Physiological barriers for glucose utilization inMethanosarcina acetivorans

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Abstract

Methanogenesis is a key aspect of anaerobic biomass degradation, and thus of global importance. While methanogenic archaea (methanogens) are ubiquitous in anaerobic habitats, the range of substrates they utilize is very limited. Most methanogens are able to grow chemolithotrophically with H 2 +CO 2 , some clades can utilize methylated compounds and/or acetate as well. Organotrophic compounds like amino acids, lipids, nucleotides, or carbohydrates, are not known to support growth of methanogens. This inability to utilize “upstream” intermediates of anaerobic biomass degradation is remarkable considering the presence of cellular metabolism that such intermediates could feed into. Here, we addressed the question why the model methanogen Methanosarcina acetivorans , despite its gluconeogenic and glycolytic capacity, is unable to utilize glucose for methanogenesis and growth. Complementing heterologously with a glucose uptake facilitator allowed a recombinant M. acetivorans strain to convert glucose to methane at a low rate. However, growth with glucose was not observed, neither as energy source nor as carbon source. Instead, methylotrophic growth of the transgenic strain was impaired in a glucose-dependent fashion, which was aggravated when also glucokinase was heterologuously produced. Glucose-dependent growth inhibition coincided with a significant – and microscopically visible – accumulation of intracellular carbohydrate. Since the glucose-utilizing trait is rapidly lost during methylotrophic growth, accumulating growth-inhibiting metabolites probably makes methanogenic and glycolytic catabolism incompatible. Thus, extensive efforts in strain development would be required to enable direct glucose utilization for methanogenesis.

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License: CC-BY-ND-4.0