| Literature DB >> 24302011 |
M G Kalyuzhnaya1, S Yang, O N Rozova, N E Smalley, J Clubb, A Lamb, G A Nagana Gowda, D Raftery, Y Fu, F Bringel, S Vuilleumier, D A C Beck, Y A Trotsenko, V N Khmelenina, M E Lidstrom.
Abstract
Methane is an essential component of the global carbon cycle and one of the most powerful greenhouse gases, yet it is also a promising alternative source of carbon for the biological production of value-added chemicals. Aerobic methane-consuming bacteria (methanotrophs) represent a potential biological platform for methane-based biocatalysis. Here we use a multi-pronged systems-level approach to reassess the metabolic functions for methane utilization in a promising bacterial biocatalyst. We demonstrate that methane assimilation is coupled with a highly efficient pyrophosphate-mediated glycolytic pathway, which under oxygen limitation participates in a novel form of fermentation-based methanotrophy. This surprising discovery suggests a novel mode of methane utilization in oxygen-limited environments, and opens new opportunities for a modular approach towards producing a variety of excreted chemical products using methane as a feedstock.Entities:
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Year: 2013 PMID: 24302011 DOI: 10.1038/ncomms3785
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919