| Literature DB >> 26231417 |
Richard A Kohn1, Seon-Woo Kim2.
Abstract
Fermentation of crops, waste biomass, or gases has been proposed as a means to produce desired chemicals and renewable fuels. The second law of thermodynamics has been shown to determine the net direction of metabolite flow in fermentation processes. In this article, we describe a process to isolate and direct the evolution of microorganisms that convert cellulosic biomass or gaseous CO2 and H2 to biofuels such as ethanol, 1-butanol, butane, or hexane (among others). Mathematical models of fermentation elucidated sets of conditions that thermodynamically favor synthesis of desired products. When these conditions were applied to mixed cultures from the rumen of a cow, bacteria that produced alcohols or alkanes were isolated. The examples demonstrate the first use of thermodynamic analysis to isolate bacteria and control fermentation processes for biofuel production among other uses.Entities:
Keywords: Advanced biofuels; Bacterial species competition and selection pressure; Fermentation; Mathematical modeling of microbial ecosystems; Rumen microbiome
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Year: 2015 PMID: 26231417 DOI: 10.1016/j.jtbi.2015.07.019
Source DB: PubMed Journal: J Theor Biol ISSN: 0022-5193 Impact factor: 2.691