Laboratory-scale bioaugmentation relieves acetate accumulation and stimulates methane production in stalled anaerobic digesters

被引:0
作者
Jennifer R. Town
Tim J. Dumonceaux
机构
[1] Agriculture and Agri-Food Canada,Department of Veterinary Microbiology, WCVM
[2] University of Saskatchewan,undefined
来源
Applied Microbiology and Biotechnology | 2016年 / 100卷
关键词
Anaerobic digestion; Thermophilic; Methanogen; Bioaugmentation; Acetoclastic;
D O I
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中图分类号
学科分类号
摘要
An imbalance between acidogenic and methanogenic organisms during anaerobic digestion can result in increased accumulation of volatile fatty acids, decreased reactor pH, and inhibition of methane-producing Archaea. Most commonly the result of organic input overload or poor inoculum selection, these microbiological and biochemical changes severely hamper reactor performance, and there are a few tools available to facilitate reactor recovery. A small, stable consortium capable of catabolizing acetate and producing methane was propagated in vitro and evaluated as a potential bioaugmentation tool for stimulating methanogenesis in acidified reactors. Replicate laboratory-scale batch digesters were seeded with a combination of bioethanol stillage waste and a dairy manure inoculum previously observed to result in high volatile fatty acid accumulation and reactor failure. Experimental reactors were then amended with the acetoclastic consortium, and control reactors were amended with sterile culture media. Within 7 days, bioaugmented reactors had significantly reduced acetate accumulation and the proportion of methane in the biogas increased from 0.2 ± 0 to 74.4 ± 9.9 % while control reactors showed no significant reduction in acetate accumulation or increase in methane production. Organisms from the consortium were enumerated using specific quantitative PCR assays to evaluate their growth in the experimental reactors. While the abundance of hydrogenotrophic microorganisms remained stable during the recovery period, an acetoclastic methanogen phylogenetically similar to Methanosarcina sp. increased more than 100-fold and is hypothesized to be the primary contributor to reactor recovery. Genomic sequencing of this organism revealed genes related to the production of methane from acetate, hydrogen, and methanol.
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页码:1009 / 1017
页数:8
相关论文
共 148 条
[11]  
Chaban B(2014)Syntrophic acetate-oxidizing microbes in methanogenic environments Protoc Exch 9 868-877
[12]  
Hill JE(1999)Improved template representation in Genome Res 9 357-9
[13]  
Chou H-H(2012) polymerase chain reaction (PCR) product libraries generated from complex templates by application of a specific mixture of PCR primers Nat Methods 152 347-354
[14]  
Holmes MH(2014)Modified paired end rapid library preparation protocol for 454 GS junior 8 kb library preparation using covaris g-tubes and BluePippin electrophoresis Bioresour Technol 1 18-7931
[15]  
De Vrieze J(2012)CAP3: a DNA sequence assembly program Gigascience 188 7922-D122
[16]  
Hennebel T(2006)Fast gapped-read alignment with bowtie 2 J Bacteriol 40 D115-4
[17]  
Boon N(2012) spp., the key to relieve the start-up of a thermophilic anaerobic digestion suffering from high acetic acid loads Nucleic Acids Res 10 881-31
[18]  
Verstraete W(2013)SOAPdenovo2: an empirically improved memory-efficient short-read de novo assembler Nat Methods 106 19126-108
[19]  
Dumonceaux TJ(2009)The Proc Natl Acad Sci U S A 80 101-3564
[20]  
Hill JE(2008) genome: comparative analysis with Water Envrion Res 44 3555-478