Cysteine-Accelerated Methanogenic Propionate Degradation in Paddy Soil Enrichment

被引:0
作者
Li Zhuang
Jinlian Ma
Jia Tang
Ziyang Tang
Shungui Zhou
机构
[1] Guangdong Institute of Eco-environmental and Soil Sciences,Guangdong Key Laboratory of Agricultural Environment Pollution Integrated Control
来源
Microbial Ecology | 2017年 / 73卷
关键词
Propionate degradation; Methanogenesis; Cysteine; Electron shuttle; Syntrophic interaction;
D O I
暂无
中图分类号
学科分类号
摘要
Propionate degradation is a critical step during the conversion of complex organic matter under methanogenic conditions, and it requires a syntrophic cooperation between propionate-oxidizing bacteria and methanogenic archaea. Increasing evidences suggest that interspecies electron transfer for syntrophic metabolism is not limited to the reducing equivalents of hydrogen and formate. This study tested the ability of an electron shuttle to mediate interspecies electron transfer in syntrophic methanogenesis. We found that cysteine supplementation (100, 400, and 800 μM) accelerated CH4 production from propionate in paddy soil enrichments. Of the concentrations tested, 100 μM cysteine was the most effective at enhancing propionate degradation to CH4, and the rates of CH4 production and propionate degradation were increased by 109 and 79%, respectively, compared with the cysteine-free control incubations. We eliminated the possibility that the stimulatory effect of cysteine on methanogenesis was attributable to the function of cysteine as a methanogenic substrate in the presence of propionate. The potential catalytic effect involved cysteine serving as an electron carrier to mediate interspecies electron transfer in syntrophic propionate oxidization. The redox potential of cystine/cysteine, which is dependent on the concentration, might be more suitable to facilitate interspecies electron transfer between syntrophic partners at a concentration of 100 μM. Pelotomaculum, obligately syntrophic, propionate-oxidizing bacteria, and hydrogenotrophic methanogens of the family Methanobacteriaceae are predominant in cysteine-mediated methanogenic propionate degradation. The stimulatory effect of cysteine on syntrophic methanogenesis offers remarkable potential for improving the performance of anaerobic digestion and conceptually broaden strategies for interspecies electron transfer in syntrophic metabolism.
引用
收藏
页码:916 / 924
页数:8
相关论文
共 149 条
[1]  
de Bok FA(2004)Interspecies electron transfer in methanogenic propionate degrading consortia Water Res 38 1368-1375
[2]  
Plugge CM(2013)Microbial syntrophy: interaction for the common good FEMS Microbiol Rev 37 384-406
[3]  
Stams AJM(2014)The importance of hydrogen and formate transfer for syntrophic fatty, aromatic and alicyclic metabolism Environ Microbiol 16 177-188
[4]  
Morris BE(2014)A new model for electron flow during anaerobic digestion: direct interspecies electron transfer to Energy Environ Sci 7 408-416
[5]  
Henneberger R(2014) for the reduction of carbon dioxide to methane Appl Environ Microbiol 80 4599-4605
[6]  
Huber H(2012)Direct interspecies electron transfer between Environ Microbiol 14 1646-1654
[7]  
Moissl-Eichinger C(2014) and Environ Sci Technol 48 7536-7543
[8]  
Sieber JR(2014)Methanogenesis facilitated by electric syntrophy via (semi) conductive iron-oxide minerals FEMS Microbiol Ecol 88 107-120
[9]  
Le HM(2015)Magnetite particles triggering a faster and more robust syntrophic pathway of methanogenic propionate degradation Environ Microbiol 17 1533-1547
[10]  
Mcinerney MJ(2015)Methanogenesis affected by the co-occurrence of iron(III) oxides and humic substances J Hazard Mater 293 37-45