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微生物生长和碳利用效率在多因素气候变化实验中表现出季节性响应。

Microbial growth and carbon use efficiency show seasonal responses in a multifactorial climate change experiment.

机构信息

Terrestrial Ecosystem Research, Centre for Microbiology and Environmental Systems Science, University of Vienna, Vienna, Austria.

Department of Ecology, University of Innsbruck, Innsbruck, Austria.

出版信息

Commun Biol. 2020 Oct 16;3(1):584. doi: 10.1038/s42003-020-01317-1.

Abstract

Microbial growth and carbon use efficiency (CUE) are central to the global carbon cycle, as microbial remains form soil organic matter. We investigated how future global changes may affect soil microbial growth, respiration, and CUE. We aimed to elucidate the soil microbial response to multiple climate change drivers across the growing season and whether effects of multiple global change drivers on soil microbial physiology are additive or interactive. We measured soil microbial growth, CUE, and respiration at three time points in a field experiment combining three levels of temperature and atmospheric CO, and a summer drought. Here we show that climate change-driven effects on soil microbial physiology are interactive and season-specific, while the coupled response of growth and respiration lead to stable microbial CUE (average CUE = 0.39). These results suggest that future research should focus on microbial growth across different seasons to understand and predict effects of global changes on soil carbon dynamics.

摘要

微生物生长和碳利用效率(CUE)是全球碳循环的核心,因为微生物残体形成了土壤有机质。我们研究了未来的全球变化将如何影响土壤微生物的生长、呼吸和 CUE。我们旨在阐明土壤微生物对整个生长季节内多种气候变化驱动因素的反应,以及多种全球变化驱动因素对土壤微生物生理学的影响是相加还是相互作用。我们在一个田间实验中测量了土壤微生物的生长、CUE 和呼吸,该实验结合了三种温度和大气 CO 水平以及夏季干旱。在这里,我们表明,土壤微生物生理学的气候变化驱动效应是相互作用和季节性的,而生长和呼吸的耦合反应导致微生物 CUE 稳定(平均 CUE=0.39)。这些结果表明,未来的研究应该侧重于不同季节的微生物生长,以了解和预测全球变化对土壤碳动态的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/746a/7567817/fc5a3ae231d3/42003_2020_1317_Fig1_HTML.jpg

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