Different contribution of exoelectrogens in methanogenesis via direct interspecies electron transfer (DIET) by the different substrate in continuous anaerobic bioreactor

  • Lee, Sang-Hoon
  • Kang, Hyun-Jin
  • Kim, Yonghoon
  • Kim, Na-Kyung
  • Park, Hee-Deung
Citations

WEB OF SCIENCE

15
Citations

SCOPUS

19

초록

Direct interspecies electron transfer (DIET) is a syntrophic mechanism for electron transfer between exo- and endoelectrogens. Previous studies have demonstrated that methanogenesis performance was significantly improved via the DIET mechanism through conductive materials (CMs) under batch conditions with a single substrate, while that under continuous condition is still under investigation. To investigate how the DIET via CM on methanogenesis performance was changed in response to the different substrates (acetate versus glucose)-fed in continuous anaerobic bioreactors, continuous bioreactors were operated by cross-feeding with acetate and glucose. Acetate-fed conditions showed 0.40 day shorten lagtime, 1.88- and 1.22-folds higher methane production rate, and ultimate methane production than glucose-fed conditions, respectively. Burkholderiaceae- and Anaerolineaceae-related exo-electrogenic populations were enriched with low abundance of Geobacter species in batch reactors. Furthermore, influent substrates affected the distribution of the enriched populations. Taken together, the results suggested that different syntrophic associations contributed methane production by DIET in continuous bioreactors.

키워드

MethanogenesisDIETConductive materialsContinuous bioreactorCross-feedingDifferent substratesMicrobial community changesGRANULAR ACTIVATED CARBONCOMPLEX ORGANIC WASTEMETHANE PRODUCTIONDIGESTIONPERFORMANCECOMMUNITIESBIOCHAR
제목
Different contribution of exoelectrogens in methanogenesis via direct interspecies electron transfer (DIET) by the different substrate in continuous anaerobic bioreactor
저자
Lee, Sang-HoonKang, Hyun-JinKim, YonghoonKim, Na-KyungPark, Hee-Deung
DOI
10.1016/j.biortech.2022.128115
발행일
2022-11
유형
Article
저널명
Bioresource Technology
364