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Thermodynamically diverse syntrophic aromatic compound catabolism

Authors :
Kyohei Kuroda
Takashi Narihiro
Ran Mei
Miaomiao Liu
Masaru K. Nobu
Wen Tso Liu
Source :
Environmental Microbiology. 19:4576-4586
Publication Year :
2017
Publisher :
Wiley, 2017.

Abstract

Specialized organotrophic Bacteria 'syntrophs' and methanogenic Archaea 'methanogens' form a unique metabolic interaction to accomplish cooperative mineralization of organic compounds to CH4 and CO2 . Due to challenges in cultivation of syntrophs, mechanisms for how their organotrophic catabolism circumvents thermodynamic restrictions remain unclear. In this study, we investigate two communities hosting diverse syntrophic aromatic compound metabolizers (Syntrophus, Syntrophorhabdus, Pelotomaculum and an uncultivated Syntrophorhabdacaeae member) to uncover their catabolic diversity and flexibility. Although syntrophs have been generally presumed to metabolize aromatic compounds to acetate, CO2 , H2 and formate, combined metagenomics and metatranscriptomics show that uncultured syntrophs utilize unconventional alternative metabolic pathways in situ producing butyrate, cyclohexanecarboxylate and benzoate as catabolic byproducts. In addition, we also find parallel utilization of diverse H2 and formate generating pathways to facilitate interactions with partner methanogens. Based on thermodynamic calculations, these pathways may enable syntrophs to combat thermodynamic restrictions. In addition, when fed with specific substrates (i.e., benzoate, terephthalate or trimellitate), each syntroph population expresses different pathways, suggesting ecological diversification among syntrophs. These findings suggest we may be drastically underestimating the biochemical capabilities, strategies and diversity of syntrophic bacteria thriving at the thermodynamic limit.

Details

ISSN :
14622912
Volume :
19
Database :
OpenAIRE
Journal :
Environmental Microbiology
Accession number :
edsair.doi...........37955b5ba699c3107d9415da21a90e67
Full Text :
https://doi.org/10.1111/1462-2920.13922