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Updated: Sep 10, 2026

Characterizing Electron Transport through Living Biofilms
Published on: June 1, 2018
Exploring the mechanism of low-density polyethylene depolymerization and extracellular electron transfer at bio-nano
Tamer Elsamahy1, Osama Abdalla Abdelshafy Mohamad2, Xurui Li1
1State Key Laboratory of Ecological Safety and Sustainable Development in Arid Lands, Xinjiang Institute of Ecology and Geography, Chinese Academy of Sciences, Urumqi 830011, China.
Abstract:
The environmental persistence of low-density polyethylene (LDPE) results from its hydrophobic surface and inert C-C backbone, which restrict microbial colonization and oxidative chain breakdown. Although extracellular electron transfer (EET) is a defining feature of electroactive bacteria (EAB), its role in polyolefin oxidation remains understood. Here, we developed a hybrid bio-nano platform combining EAB from plastic-contaminated soils with Fe3O4-NPs to enhance LDPE biodegradation by integrating EET-associated redox activity, biofilm formation, and oxidative catalysis. The selected strains, Acinetobacter johnsonii PDB-22 and Pseudomonas aeruginosa PDB-38, exhibited biofilm-forming capacity (1.20 ± 0.13 and 0.98 ± 0.10, respectively) and electrochemical activity. The integration of Fe3O4-NPs accelerated the biodegradation, resulting in reductions in polymer weight (11.2 ± 1.2% and 10.5 ± 0.3%, respectively), crystallinity (32.8% and 24.7% relative reduction, respectively), tensile strength (55.0% and 38.8% reduction, respectively), and molecular weight (18.0% Mw reduction for PDB-22-NPs). Mechanistically, Fe3O4-NPs enhanced oxidative enzyme activities and altered their temporal catalytic behavior, consistent with more sustained ROS-associated oxidative depolymerization. Metabolomic profiling revealed strain-specific oxidative transformation patterns, consistent with differences in LDPE depolymerization. These findings support a functional contribution of EET-associated redox activity to LDPE oxidation at the bacteria-NP-polymer interface and provide a promising strategy for plastic bioremediation and a circular bioeconomy.
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