Aerobic syngas conversion: opportunities, challenges, and solutions
Anthony Kohtz1, Daniel Bergen2, Georg Fritz3
1Department of Microbiology, Monash University, Clayton, VIC 3800, Australia; ARC Research Hub for Carbon Utilisation and Recycling, Clayton, VIC 3800, Australia.
Abstract:
Some aerobic bacteria can convert syngas, an energy-dense mixture of CO, H2, and CO2 derived from waste gasification, into platform chemicals and products such as single-cell protein and bioplastics. Despite the enormous theoretical energy yield of aerobic syngas conversion, few cultured bacteria can mediate this process, and none do so quickly or efficiently. This reflects the dual challenges that known pathways of aerobic CO conversion are highly inefficient, and most H2-oxidising enzymes are highly CO-sensitive. Here, we propose three strategies to overcome these challenges: evolving and engineering existing syngas-converting strains, isolating novel syngas-converting microbes from gas-rich environments, and introducing CO-insensitive hydrogenases and direct CO conversion pathways into industrial chassis strains. If this can be achieved, efficient aerobic syngas conversion would become a cornerstone of a sustainable bioeconomy.
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Environmental Applications of Microorganisms
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