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Cellular and non-cellular mineralization of organic carbon in soils with contrasted physicochemical properties

机译:具有相反物理化学性质的土壤中有机碳的细胞和非细胞矿化作用

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摘要

It has been recently demonstrated that soil organic carbon (SOC) mineralization is supported by intracellular respiration of heterotrophic microorganisms and by non-cellular oxidative processes. However, little is known about the prevalence and drivers of non-cellular SOC mineralization among soils. In this study, untreated and gamma-irradiated soils sampled along a latitudinal gradient and exhibiting contrasted physicochemical properties were incubated in order to quantify potential non-cellular SOC mineralization and to identify its sensibility to soil properties. In sterilized and unsterilized soils, CO2 emission mirrored O2 consumption signifying the presence of several coupled redox reactions transferring electrons from organic C to intermediate acceptors and to O2. This supports the idea that non-cellular mineralization results from extracellular oxidative metabolisms catalyzed by soil enzymes and/or abiotic catalysts. Our findings also show that non-cellular SOC mineralization is ubiquitous and contributes to 24 % of soil respiration on average. Cellular and non-cellular SOC mineralization are positively linked but the contribution of non-cellular processes to soil CO2 emissions increases with dissolved organic carbon concentration.
机译:最近已经证明,土壤有机碳(SOC)的矿化是由异养微生物的细胞内呼吸和非细胞氧化过程所支持的。但是,关于土壤中非细胞SOC矿化的发生率和驱动因素知之甚少。在这项研究中,对未经处理的和经伽马射线辐照的土壤沿纬度梯度采样并表现出相反的理化特性进行了孵育,以量化潜在的非细胞SOC矿化并确定其对土壤特性的敏感性。在灭菌和未灭菌的土壤中,CO2排放反映了O2的消耗,这表明存在多个耦合的氧化还原反应,这些反应将电子从有机C传递到中间受体和O2。这支持了非细胞矿化是由土壤酶和/或非生物催化剂催化的细胞外氧化代谢产生的想法。我们的发现还表明,非细胞SOC矿化无处不在,平均占土壤呼吸的24%。细胞和非细胞SOC的矿化作用是正相关的,但是非细胞过程对土壤CO2排放的贡献随着溶解有机碳浓度的增加而增加。

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