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Updated: Sep 12, 2026

High-throughput Identification of Bacteria Repellent Polymers for Medical Devices
Published on: November 5, 2016
Biodegradable polymer backbone shapes plastisphere assembly, enhancing antibiotic sorption and reshaping aquatic
Sadam Hussain Tumrani1, Ruifang Qi2, Jinming Lei1
1The State Key Laboratory of Regional Environment and Sustainability, Ministry of Education, School of Environment, Beijing Normal University, Beijing 100875, PR China.
Abstract:
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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