Impact of different antibiotics on methane production using waste-activated sludge: mechanisms and microbial community dynamics

Appl Microbiol Biotechnol. 2016 Nov;100(21):9355-9364. doi: 10.1007/s00253-016-7767-2. Epub 2016 Aug 17.

Abstract

Anaerobic digestion is an effective method for reducing the by-product of waste-activated sludge (WAS) from wastewater treatment plants and for producing bioenergy from WAS. However, only a limited number of studies have attempted to improve anaerobic digestion by targeting the microbial interactions in WAS. In this study, we examined whether different antibiotics positively, negatively, or neutrally influence methane fermentation by evaluating changes in the microbial community and functions in WAS. Addition of azithromycin promoted the microbial communities related to the acidogenic and acetogenic stages, and a high concentration of soluble proteins and a high activity of methanogens were detected. Chloramphenicol inhibited methane production but did not affect the bacteria that contribute to the hydrolysis, acidogenesis, and acetogenesis digestion stages. The addition of kanamycin, which exhibits the same methane productivity as a control (antibiotic-free WAS), did not affect all of the microbial communities during anaerobic digestion. This study demonstrates the simultaneous functions and interactions of diverse bacteria and methanogenic Archaea in different stages of the anaerobic digestion of WAS. The ratio of Caldilinea, Methanosarcina, and Clostridium may correspond closely to the trend of methane production in each antibiotic. The changes in microbial activities and function by antibiotics facilitate a better understanding of bioenergy production.

Keywords: Anaerobic digestion; Antibiotics; Methane; Microbial activity; Microbial community; Next generation sequencer.

MeSH terms

  • Anaerobiosis
  • Anti-Bacterial Agents / metabolism*
  • Archaea / classification
  • Azithromycin / metabolism
  • Bacteria / classification*
  • Bacteria / drug effects*
  • Biota / drug effects*
  • Chloramphenicol / metabolism
  • Kanamycin / metabolism
  • Methane / metabolism*
  • Sewage / microbiology*

Substances

  • Anti-Bacterial Agents
  • Sewage
  • Kanamycin
  • Chloramphenicol
  • Azithromycin
  • Methane