Soil biological responses to C, N and P fertilization in a polar desert of Antarctica

生物地球化学循环 营养物 营养循环 生态系统 环境科学 矿化(土壤科学) 自行车 生态学 土壤有机质 有机质 土壤水分 农学 环境化学 化学 生物 土壤科学 历史 考古
作者
Becky A. Ball,Byron J. Adams,J. Barrett,Diana H. Wall,Ross A. Virginia
出处
期刊:Soil Biology & Biochemistry [Elsevier]
卷期号:122: 7-18 被引量:22
标识
DOI:10.1016/j.soilbio.2018.03.025
摘要

In the polar desert ecosystem of the McMurdo Dry Valleys of Antarctica, biology is constrained by available liquid water, low temperatures, as well as the availability of organic matter and nutrient elements. These soil ecosystems are climate-sensitive, where projected future warming may have profound effects on biological communities and biogeochemical cycling. Warmer temperatures will mobilize meltwater from permafrost and glaciers, may increase precipitation and may be accompanied by pulses of nutrient availability. Enhanced water and nutrient availability have the potential to greatly influence desert soil biology and ecosystem processes. The objectives of this 5-year study were to determine which nutrient elements (C, N, P) are most limiting to dry valley soil communities and whether landscape history (i.e., in situ soil type and stoichiometry) influences soil community response to nutrient additions. After 3 years of no noticeable response, soil CO2 flux was significantly higher under addition of C+ N than the other treatments, regardless of in situ soil stoichiometry, but microbial biomass and invertebrate abundance were variable and not influenced in the same manner. A stable isotope incubation suggests that fertilization increases C and N mineralization from organic matter via stimulating microbial activity, with loss of both the applied treatments as well in situ C and N. However, these responses are relatively short-lived, suggesting long-term impacts on C and N cycling would only occur if meltwater and nutrient pulses are sustained over time, a scenario that is increasingly likely for the dry valleys.

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