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首页> 外文期刊>Standards in Genomic Sciences >Unravelling the effects of tropical land use conversion on the soil microbiome
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Unravelling the effects of tropical land use conversion on the soil microbiome

机译:揭开热带土地利用转化对土壤微生物的影响

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The consequences of deforestation and agricultural treatments are complex and affect all trophic levels. Changes of microbial community structure and composition associated with rainforest conversion to managed systems such as rubber and oil palm plantations have been shown by 16S rRNA gene analysis previously, but functional profile shifts have been rarely addressed. In this study, we analysed the effects of rainforest conversion to different converted land use systems, including agroforestry (“jungle rubber”) and monoculture plantations comprising rubber and oil palm, on soilborne microbial communities by metagenomic shotgun sequencing in Sumatra, Indonesia. The diversity of bacteria and archaea decreased whereas diversity of fungi increased in the converted land use systems. The soil microbiome was dominated by bacteria followed by fungi. We detected negative effects of land use conversion on the abundance of Proteobacteria (especially on Rhizobiales and Burkholderiales) and positive effects on the abundance of Acidobacteria and Actinobacteria. These abundance changes were mainly driven by pH, C:N ratio, and Fe, C and N content. With increasing land use intensity, the functional diversity decreased for bacteria, archaea and?fungi. Gene abundances of specific metabolisms such as nitrogen metabolism and carbon fixation were affected by land use management practices. The abundance of genes related to denitrification and nitrogen fixation increased in plantations while abundance of genes involved in nitrification and methane oxidation showed no significant difference. Linking taxonomic and functional assignment per read indicated that nitrogen metabolism-related genes were mostly assigned to members of the Rhizobiales and Burkholderiales. Abundances of carbon fixation genes increased also with increasing land use intensity. Motility- and interaction-related genes, especially genes involved in flagellar assembly and chemotaxis genes, decreased towards managed land use systems. This indicated a shift in mobility and interspecific interactions in bacterial communities within these soils. Rainforest conversion to managed land use systems drastically affects structure and functional potential of soil microbial communities. The decrease in motility- and interaction-related functions from rainforest to converted land use systems indicated not only a shift in nutrient cycling but also in community dynamics. Fertilizer application and correspondingly higher availability of nutrients in intensively managed plantations lead to an environment in which interspecific interactions are not favoured compared to rainforest soils. We could directly link effects of land management, microbial community structure and functional potential for several metabolic processes. As our study is the first study of this size and detail on soil microbial communities in tropical systems, we provide a basis for further analyses.
机译:森林砍伐和农业治疗的后果复杂,影响所有营养级别。 16S RRNA基因分析先前已经显示了与橡胶和油棕种植园等管理系统相关的微生物群落结构和组合物的变化,但是已经很少有效地解决了功能性剖面偏移。在这项研究中,我们分析了雨林转换对不同转化的土地利用系统的影响,包括在苏马克拉,印度尼西亚苏马特拉的Metagenomic Shotgun测序在土壤中的微生物群落中包含橡胶和油棕的制剂和油棕的单一养殖场。细菌和古代的多样性下降,而转化的土地使用系统中的真菌的多样性增加。土壤微生物组在细菌中占主导地位,然后是真菌。我们检测到土地利用转化对丰富植物(特别是Rhizobiales和Burkholders)的负面影响以及对抗酸菌和抗菌菌的丰度的积极影响。这些丰度变化主要由pH,C:N比和Fe,C和N内容驱动。随着土地利用强度的增加,细菌,古痤疮和真菌的功能多样性降低。特异性代谢等基因丰富,如氮代谢和碳固定的影响受土地利用管理实践的影响。与反硝化和氮固定相关的基因的丰富基因在种植园中增加,而硝化和甲烷氧化的丰富基因显示出没有显着差异。每个读取的分类学和功能分配表明,氮代谢相关基因主要分配给Rhizobiales和Burkholderial的成员。随着土地利用强度的增加,碳固定基因的丰度也增加。与鞭打组装和趋化性基因有关的运动和相互作用相关基因,尤其是涉及鞭打组件和趋化性基因的基因,降低了管理土地使用系统。这表明这些土壤中细菌群落中的迁移率和间隙相互作用。雨林转换为管理土地使用系统大大影响土壤微生物社区的结构和功能潜力。从雨林到转换土地使用系统的汽轮机和相互作用相关功能的减少表明不仅是营养循环而且在社区动态的转变。肥料应用和相应较高的营养成分可用性在集中管理的种植园中导致环境中的环境,其中与雨林土壤相比,不偏袒的互动。我们可以直接对土地管理,微生物群落结构和功能潜力进行若干代谢过程的影响。由于我们的研究是热带系统中土壤微生物社区的这种大小和细节的第一次研究,我们为进一步分析提供了基础。

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