Alterations of the rhizosphere soil microbial community composition and metabolite profiles of Zea mays by polyethylene-particles of different molecular weights

根际 化学 鞘脂单胞菌属 微生物 食品科学 土壤水分 生物量(生态学) 土壤微生物学 环境化学 生物 农学 植物 细菌 生物化学 基因 遗传学 16S核糖体RNA 生态学
作者
Qian Fu,Jin-long Lai,Xiaohui Ji,Zhongxu Luo,Guo Wu,Xuegang Luo
出处
期刊:Journal of Hazardous Materials [Elsevier BV]
卷期号:423 (Pt A): 127062-127062 被引量:162
标识
DOI:10.1016/j.jhazmat.2021.127062
摘要

Polyethylene film is the most widely used plastic film in agricultural production activities, and its depolymerization products are mainly polyethylene-particles (PE-particles) of different molecular weights. However, the impact of the molecular weights of the PE-particles on soil-crop microenvironment has not been elucidated. In this study, a potted microcosmic simulation system was used to evaluate the impact of low, medium and high molecular weight PE-particles on soil metabolism, microbial community structure, and crop growth. There were obvious differences in the shape and surface microstructure of PE-particles with different molecular weights. Soil sucrase and peroxidase had significant responses to PE-particles of different molecular weights. In the rhizosphere, the number of microorganisms and the microbial alpha diversity index increased with increasing PE-particles molecular weight. Rhizobacter, Nitrospira, and Sphingomonas were the dominant microorganisms induced by PE-particles to regulate the metabolism of elements. Carbohydrate and amino acid contents in rhizosphere soils were the key factors affecting the species abundance of Lysobacter, Polyclovorans, Rhizobacter, and Sphingomonas. In plants, PE-particles treatment reduced the plant biomass and photosynthetic rate and disrupted normal mineral nutrient metabolism. Different molecular weight PE-particles may therefore have adverse effects on the soil-plant system.
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