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Separate drivers for microbial carbon mineralization and physical protection of carbon

机译:用于微生物碳矿化和碳的物理保护的单独驱动因素

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摘要

While the effects of temperature and moisture on soil microbial activity are relatively well-understood, and it is well-recognized that microbial byproducts are a critical source of soil C, our understanding of how temperature and moisture affect physical protection of soil C is lacking. We performed a 6-month incubation of soil and plant litter under varying temperature and moisture. Using C-13-depleted plant litter, we used stable isotope partitioning to trace plant litter C into various aggregate fractions after 30, 50, and 60% of plant C had been respired. In addition, we evaluated microbial biomass C, enzyme activity and bacterial community composition using 16S rRNA genes. While warmer temperatures increased C mineralization rate and enzyme activity and decreased microbial biomass, soil aggregation was enhanced under drier conditions irrespective of temperature. Bacterial community composition shifted over time and with temperature and moisture, and a subset of the bacterial community was associated with the drier conditions that promoted aggregation. These results indicate that physical protection of C in aggregates is correlated to changes in moisture regime while microbial C mineralization is more responsive to temperature. Predictions of how management and climate will affect soil C storage should incorporate separate responses to temperature and moisture for aggregate and microbial C pools.
机译:虽然温度和水分对土壤微生物活性的影响相对良好地理解,但详细认识到微生物副产物是土壤C的临界来源,我们对缺乏对土壤C的物理保护的温度和水分如何影响土壤C的临界源。我们在不同温度和水分下进行了6个月的土壤和植物凋落物。使用C-13耗尽的植物凋落物,我们使用稳定的同位素分配在30,50和60%的植物C被呼吸后将植物垃圾含量划分为各种骨料馏分。此外,我们使用16S rRNA基因评估了微生物生物量C,酶活性和细菌群落组合物。虽然温暖的温度增加C成矿速率和酶活性和微生物生物量减少,但在干燥条件下,无论温度如何,都会增强土壤聚集。细菌群落组合物随时间移动,温度和水分,细菌群落的子集与促进聚集的干燥条件有关。这些结果表明,聚集体的物理保护与水分制度的变化相关,而微生物C矿化更响应于温度。如何预测管理和气候如何影响土壤C储存应将单独的反应与聚集和微生物C池进行温度和水分。

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