Biodegradable film mulching increases soil microbial network complexity and decreases nitrogen-cycling gene abundance

根际 护根物 土壤水分 氮气循环 生物可分解塑胶 农学 环境科学 反硝化 微生物种群生物学 微生物菌剂 营养循环 生物 营养物 化学 生态学 土壤科学 氮气 园艺 有机化学 接种 细菌 遗传学
作者
Hao Zhang,Duntao Shu,Jiaqi Zhang,Xuejun Liu,Kai Wang,Rui Jiang
出处
期刊:Science of The Total Environment [Elsevier]
卷期号:933: 172874-172874 被引量:3
标识
DOI:10.1016/j.scitotenv.2024.172874
摘要

Biodegradable plastic films have emerged as a substitute for conventional plastic films. Nevertheless, responses of plant-associated microbiomes to the application of biodegradable film mulching at field scale have received little attention. A field experiment was conducted to assess the influence of different film mulching treatments on various microbial attributes and nitrogen (N) cycling functional genes in bulk and rhizosphere soils. Biodegradable film mulching raised the bacterial Shannon index in bulk soils but not in rhizosphere soils. Biodegradable film mulching has led to an increase in the complexity and connectivity of microbial networks, as well as an enhancement in the positive association among microorganisms owing to raised soil nutrients and increased crop biomass. In biodegradable film-treated soils, both bacterial and fungal communities were primarily influenced by stochastic processes associated with dispersal limitation. Moreover, conventional plastic film mulching increased denitrification, anammox, N fixation, and dissimilatory nitrate-reduction (DNRA) gene abundance in bulk soils. In rhizosphere soils, biodegradable film mulching reduced nitrification, denitrification, anammox, N fixation, and DNRA gene abundance. Furthermore, keystone genera (e.g., Nitrosospira, Truepera, Adhaeribacter, Opitutus, and Fusarium) were affected by edaphic variables, contributing to decreased N-cycling gene abundance in biodegradable film-treated soils. Collectively, biodegradable film mulching transformed soil microbiome assembly and functional adaptation, and soil nutrient availability and plant biomass were the critical factors influencing the microbial community. These findings present a novel perspective on the diverse impacts of biodegradable and conventional film mulching on soil microbiome and N-cycling processes.
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