AI Article Synopsis

  • A thermophilic anaerobic bacterium efficiently converts carbohydrates into succinate and acetate, with its genome sequenced for metabolic reconstruction.
  • Enzyme assays revealed unique cofactor preferences, like xylulokinase favoring GTP over ATP, which could enhance engineering efforts for xylose utilization in industrial processes.
  • The study highlights the potential of this organism for organic acid production, particularly succinic acid, from lignocellulosic biomass, while also discussing the advantages of running fermentation processes at elevated temperatures.

Article Abstract

is a thermophilic anaerobic bacterium able to convert various carbohydrates to succinate and acetate as main fermentation products. Genomes of the four publicly available strains have been sequenced, and the genome of the type strain has been closed. The annotated genomes were used to reconstruct the central metabolism, and enzyme assays were used to validate annotations and to determine cofactor specificity. The genes were identified for the pathways to all fermentation products, as well as for the Embden-Meyerhof-Parnas pathway and the pentose phosphate pathway. Notably, a candidate transaldolase was lacking, and transcriptomics during growth on glucose versus that on xylose did not provide any leads to potential transaldolase genes or alternative pathways connecting the C with the C/C metabolism. Enzyme assays showed xylulokinase to prefer GTP over ATP, which could be of importance for engineering xylose utilization in related thermophilic species of industrial relevance. Furthermore, the gene responsible for malate dehydrogenase was identified via heterologous expression in and subsequent assays with the cell extract, which has proven to be a simple and powerful method for the basal characterization of thermophilic enzymes. Running industrial fermentation processes at elevated temperatures has several advantages, including reduced cooling requirements, increased reaction rates and solubilities, and a possibility to perform simultaneous saccharification and fermentation of a pretreated biomass. Most studies with thermophiles so far have focused on bioethanol production. seems an attractive production organism for organic acids, succinic acid in particular, from lignocellulosic biomass-derived sugars. This study provides valuable insights into its central metabolism and GTP and PP cofactor utilization.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6007105PMC
http://dx.doi.org/10.1128/AEM.00363-18DOI Listing

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