AI Article Synopsis

  • * It was found that while BACs can enhance the breakdown and fermentation of waste activated sludge (WAS), they also disrupt the function of acidogenic bacteria and inhibit methane production at higher concentrations (15 mg/g TSS).
  • * Metagenomic analysis showed that specific genes related to acid production were slightly promoted, but BACs inhibited key enzymes needed for methane production, leading to an increased accumulation of short-chain fatty acids in the process.

Article Abstract

As an emerging pollutant, benzalkonium chlorides (BACs) potentially enriched in waste activated sludge (WAS). However, the microbial response mechanism under chronic effects of BACs on acidogenesis and methanogenesis in anaerobic digestion (AD) has not been clearly disclosed. This study investigated the AD (by-)products and microbial evolution under low to high BACs concentrations from bioreactor startup to steady running. It was found that BACs can lead to an increase of WAS hydrolysis and fermentation, but a disturbance to acidogenic bacteria also occurred at low BACs concentration. A noticeable inhibition to methanogenesis occurred when BAC concentration was up to 15 mg/g TSS. Metagenomic analysis revealed the key genes involved in acetic acid (HAc) biosynthesis (i.e. phosphate acetyltransferase, PTA), β-oxidation pathway (acetyl-CoA C-acetyltransferase) and propionic acid (HPr) conversion was slightly promoted compared with control. Furthermore, BACs inhibited the acetotrophic methanogenesis (i.e. acetyl-CoA synthetase), especially BAC concentration was up to 15 mg/g TSS, thereby enhanced short chain fatty acids (SCFAs) accumulation. Overall, chronic stimulation of functional microorganisms with increasing concentrations of BACs impact WAS fermentation.

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Source
http://dx.doi.org/10.1016/j.scitotenv.2022.157619DOI Listing

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