@misc{b0e85bba8e6f495e9483657013fbc42c,
title = "Integrating CO2 Electrolysis with Gas Fermentation to Produce Valuable Fuels and Chemicals",
abstract = "Many industrial activities squander CO2, decreasing process yield. We envision a future where this waste carbon is instead captured, upgraded, and valorized directly at the point of emission. Within the CO2 Reduction and Upgrading Consortium (a collaboration of seven US national laboratories and industrial partners), we are pursuing this goal by developing and de-risking new technologies for low temperature CO2 electrolysis, coupled with biological upgrading of intermediates into more valuable compounds. One such process involves electrocatalytic reduction of CO2 to generate carbon monoxide (CO). As both a carbon and energy source, CO represents an attractive feedstock for microbial upgrading by certain syngas-fermenting species, such as the autotrophic bacterium Clostridium autoethanogenum. Our team has developed new genetic tools and optimized cultivation techniques to enhance C. autoethanogenum as a platform host for the biological conversion of syngas into value-added products. For example, we have created novel CRISPR-based genetic engineering techniques to build new, genome-reduced, platform strains of C. autoethanogenum with improved growth rates. Further, we ve introduced heterologous biochemical pathways into C. autoethanogenum to enable the production of high-value compounds from syngas, such as the isoprenoid precursor mevalonic acid. With the tools of electrochemistry and synthetic biology, there is virtually no limit to the spectrum of products that could be sustainably manufactured from CO2.",
keywords = "carbon dioxide, carbon monoxide, clostridium, CRISPR, electrolysis, gas fermentation, metabolic engineering, syngas",
author = "Chris Calvey",
year = "2025",
doi = "10.2172/3027699",
language = "American English",
series = "Presented at the 47th Symposium on Biomaterials, Fuels and Chemicals, 4-7 May 2025, Milwaukee, Wisconsin",
type = "Other",
}