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A Whole Cell Bioreporter Approach to Assess Transport and Bioavailability of Organic Contaminants in Water Unsaturated Systems
Published on: December 24, 2014
Cefpirome biodegradation by enriched bacterial consortia and isolated strain Bosea sp. MYQ: Novel insights on
Hongchao Min1, Yuyang Wang1, Qi Wang1
1Institute of Environment and Ecology, Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen, China.
Abstract:
Deciphering the metabolic fate of cefpirome is essential for designing more efficient biodegradation strategies. In this study, we integrated second- and third-generation metagenomic sequencing with high-performance liquid chromatography-quadrupole time-of-flight mass spectrometer (HPLC-QTOF-MS) to unravel cefpirome biodegradation by a long-term enriched bacterial consortium and its key isolate Bosea sp. MYQ. Five biodegradation products were detected and mapped onto three cooperative pathways. Among them, four products involved in Pathways 2 and 3 were first identified in cefpirome biodegradation. Genome-scale metabolic modeling and genome-resolved metagenomics jointly revealed a pollutant-degrading network coordinated by two keystone donors, MAG2 (Variovorax) and MAG3 (Bosea sp. MYQ). They were primarily responsible for β-lactam ring-opening and the formation of downstream products, while exporting diverse metabolic intermediates to sustain pathway continuity through cross-feeding. Notably, MAG3 (Bosea sp. MYQ) encodes per-1 and bla, which likely contribute critically to cefpirome degradation by underpinning key β-lactam transformation steps. Complementary functions were provided by auxiliary and rare members, particularly MAG4 (Hyphomicrobium), MAG7 (Pandoraea), MAG10 (Methyloversatilis), and MAG21 (Phenylobacterium). These findings expand the repertoire of cefpirome-degrading microorganisms, reveal previously unrecognized biodegradation pathways, and clarify the microbial interaction network underpinning fourth-generation cephalosporin removal.
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