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Biodegradable polymer backbone shapes plastisphere assembly, enhancing antibiotic sorption and reshaping aquatic microbial communities
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"Biodegradable" plastics aren't automatically better for us. As they break down in water, one type (PLA) develops surface changes that let it soak up 7.5 times more antibiotic residue than fresh plastic, and its breakdown byproducts also wiped out much of the surrounding microbial diversity. This suggests eco-friendly plastics could still carry pollutants and disrupt ecosystems as they degrade.
Biodegradable plastics are widely considered environmentally safer alternatives to conventional polymers, yet whether plastisphere-mediated aging amplifies or mitigates their antibiotic vector potential remains mechanistically unresolved. Using polylactic acid (PLA) and polybutylene succinate (PBS) microplastics aged in wastewater, we establish a continuous mechanistic framework linking polymer backbone structure through plastisphere assembly, biofilm-driven surface change, and contaminant sorption to ecosystem-scale microbial succession. Polymer surface structure shaped initial colonization, with PLA recruiting 63% greater biofilm biomass than PBS, while backbone hydrolytic susceptibility selectively enriched taxa reported to encode carboxylesterases (Kluyvera georgiana, Pseudomonas citronellolis) within a more connected plastisphere than on PBS. Specialist-driven degradation induced 42% crystallinity loss and surface area expansion from 8.8 to 14.3 m²/g on PLA through endo-type hydrolytic micropore generation, contrasting sharply with attenuated structural change on PBS. Critically, biodegradation-induced oxidation, not biofilm, governed ofloxacin uptake, yielding hierarchical adsorption capacity (degraded PLA > degraded PBS > colonized PLA > colonized PBS > pristine); degraded surfaces adsorbed 7.5-fold more via emergent -OH and -NH₂ groups, as confirmed by density functional theory. PLA-specific hydrolysis metabolites exerted selective pressure beyond the particle, reducing planktonic OTU richness by 64% and driving phylogenetic homogenization alongside Legionella-taxa. Biodegradability doesn't confer safety; plastisphere transformation governs vector potential.
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Selective enrichment of high-risk antibiotic resistance genes and priority pathogens in freshwater plastisphere: Unique role of biodegradable microplastics
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This study found that biodegradable microplastics like polylactic acid (PLA) -- often marketed as eco-friendly -- actually attracted more dangerous antibiotic-resistant bacteria than conventional plastics in freshwater. The biodegradable plastics selectively enriched high-priority pathogens carrying multiple resistance genes, meaning they could help spread antibiotic resistance through water systems that ultimately affect human health.
Plastisphere as a resistome incubator: Substrate biodegradability escalates compounded genetic risks
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Scientists found that microplastics, especially "biodegradable" ones, can become breeding grounds for bacteria carrying antibiotic resistance genes, sometimes even more than regular plastics. These bacteria also picked up traits that help them spread resistance and cause infections, suggesting that eco-friendly plastics may not be as harmless to health as assumed.
DeterminingAntimicrobial Resistance in the Plastisphere:Lower Risks of Nonbiodegradable vs Higher Risks of Biodegradable Microplastics
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This companion study further characterizes antimicrobial resistance in the plastisphere across different plastic types, confirming that polymer biodegradability influences bacterial community composition and the enrichment of resistance determinants on plastic surfaces in aquatic environments.
Polymer type and aging drive the selective enrichment of antibiotic resistance genes and pathogens in microplastics biofilms
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Researchers compared how microorganisms colonize conventional polypropylene versus biodegradable polylactic acid microplastics in a wetland environment. They found that while biodegradable PLA attracted fewer total microbes, it actually enriched a higher proportion of antibiotic-resistant pathogens and resistance genes, especially after environmental aging. The findings raise important questions about whether biodegradable plastics may pose unexpected risks as carriers of antibiotic resistance in aquatic ecosystems.
Biodegradability of microplastics reshapes surface biofilm microbial community structure and nitrogen cycling functions in aquatic environments
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Researchers compared how biodegradable (PLA) and non-biodegradable (polyethylene and PVC) microplastics affect the microbial communities that form on their surfaces in aquatic environments, finding substantial differences in which bacteria colonized each plastic type and how they processed nitrogen. PLA supported communities rich in nitrogen-cycling bacteria, while PVC and polyethylene enriched different microbial groups associated with pollutant degradation. The study suggests that the push toward biodegradable plastics will change — not just reduce — the ecological effects of microplastics in rivers and lakes.
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