质限制了硫化物的产生,使铁能够在水柱中移动,而不是沉淀为铁单硫化物。在这项研究中,我们在斯瓦尔巴特群岛万基伦峡湾的两个地点用高深度分辨率的上 20 厘米的 16S rRNA 基因文库对此进行了测试。在靠近冰川的地点,铁还原、铁氧化和硫氧化在 12 厘米深以上丰富。在这个深度以下,硫酸盐还原和的序列相对丰度增加。在外区,从铁循环类群到硫酸盐还原菌的转变发生在较浅的深度(约 5 厘米),对应于较高的硫酸盐还原速率。相对不稳定的有机物(由 δC 和 C/N 比表示)在外区更为丰富,排序分析表明这影响了表层沉积物中的微生物群落结构。网络分析表明,与冰川较近的预测铁和硫循环类群以及未培养的类群之间存在更多的相关性。总的来说,这些结果表明,复杂的微生物群落催化铁和硫的氧化还原循环,特别是在靠近冰川的地方,由于有机物的可用性低,硫酸盐还原受到限制。上覆沉积物中硫酸盐还原的减少使铁能够流入上覆水体,从而可能被输送到大陆架。冰川径流是北极初级生产的主要铁源。在斯瓦尔巴特群岛的峡湾中,冰川退缩预计将刺激以前仅限于外边缘的浮游植物爆发。据推测,减少的沉积物输送和增强的初级生产会改变沉积物的生物地球化学,其中任何可能输送到大陆架的游离还原铁都会与通过微生物硫酸盐还原生成的硫化物一起被掩埋。我们用测序数据支持了这一假设,该数据表明,随着距离冰川的增加,万基伦峡湾中硫酸盐还原类群的相对丰度和硫酸盐还原速率增加。群落结构受有机地球化学的驱动,这表明随着冰川继续退缩,内部峡湾沉积物中有机物质的增强输入将刺激硫酸盐还原。

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