Methane production by Methanothrix thermoacetophila via direct interspecies electron transfer with Geobacter metallireducens

被引:34
|
作者
Zhou, Jinjie [1 ,2 ,3 ,4 ]
Smith, Jessica A. [3 ,5 ]
Li, Meng [1 ,4 ]
Holmes, Dawn E. [3 ,6 ]
机构
[1] Shenzhen Univ, Inst Adv Study, Archaeal Biol Ctr, Shenzhen, Peoples R China
[2] Shenzhen Univ, Coll Optoelect Engn, Lab Optoelect Devices & Syst, Minist Educ, Shenzhen, Guangdong, Peoples R China
[3] Univ Massachusetts Amherst, Dept Microbiol, Amherst, MA USA
[4] Shenzhen Univ, Inst Adv Study, Shenzhen Key Lab Marine Microbiome Engn, Shenzhen, Peoples R China
[5] Cent Connecticut State Univ, Dept Biomol Sci, New Britain, CT USA
[6] Western New England Univ, Dept Phys & Biol Sci, Springfield, MA USA
来源
MBIO | 2023年 / 14卷 / 04期
基金
中国博士后科学基金; 中国国家自然科学基金;
关键词
Methanothrix; direct interspecies electron transfer (DIET); methane; magnetite; granular activated carbon (GAC); archaea; Geobacter; cytochromes; acetate; C-TYPE CYTOCHROME; ANAEROBIC-DIGESTION; METHANOSAETA; REDUCTION; CARBON; COMMUNITY; MAGNETITE; SEQUENCE; METHANOGENESIS; METABOLISM;
D O I
10.1128/mbio.00360-23
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Methanothrix is widely distributed in natural and artificial anoxic environments and plays a major role in global methane emissions. It is one of only two genera that can form methane from acetate dismutation and through participation in direct interspecies electron transfer (DIET) with exoelectrogens. Although Methanothrix is a significant member of many methanogenic communities, little is known about its physiology. In this study, transcriptomics helped to identify potential routes of electron transfer during DIET between Geobacter metallireducens and Methanothrix thermoacetophila. Additions of magnetite to cultures significantly enhanced growth by acetoclastic methanogenesis and by DIET, while granular activated carbon (GAC) amendments impaired growth. Transcriptomics suggested that the OmaF-OmbF-OmcF porin complex and the octaheme outer membrane c-type cytochrome encoded by Gmet_0930, were important for electron transport across the outer membrane of G. metallireducens during DIET with Mx. thermoacetophila. Clear differences in the metabolism of Mx. thermoacetophila when grown via DIET or acetate dismutation were not apparent. However, genes coding for proteins involved in carbon fixation, the sheath fiber protein MspA, and a surface-associated quinoprotein, SqpA, were highly expressed in all conditions. Expression of gas vesicle genes was significantly lower in DIET- than acetate-grown cells, possibly to facilitate better contact between membrane-associated redox proteins during DIET. These studies reveal potential electron transfer mechanisms utilized by both Geobacter and Methanothrix during DIET and provide important insights into the physiology of Methanothrix in anoxic environments.IMPORTANCEMethanothrix is a significant methane producer in a variety of methanogenic environments including soils and sediments as well as anaerobic digesters. Its abundance in these anoxic environments has mostly been attributed to its high affinity for acetate and its ability to grow by acetoclastic methanogenesis. However, Methanothrix species can also generate methane by directly accepting electrons from exoelectrogenic bacteria through direct interspecies electron transfer (DIET). Methane production through DIET is likely to further increase their contribution to methane production in natural and artificial environments. Therefore, acquiring a better understanding of DIET with Methanothrix will help shed light on ways to (i) minimize microbial methane production in natural terrestrial environments and (ii) maximize biogas formation by anaerobic digesters treating waste. Methanothrix is a significant methane producer in a variety of methanogenic environments including soils and sediments as well as anaerobic digesters. Its abundance in these anoxic environments has mostly been attributed to its high affinity for acetate and its ability to grow by acetoclastic methanogenesis. However, Methanothrix species can also generate methane by directly accepting electrons from exoelectrogenic bacteria through direct interspecies electron transfer (DIET). Methane production through DIET is likely to further increase their contribution to methane production in natural and artificial environments. Therefore, acquiring a better understanding of DIET with Methanothrix will help shed light on ways to (i) minimize microbial methane production in natural terrestrial environments and (ii) maximize biogas formation by anaerobic digesters treating waste.
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页数:19
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