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土壤气体探针用于监测微生物活动的痕量气体信使。

Soil gas probes for monitoring trace gas messengers of microbial activity.

机构信息

Aerodyne Research, Inc., Billerica, MA, 01821, USA.

School of Natural Resources and the Environment, University of Arizona, Tucson, AZ, 85721, USA.

出版信息

Sci Rep. 2021 Apr 15;11(1):8327. doi: 10.1038/s41598-021-86930-8.

Abstract

Soil microbes vigorously produce and consume gases that reflect active soil biogeochemical processes. Soil gas measurements are therefore a powerful tool to monitor microbial activity. Yet, the majority of soil gases lack non-disruptive subsurface measurement methods at spatiotemporal scales relevant to microbial processes and soil structure. To address this need, we developed a soil gas sampling system that uses novel diffusive soil probes and sample transfer approaches for high-resolution sampling from discrete subsurface regions. Probe sampling requires transferring soil gas samples to above-ground gas analyzers where concentrations and isotopologues are measured. Obtaining representative soil gas samples has historically required balancing disruption to soil gas composition with measurement frequency and analyzer volume demand. These considerations have limited attempts to quantify trace gas spatial concentration gradients and heterogeneity at scales relevant to the soil microbiome. Here, we describe our new flexible diffusive probe sampling system integrated with a modified, reduced volume trace gas analyzer and demonstrate its application for subsurface monitoring of biogeochemical cycling of nitrous oxide (NO) and its site-specific isotopologues, methane, carbon dioxide, and nitric oxide in controlled soil columns. The sampling system observed reproducible responses of soil gas concentrations to manipulations of soil nutrients and redox state, providing a new window into the microbial response to these key environmental forcings. Using site-specific NO isotopologues as indicators of microbial processes, we constrain the dynamics of in situ microbial activity. Unlocking trace gas messengers of microbial activity will complement -omics approaches, challenge subsurface models, and improve understanding of soil heterogeneity to disentangle interactive processes in the subsurface biome.

摘要

土壤微生物会大量产生和消耗气体,这些气体反映了活跃的土壤生物地球化学过程。因此,土壤气体测量是监测微生物活动的有力工具。然而,大多数土壤气体缺乏非侵入性的地下测量方法,无法在与微生物过程和土壤结构相关的时空尺度上进行测量。为了解决这一需求,我们开发了一种土壤气体采样系统,该系统使用新型扩散土壤探针和样品传输方法,可从离散的地下区域进行高分辨率采样。探针采样需要将土壤气体样品转移到地面气体分析仪中,以测量浓度和同位素。获得有代表性的土壤气体样品历来需要在对土壤气体组成的干扰与测量频率和分析仪体积需求之间取得平衡。这些考虑因素限制了在与土壤微生物组相关的尺度上量化痕量气体空间浓度梯度和异质性的尝试。在这里,我们描述了我们新的灵活扩散探针采样系统,该系统与改进的、体积较小的痕量气体分析仪集成在一起,并展示了其在控制土壤柱中对氧化亚氮(NO)及其特定地点同位素、甲烷、二氧化碳和一氧化氮的生物地球化学循环的地下监测中的应用。该采样系统观察到土壤气体浓度对土壤养分和氧化还原状态的操纵有可重复的响应,为微生物对这些关键环境驱动力的响应提供了新的视角。使用特定地点的 NO 同位素作为微生物过程的指标,我们限制了原位微生物活性的动态。揭示微生物活性的痕量气体信使将补充组学方法,挑战地下模型,并提高对土壤异质性的理解,以解开地下生物群落中的相互作用过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cc1a/8050213/160e22b25055/41598_2021_86930_Fig1_HTML.jpg

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