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与痕量金属浓度的时间变化相关的对沉积微生物群落的影响

Impacts on Sedimentary Microbial Communities Related to Temporal Changes in Trace Metal Concentrations.

作者信息

Jones Christopher K, Labonté Jessica M, Haygood Lauren A, Torres Marta E, Bohrmann Gerhard, Lyons Timothy W, Riedinger Natascha

机构信息

Department of Earth and Planetary Sciences, University of California, Riverside, Riverside, California, USA.

Department of Marine Biology, Texas A&M University at Galveston, Galveston, Texas, USA.

出版信息

Geobiology. 2025 Jul-Aug;23(4):e70027. doi: 10.1111/gbi.70027.

Abstract

Microbial processes in marine sediments drive changes in redox conditions, ultimately controlling the cycling of elements between the dissolved and solid phases. The microbial community driving these cycles depends on trace metals, but it can also be inhibited at elevated metal concentrations. During diagenesis, many trace elements are released from iron (Fe) and manganese (Mn) (oxyhydr)oxides, potentially affecting microbial metabolisms. Here we present results from geochemical and microbiological analyses of samples collected during R/V Polarstern Expedition PS119 to the East Scotia Ridge. The sediments are dominantly diatomaceous ooze with high contents of reactive Fe and Mn (oxyhydr)oxides and increased trace metal contents from nearby hydrothermal vents. Two multi-corer cores were sampled immediately after collection at five specific sediment depths (three splits each), sealed anaerobically in incubation bags, and analyzed in 4-month intervals post collection for major, minor, and trace metals and 16S rRNA gene sequencing. By isolating the sediment from overlying seawater during the incubation process, we simulated the in situ diagenetic processes of Fe and Mn oxide reduction. Our data show that Mn and trace metals, especially Mo, Ni, Tl, and Cu, are mobilized during early diagenesis. Analysis of 16S rRNA genes revealed shifts in the microbial community from Nitrososphaera and Nanoarchaeia to Bacteroidia and Bacilli alongside a marked decrease in richness, Pielou's evenness, and Shannon alpha diversity during the eight-month incubations. We statistically correlate the microbial community shift with the changes in porewater trace metal concentrations, revealing that Mn, Co, Ag, and Tl are driving the microbial compositions in these samples. In this organic matter limited but Fe and Mn (oxyhydr)oxide rich system, we simulate deeper diagenesis to peer into the role of changing Fe, Mn, and trace metal cycles and highlight the role of Fe and Mn (oxyhdyr)oxides as shuttles for trace metals to the deep biosphere. By identifying key metals that are diagenetically cycled and affect the in situ microbial community, we reveal feedbacks between metals and microbial communities that play important roles in biogeochemical cycles on Earth, provide insight into the origin and potential evolution of metabolic pathways in the deep biosphere, and offer clues that may aid in our understanding of Earth's history and potentially beyond.

摘要

海洋沉积物中的微生物过程驱动氧化还原条件的变化,最终控制元素在溶解相和固相之间的循环。驱动这些循环的微生物群落依赖于痕量金属,但在金属浓度升高时也可能受到抑制。在成岩作用过程中,许多微量元素从铁(Fe)和锰(Mn)的(氢)氧化物中释放出来,可能影响微生物代谢。在此,我们展示了在“极地星号”RV119航次前往东斯科舍海脊期间采集的样本的地球化学和微生物学分析结果。沉积物主要是硅藻软泥,含有高含量的活性铁和锰(氢)氧化物,且来自附近热液喷口的痕量金属含量增加。在采集后立即从五个特定沉积物深度(每个深度取三份)采集了两个多管岩芯样本,在孵化袋中进行厌氧密封,并在采集后的4个月间隔内对主要、次要和痕量金属以及16S rRNA基因测序进行分析。通过在孵化过程中将沉积物与上覆海水隔离,我们模拟了铁和锰氧化物还原的原位成岩过程。我们的数据表明,锰和痕量金属,特别是钼、镍、铊和铜,在早期成岩作用期间被释放出来。对16S rRNA基因的分析揭示了在八个月的孵化过程中,微生物群落从亚硝化球菌和纳米古菌转变为拟杆菌和芽孢杆菌,同时丰富度、皮洛均匀度和香农α多样性显著降低。我们将微生物群落的变化与孔隙水痕量金属浓度的变化进行了统计关联,揭示出锰、钴、银和铊正在驱动这些样本中的微生物组成。在这个有机物有限但富含铁和锰(氢)氧化物的系统中,我们模拟了更深层次的成岩作用,以探究不断变化的铁、锰和痕量金属循环的作用,并强调铁和锰(氢)氧化物作为痕量金属进入深部生物圈的载体的作用。通过识别在成岩过程中循环并影响原位微生物群落的关键金属,我们揭示了金属与微生物群落之间的反馈,这些反馈在地球生物地球化学循环中发挥着重要作用,为深入了解深部生物圈中代谢途径的起源和潜在演化提供了见解,并提供了有助于我们理解地球历史乃至更广泛领域的线索。

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