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

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-10-09 DOI:10.1007/s10123-024-00603-w
Mingle Zhang, Zhimin He, Xiaoyi Xu, Fan Ji, Bin Wang
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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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在高浓度吐温80条件下,节杆菌SZ-3和假单胞菌B6-2协同增强多环芳烃降解:机理与效率
本研究探讨了微生物联合降解多环芳烃(PAHs)在减少土壤洗涤中常用的高浓度洗脱剂的抑制作用方面的优势。研究提出了一种微生物协同策略,即在有吐温 80 的情况下,以节肢动物杆菌 SZ-3 和假单胞菌 B6-2 作为关键细菌。结果表明,在含有吐温 80 的系统中,SZ-3 菌株表现出降解三种多环芳烃化合物的强大能力,而 B6-2 菌株则遵循多种降解途径。在不同浓度的吐温 80 中,混合细菌的降解率比单一细菌高 60.70%。此外,混合细菌的平均生长率提高了 1.17-1.37 倍,与功能组的变化一致。每个降解系统中的蛋白质活性检测都与生长量和 ETS 酶活性的周期性变化特征相对应。值得注意的是,混合菌的 ETS 活性比单一菌高 150%。在吐温 80 浓度为 500 mg/L 时,混合细菌对 PAHs(Phe、Flu、Pyr)的降解率明显高于单一细菌。混合细菌的儿茶酚 1,2-二氧酶活性是单一细菌的 2.30 倍。尽管吐温 80 没有改变多环芳烃的降解途径,但却极大地影响了特征中间产物的积累量和持续时间。这为在高浓度表面活性剂条件下修复难降解污染物提供了参考。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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