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The role of microbes in snowmelt and radiative forcing on an Alaskan icefield

机译:微生物在阿拉斯加的冰场散热和辐射强迫的作用

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摘要

A lack of liquid water limits life on glaciers worldwide but specialized microbes still colonize these environments. These microbes reduce surface albedo, which, in turn, could lead to warming and enhanced glacier melt. Here we present results from a replicated, controlled field experiment to quantify the impact of microbes on snowmelt in red-snow communities. Addition of nitrogen-phosphorous-potassium fertilizer increased alga cell counts nearly fourfold, to levels similar to nitrogen-phosphorus-enriched lakes; water alone increased counts by half. The manipulated alga abundance explained a third of the observed variability in snowmelt. Using a normalized-difference spectral index we estimated alga abundance from satellite imagery and calculated microbial contribution to snowmelt on an icefield of 1,900 km(2). The red-snow area extended over about 700 km(2), and in this area we determined that microbial communities were responsible for 17% of the total snowmelt there. Our results support hypotheses that snow-dwelling microbes increase glacier melt directly in a bio-geophysical feedback by lowering albedo and indirectly by exposing low-albedo glacier ice. Radiative forcing due to perennial populations of microbes may match that of non-living particulates at high latitudes. Their contribution to climate warming is likely to grow with increased melt and nutrient input.
机译:缺乏液态水限制了全世界冰川的生活,但专门的微生物仍然殖民这些环境。这些微生物减少了表面反照,反过来可能导致加热和增强的冰川熔化。在这里,我们提出了一种复制,受控场实验的结果,以量化微生物在红雪社区中的融雪的影响。加入氮磷 - 钾肥增加的藻类细胞几乎四倍,水平与氮磷富含湖泊相似;单独水增加了一半。操纵的藻类丰度解释了散雪的观察变异的三分之一。使用归一化差异光谱指数,我们估计来自卫星图像的藻类丰富,并在1,900公里(2)的Icefield上计算了微生物贡献。红雪地区延伸约700公里(2),在这一领域,我们确定了微生物社区负责其中的17%的融资。我们的结果支持假设通过降低反玻璃和间接地通过暴露低玻璃冰川冰块来增加冰川熔体直接冰川熔化。由于微生物的常年群体,辐射强迫可能与高纬度的非生物颗粒匹配。它们对气候变暖的贡献可能随着融化和营养投入增加而增长。

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