Wang_2022_Chemosphere_299_134406

Reference

Title : Omics and mechanistic insights into di-(2-ethylhexyl) phthalate degradation in the O(2)-fluctuating estuarine sediments - Wang_2022_Chemosphere_299_134406
Author(s) : Wang PH , Chen YL , Wu TY , Wu YW , Wang TY , Shih CJ , Wei ST , Lai YL , Liu CX , Chiang YR
Ref : Chemosphere , 299 :134406 , 2022
Abstract :

Di-(2-ethylhexyl) phthalate (DEHP) represents the most used phthalate plasticizer with an annual production above the millions of tons worldwide. Due to its inadequate disposal, outstanding chemical stability, and extremely low solubility (3 mg/L), endocrine-disrupting DEHP often accumulates in urban estuarine sediments at concentrations above the predicted no-effect concentration (20-100 mg/kg). Our previous study suggested that microbial DEHP degradation in estuarine sediments proceeds synergistically where DEHP side-chain hydrolysis to form phthalic acid represents a bottleneck. Here, we resolved this bottleneck and deconstructed the microbial synergy in O(2)-fluctuating estuarine sediments. Metagenomic analysis and RNA sequencing suggested that orthologous genes encoding extracellular DEHP hydrolase NCU65476 in Acidovorax sp. strain 210-6 are often flanked by the co-expressed composite transposon and are widespread in aquatic environments worldwide. Therefore, we developed a turbidity-based microplate assay to characterize NCU65476. The optimized assay conditions (with 1 mM Ca(2+) and pH 6.0) increased the DEHP hydrolysis rate by a factor of 10. Next, we isolated phthalic acid-degrading Hydrogenophaga spp. and Thauera chlorobenzoica from Guandu estuarine sediment to study the effect of O(2(aq)) on their metabolic synergy with strain 210-6. The results of co-culture experiments suggested that after DEHP side-chain hydrolysis by strain 210-6, phthalic acid can be degraded by Hydrogenophaga sp. when O(2(aq)) is above 1 mg/L or degraded by Thauera chlorobenzoica anaerobically. Altogether, our data demonstrates that DEHP could be degraded synergistically in estuarine sediments via divergent pathways responding to O(2) availability. The optimized conditions for NCU65476 could facilitate the practice of DEHP bioremediation in estuarine sediments.

PubMedSearch : Wang_2022_Chemosphere_299_134406
PubMedID: 35358556

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Citations formats

Wang PH, Chen YL, Wu TY, Wu YW, Wang TY, Shih CJ, Wei ST, Lai YL, Liu CX, Chiang YR (2022)
Omics and mechanistic insights into di-(2-ethylhexyl) phthalate degradation in the O(2)-fluctuating estuarine sediments
Chemosphere 299 :134406

Wang PH, Chen YL, Wu TY, Wu YW, Wang TY, Shih CJ, Wei ST, Lai YL, Liu CX, Chiang YR (2022)
Chemosphere 299 :134406