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首页> 外文期刊>Biogeochemistry >Temperature sensitivity of microbial Fe(III) reduction kinetics in subalpine wetland soils
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Temperature sensitivity of microbial Fe(III) reduction kinetics in subalpine wetland soils

机译:微生物Fe(III)减少动力学的温度敏感性亚高山湿地土壤

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Microbially-mediated iron (Fe) cycling controls the fate of organic matter, contaminants, and nutrients in terrestrial ecosystems including wetland soils. However, the effects of temperature variations due to seasonal differences on Fe(III) reduction rates and kinetics in such ecosystems remains poorly understood. To evaluate the potential temperature impact on dissimilatory microbial Fe(III) reduction it is crucial to determine environmentally-relevant reaction rates and kinetic parameters. Here, we investigate the relationship between soil temperature and microbial Fe(III) reduction kinetics in mineral soils from two subalpine wetlands with distinct hydrologic and edaphic conditions. We conducted flow-through experiments (FTR) at three temperatures (6, 12, and 18 degrees C) using intact soil cores collected from 30cm [(higher organic carbon (C-org) and total nitrogen (TN)] and 70cm (lower C-org and TN) soil depths in order to determine the apparent Fe(III) affinity constant (K-m), apparent maximum Fe(III) reduction rates (V-max) and temperature sensitivity (Q(10) and E-a) of Fe(III) reduction. We used Fe(III)-NTA, a model compound for aqueous labile and complexed Fe present in natural organic matter. Our results show that changes in apparent V-max and K-m are driven primarily by temperature. Significant differences in apparent V-max at 18 degrees C relative to 6 and 12 degrees C (P&0.05) suggest that dissimilatory microbial Fe(III) reduction in wetland soils accelerates during warmer summer days. However, temperature alone fails to explain the large variability of the apparent parameters Q(10) (1.5-8.9) and E-a (26-148kJmol(-1)) for the two wetland types and depths (30 and 70cm). Strong relationship between both parameters of temperature sensitivity (Q(10) and E-a) and reactive soil Fe content at 30cm and C-org/TN at 70cm depth demonstrate the notable impact of soil properties on the temperature sensitivity for mirobial Fe(III) reduction in these wetland soils. Our results emphasize the importance of soil temperature on Fe(III) reduction kinetics and must be considered when predicting dissimilatory Fe(III) reduction under different seasonal temperatures or in wetlands located at different temperature regimes.
机译:微生物介导的铁(Fe)循环控制陆地生态系统中有机质,污染物和营养物的命运,包括湿地土壤。然而,由于这种生态系统中的Fe(III)减少速率和动力学的季节性差异导致的温度变化仍然很清楚。为了评估对差的微生物Fe(III)的潜在温度影响,确定环境相关的反应率和动力学参数至关重要。在这里,我们研究了不同水文和双层湿地的两种亚高山湿地的土壤温度和微生物Fe(III)减少动力学之间的关系。我们使用从30cm的完整的土壤核心(更高的有机碳(C-org)和总氮气(tn)]和70cm(更低C-Org和Tn)土壤深度以确定表观Fe(III)亲和力常数(KM),表观最大Fe(III)还原率(V-MAX)和温度敏感度(Q(10)和EA)的Fe (iii)减少。我们使用Fe(III)-NTA,用于天然有机物质中存在的水性不稳定和复合Fe的模型化合物。我们的结果表明,表观V-Max和Km的变化主要受温度驱动。差异显着差异在18摄氏度的明显V-max相对于6和12摄氏度(P& 0.05)表明湿地土壤的含量异化微生物Fe(iii)减少在夏季温暖的夏季。然而,单独的温度未能解释大的可变性表观参数Q(10)(1.5-8.9)和ea(26-148kJmol(-1)),用于两个湿地类型和深度(30和70cm)。温度敏感度(Q(10)和EA)和70℃深度的反应性土壤Fe含量与70℃深度的反应性土壤Fe含量之间的强关系证明了土壤性质对摩尔霉(III)的温度敏感性的显着影响在这些湿地土壤中。我们的结果强调了土壤温度对Fe(III)减少动力学的重要性,并且在预测不同季节性温度或位于不同温度制度的湿地的湿地时必须考虑。

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