微塑料
蚯蚓
微生物种群生物学
生物膜
微生物
生态学
环境化学
生态系统
生物
微生物代谢
微生物降解
细菌
鞘脂单胞菌属
化学
土壤生物学
土壤微生物学
微生物学
陆地生态系统
微生物生态学
污染
叶圈
病菌
污染
硝基螺
食物链
矿化(土壤科学)
细菌生长
殖民地化
人类病原体
作者
Yilun Liu,Zipei Luo,Yunmu Xiao,Yong Li,Meizhi Liu,Yang Shi,Ziqian Li,Wenlan Lei,Changchao Li,Ling N. Jin,Wende YAN
标识
DOI:10.1021/acs.est.5c15257
摘要
Microplastics (MPs) pollution in terrestrial ecosystems poses significant ecological risks, particularly as carriers of microbial communities and potential pathogens. However, the mechanisms by which MPs interact with microbes during transit through soil animal digestive systems remain poorly understood. This study investigated the interactions between poly(ethylene terephthalate) (PET) and polystyrene (PS) MPs and gut-derived microbes using a biomimetic earthworm gut model. PET and PS MPs exhibited distinct microbial colonization patterns, driven by their physicochemical properties. PET MPs, with rougher surfaces, preferentially adsorbed cocci such as Paraclostridium, fostering high-density but low-activity bacterial populations. Conversely, PS MPs, with smoother surfaces, enriched bacilli such as Raoultella, supporting low-density but high-activity bacterial communities. PET MPs facilitated rapid bacterial proliferation but lacked long-term stability, whereas PS MPs created persistent microenvironments that increased the ecological risk of pathogen retention and spread. The oxidative degradation of MPs during gut transit enhanced bacterial adhesion by forming reactive surface functionalities. MPs significantly altered microbial diversity and served as selective vectors for microbial dissemination into soil ecosystems, disrupting the microbial dynamics. These findings underscore the dual role of MPs as microbial scaffolds and ecological disruptors, providing critical insights into their ecological impacts and guiding strategies to mitigate MP contamination and pathogenic risks.
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