微塑料
自行车
沉积物
环境科学
环境化学
氮气
微生物群
氮气循环
海洋学
化学
地质学
生物
地理
生物信息学
古生物学
考古
有机化学
作者
Chang Fang,Yuting Yang,Shuping Zhang,Yinglin He,Sentao Pan,Lei Zhou,Jun Wang,Huirong Yang
标识
DOI:10.1016/j.jhazmat.2024.134387
摘要
Microplastics (MPs) are distributed widely in the ocean surface waters and sediments. Increasing MPs contamination in intertidal zone profoundly impacts microbial ecosystem services and biogeochemical process. Little is known about the response of tidal sediment microbiome to MPs. We conducted a 30-day laboratory microcosm study using five polymers (PE, PBS, PC, PLA and PET) at three concentrations (1%, 2% and 5%, w/w). High throughput sequencing of 16 S rRNA, qPCR and enzyme activity test were applied to demonstrate the response of microbial community and nitrogen cycling functional genes to MPs. MPs reduced the microbial alpha diversity and the microbial dissimilarity while the effects of PLA-MPs were concentration dependent. LEfSe analysis indicated that the Proteobacteria predominated for all MP treatments. Mantel's test, RDA and correlation analysis implied that pH may be the key environmental factor for causing microbial alterations. MPs enhanced nitrogen fixation in tidal sediment. PLA levels of 1% but not 5% produced the most significant effects in nitrogen cycling functional microbiota and genes. PLS-PM revealed that impacts of MPs on tidal sediment microbial communities and nitrogen cycling were dominated by indirect effects. Our study deepened understanding and filled the knowledge gap of MP contaminants affecting tidal sediment microbial nitrogen cycling. The global prevalence of plastic waste has resulted in the severely continuous accumulation of MPs especially in tidal sediments. Compared to MPs exposure on soil or absolute sediment, the exposure of MPs with different polymers and concentrations affected the nitrogen cycling in the tidal sediment, enhancing nitrogen fixation while indicating non-consistent effects on the other processes. The present work clarified the toxicological effects of MPs on tidal sediment, filling the knowledge gap about how MPs affected microbial nitrogen cycling in intertidal zone.
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