生物膜
中观
生物污染
微生物种群生物学
生态学
藻类
优势(遗传学)
附生植物
微塑料
生物
水质
水生生态系统
微观世界
环境科学
生态演替
微生物生态学
浮游生物
微生物
生态系统
蓝藻
生物可分解塑胶
淡水生态系统
富营养化
环境化学
塑料污染
细菌
沉淀
殖民地化
微生物环
作者
Berte M. Gebreyohanes Belay,Albert A. Koelmans,Lisette N. de Senerpont Domis
出处
期刊:
[Springer Science+Business Media]
日期:2026-04-08
卷期号:4 (5): 610-620
被引量:1
标识
DOI:10.1038/s44221-026-00629-6
摘要
Abstract Freshwater ecosystems in densely populated areas are susceptible to plastic pollution, often reaching concentrations higher than those in marine systems. The ‘plastisphere,’ a specialized microbial community on plastic surfaces, plays a crucial role in determining macroplastic fate and ecological impact. Here, in a 12-week mesocosm experiment simulating urban freshwater systems exposed to macroplastic, we investigated factors affecting polymer-specific biofilm formation, microbial community dynamics and macroplastic settling behaviour. Biofilm growth was significantly influenced by time and plastic type, with rough surfaces (for example, PS (polysytrene) lids, HDPE (high-density polyethylene) bags) supporting higher cell densities. Biofilm development altered buoyancy, increasing sinking rates of dense (PS lids, PLA (polylactic acid (plant-based biopolymer)) cups) and those with thick biofilms (HDPE and PE (polyethylene) bags). Algae accounted for ~99% of the estimated biofilm thickness. Microbial communities in the biofilm exhibited clear temporal succession with peak abundances of bacteria, algae and cyanobacteria over time. However, no differences were detected between biodegradable and conventional plastics. Early dominance of known biofilm-forming and potential plastic-degrading bacteria declined over time, indicating limited biodegradation potential. Overall, water quality primarily shaped microbial community composition, while plastic properties governed biofilm development and settling. Most tested plastics (six of eight) sank during the experiment, highlighting freshwater systems’ vulnerability to plastic accumulation and associated water quality degradation.
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