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Shifts in soil microorganisms in response to warming are consistent across a range of Antarctic environments

机译:在各种南极环境中土壤微生物响应变暖的变化是一致的

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摘要

Because of severe abiotic limitations, Antarctic soils represent simplified systems, where microorganisms are the principal drivers of nutrient cycling. This relative simplicity makes these ecosystems particularly vulnerable to perturbations, like global warming, and the Antarctic Peninsula is among the most rapidly warming regions on the planet. However, the consequences of the ongoing warming of Antarctica on microorganisms and the processes they mediate are unknown. Here, using 16S rRNA gene pyrosequencing and qPCR, we report highly consistent responses in microbial communities across disparate sub-Antarctic and Antarctic environments in response to 3 years of experimental field warming (+0.5 to 2 °C). Specifically, we found significant increases in the abundance of fungi and bacteria and in the Alphaproteobacteria-to-Acidobacteria ratio, which could result in an increase in soil respiration. Furthermore, shifts toward generalist bacterial communities following warming weakened the linkage between the bacterial taxonomic and functional richness. GeoChip microarray analyses also revealed significant warming effects on functional communities, specifically in the N-cycling microorganisms. Our results demonstrate that soil microorganisms across a range of sub-Antarctic and Antarctic environments can respond consistently and rapidly to increasing temperatures.
机译:由于严重的非生物限制,南极土壤代表了简化的系统,其中微生物是养分循环的主要驱动力。这种相对简单的环境使得这些生态系统特别容易受到诸如全球变暖之类的干扰的影响,而南极半岛是地球上变暖最快的地区之一。然而,南极持续升温对微生物及其介导过程的影响尚不清楚。在这里,使用16S rRNA基因焦磷酸测序和qPCR,我们报告了南极和南极不同环境中微生物群落对3年实验场升温(+0.5至2°C)的高度一致的响应。具体而言,我们发现真菌和细菌的丰度以及丙酸杆菌与乙酰细菌的比率显着增加,这可能导致土壤呼吸增加。此外,变暖后向普通细菌群落的转移削弱了细菌分类学和功能丰富性之间的联系。 GeoChip微阵列分析还显示了对功能群落的显着升温作用,特别是在N循环微生物中。我们的结果表明,南亚和南极环境范围内的土壤微生物可以持续快速地响应不断升高的温度。

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