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Forest litter constraints on the pathways controlling soil organic matter formation

垃圾箱 植物凋落物 化学 土壤有机质 有机质 土壤水分 土壤生物学 环境科学 环境化学 生态学 农学 土壤科学 生态系统 生物
作者
Luís Fernando Januário Almeida,Ivan F. Souza,Luís Carlos Colocho Hurtarte,Pedro Paulo de C. Teixeira,Thiago Massao Inagaki,Ivo Ribeiro da Silva,Carsten W. Mueller
出处
期刊:Soil Biology & Biochemistry [Elsevier]
卷期号:163: 108447-108447 被引量:23
标识
DOI:10.1016/j.soilbio.2021.108447
摘要

The connection between litter chemistry and the pathways controlling soil organic matter (SOM) formation and decay in forest ecosystems remains poorly understood, particularly in tropical soils. We addressed this question by incubating samples of a Ferralsol for 200 days with typical forest litter (leaves, twigs, bark, and roots) obtained from 13 C-enriched Eucalyptus seedlings. Throughout the incubation, we monitored 13 C/ 12 C–CO 2 evolved from the soil to quantify the microbial respiration of the 13 C-labeled fresh plant litter and of the native SOM. Afterwards, we used density fractionation to obtain particulate organic matter (POM) with density <1.8 g cm −3 , and the soil material remaining was wet-sieved to obtain SOM with particle-size >53 μm and mineral-associated SOM (MAOM, with particle-size <53 μm). We used solid-state 13 C-CPMAS-NMR spectroscopy to assess the molecular composition of plant material and SOM fractions and quantified microbial amino sugars in bulk soil using gas chromatography. Our 13 C/ 12 C–CO 2 results indicate that leaves, twigs, and bark (aboveground litter) were respired at higher rates but led to lower degradation of native SOM as compared to root tissues. On average, aboveground litter promoted net C gains in both POM and MAOM, whereas root litter only led to net C gains in POM. Overall, SOM formation via microbial incorporation of aboveground litter through in vivo pathways appears to be more efficient and causes less degradation of native MAOM than roots. Moreover, a reduction in microbial amino sugars in bulk soils suggests that in vivo pathways also favored the formation of POM, which had more microbial-derived protein than forest litter. Therefore, the connection between litter chemistry and the pathways controlling SOM formation in tropical forest ecosystems must be included in a framework that also considers the mineralization of native SOM and the vertical separation of aboveground and belowground C inputs to soils. • Pathways through which 13 C-labeled forest litter enters soil C pools were assessed. • Litter chemistry impacts both biotic ( in vivo ) and selective preservation ( ex vivo ). • Aboveground litter enters into soil C pools predominantly via in vivo pathways. • Ex vivo pathways are much more relevant for roots. • Priming effect is larger in the ex vivo than in the in vivo pathway.
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