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Disentangling abiotic and biotic controls of aerobic methane oxidation during re-colonization

机译:在再殖民化期间解开无食的非生物和有氧甲烷氧化的生物控制

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Aerobic methane oxidation is driven by both abiotic and biotic factors, which are often confounded in the soil environment. Using a laboratory-scale reciprocal inoculation experiment with two native soils (paddy and upland agricultural soils) and the gamma-irradiated fraction of these soils, we aim to disentangle and determine the relative contribution of abiotic (i.e., soil edaphic properties) and biotic (i.e., initial methanotrophic community composition) controls of methane oxidation during re-colonization. Methane uptake was appreciably higher in incubations containing gamma-irradiated paddy than upland soil despite the initial difference in the methanotrophic community composition. This suggested an overriding effect of the soil edaphic properties, which . positively regulated methane oxidation. Community composition was similar in incubations with the same starting inoculum, based on quantitative and qualitative pmoA gene analyses. Thus, results suggested that the initial community composition affects the trajectory of community succession to an extent, but not at the expense of the methanotrophic activity under high methane availability. Still, methane oxidation was affected more by soil edaphic properties than by the initial composition of the methanotrophic community.
机译:有氧甲烷氧化是非生物学和生物因子的驱动,这通常在土壤环境中混淆。利用实验室标度相互接种实验与两个天然土壤(稻谷和高地农业土壤)和这些土壤的伽马照射部分,我们旨在解开并确定非生物(即土壤双向特性)和生物( IE,初始甲基营养群落组合物在再殖民化期间甲烷氧化的控制。尽管甲基营养群落组合物的初始差异,甲烷摄取比丙氨酸辐照的稻田的孵育比丙氨酸般的乳汁的摄取更高。这提出了土壤双向特性的重大效果,即土壤涂料性能。积极调节的甲烷氧化。基于定量和定性PMOA基因分析,群落组合物与相同的inoculum孵育类似。因此,结果表明,初始群落组成在一定程度上影响了社区连续的轨迹,但在高甲烷可用性下,不适用于甲基萎缩活性。仍然,甲烷氧化受到土壤涂料性质的影响,而不是通过甲基营养群落的初始组成而受到影响。

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