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Enhancing direct interspecies electron transfer in syntrophic-methanogenic associations with (semi)conductive iron oxides: Effects and mechanisms.

Authors :
Xu, Hui
Chang, Jiali
Wang, Han
Liu, Yancheng
Zhang, Xiaoyuan
Liang, Peng
Huang, Xia
Source :
Science of the Total Environment. Dec2019, Vol. 695, pN.PAG-N.PAG. 1p.
Publication Year :
2019

Abstract

Anaerobic digestion is an effective biological treatment process that produces methane by degrading organic compounds in waste/wastewater. It is a complicated microbial process by metabolic interactions among different types of microorganisms. In this process, efficient interspecies electron transfer between secondary fermenting bacteria and methanogens is the critical process for fast and effective methanogenesis. In syntrophic metabolism, hydrogen or formate has been considered as the conventional electron carrier transferring electrons from secondary fermenting bacteria to hydrogenotrophic methanogens. Recently, direct interspecies electron transfer (DIET) without the involvement of dissolved redox mediators is arousing great concerns and has been regarded as a more efficient and thermodynamically favorable interspecies electron transfer pathway for methanogenesis. Interspecies electron exchange through DIET is accomplished via the membrane-bound cytochromes or conductive pili. Several kinds of exogenously-added conductive or semiconductive iron oxides have been discovered to greatly enhance anaerobic methanogenesis through promoting DIET. Different (semi)conductive iron oxides give a boost to DIET through different mechanisms based on the physicochemical properties of the iron oxides and the reciprocal interactions between iron oxides and functional microorganisms. In this review, the current understanding of interspecies electron transfer in syntrophic-methanogenic consortions is summarized, the effects and deep-rooted mechanisms of (semi)conductive iron oxides on methanogenesis and DIET are discussed, and possible future perspectives and development directions are suggested for DIET via (semi)conductive iron oxides in anaerobic digestion. Unlabelled Image • Interspecies electron transfer is the critical step for syntrophic methanogenesis. • H 2 acts as diffusive electron carriers between syntrophic partners in IHT pathway. • DIET is established by biological electrical connections instead of diffusive H 2. • (Semi)conductive iron oxides promote syntrophic methanogenesis by enhancing DIET. • Electric microbial syntrophy network is built by (semi)conductive iron oxides. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00489697
Volume :
695
Database :
Academic Search Index
Journal :
Science of the Total Environment
Publication Type :
Academic Journal
Accession number :
139707844
Full Text :
https://doi.org/10.1016/j.scitotenv.2019.133876