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Synergistic enhancement of polycyclic aromatic hydrocarbon degradation by Arthrobacter sp. SZ-3 and Pseudomonas putida B6-2 under high Tween80 concentration: mechanisms and efficiency. | LitMetric

AI Article Synopsis

  • This study focuses on enhancing the microbial degradation of polycyclic aromatic hydrocarbons (PAHs) using a combination of two key bacteria, Arthrobacter sp. SZ-3 and Pseudomonas putida B6-2, alongside the surfactant Tween 80.
  • Results indicate that mixed bacterial systems degrade PAHs significantly better—by 60.70%—than single bacteria, with mixed bacteria also showing increased growth rates and higher enzyme activity.
  • The findings suggest that although Tween 80 doesn't change the degradation pathways, it improves the effectiveness and duration of degradation, providing valuable insights for cleaning up stubborn pollutants in environments with high surfactant concentrations.

Article Abstract

This study investigates the advantages of combined microbial degradation of polycyclic aromatic hydrocarbons (PAHs) in reducing the inhibitory effects of high-concentration eluents commonly used in soil washing. A microbial synergistic strategy was proposed using Arthrobacter sp. SZ-3 and Pseudomonas putida B6-2 as the key bacteria in the presence of Tween 80. The results show that in systems with Tween 80, the SZ-3 strain exhibits a strong capacity to degrade three types of PAH compounds, while the B6-2 strain follows multiple degradation pathways. Mixed bacteria achieved degradation rates 60.70% higher than single bacteria at varying concentrations of Tween 80. Additionally, the average growth rates of mixed bacteria increased by 1.17-1.37 times, aligning with the changes in the functional group. Protein activity detection within each degradation system corresponded with growth quantity and the cyclic variation characteristics of ETS enzyme activity. Notably, the ETS activity of mixed bacteria was 150% higher than that of single bacteria. At a Tween 80 concentration of 500 mg/L, the degradation rates of PAHs (Phe, Flu, Pyr) by mixed bacteria were significantly higher than those by single bacteria. The catechol 1,2-dioxygenase activity of mixed bacteria was 2.30 times higher than that of single bacteria. While Tween 80 did not alter the PAH degradation pathways, it significantly influenced the accumulation amount and duration of the characteristic intermediate product. This provides a reference for the remediation of recalcitrant pollutants under conditions involving high-concentration surfactants.

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Source
http://dx.doi.org/10.1007/s10123-024-00603-wDOI Listing

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