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土壤中微生物快速周转和季节性演替的生物地球化学后果

Biogeochemical consequences of rapid microbial turnover and seasonal succession in soil.

作者信息

Schmidt S K, Costello E K, Nemergut D R, Cleveland C C, Reed S C, Weintraub M N, Meyer A F, Martin A M

机构信息

Department of Ecology and Evolutionary Biology, UniversitY, of Colorado, Boulder, Colorado 80309, USA.

出版信息

Ecology. 2007 Jun;88(6):1379-85. doi: 10.1890/06-0164.

Abstract

Soil microbial communities have the metabolic and genetic capability to adapt to changing environmental conditions on very short time scales. In this paper we combine biogeochemical and molecular approaches to reveal this potential, showing that microbial biomass can turn over on time scales of days to months in soil, resulting in a succession of microbial communities over the course of a year. This new understanding of the year-round turnover and succession of microbial communities allows us for the first time to propose a temporally explicit N cycle that provides mechanistic hypotheses to explain both the loss and retention of dissolved organic N (DON) and inorganic N (DIN) throughout the year in terrestrial ecosystems. In addition, our results strongly support the hypothesis that turnover of the microbial community is the largest source of DON and DIN for plant uptake during the plant growing season. While this model of microbial biogeochemistry is derived from observed dynamics in the alpine, we present several examples from other ecosystems to indicate that the general ideas of biogeochemical fluxes being linked to turnover and succession of microbial communities are applicable to a wide range of terrestrial ecosystems.

摘要

土壤微生物群落具有在非常短的时间尺度上适应不断变化的环境条件的代谢和遗传能力。在本文中,我们结合生物地球化学和分子方法来揭示这种潜力,表明微生物生物量可以在数天到数月的时间尺度上在土壤中周转,从而在一年的时间里形成一系列微生物群落。对微生物群落全年周转和演替的这种新认识使我们首次能够提出一个时间明确的氮循环,该循环提供了机制假设,以解释陆地生态系统中全年溶解有机氮(DON)和无机氮(DIN)的损失和保留情况。此外,我们的结果有力地支持了以下假设:在植物生长季节,微生物群落的周转是植物吸收DON和DIN的最大来源。虽然这种微生物生物地球化学模型源自高山地区观察到的动态,但我们提供了其他生态系统的几个例子,以表明生物地球化学通量与微生物群落的周转和演替相关的一般观点适用于广泛的陆地生态系统。

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