Active Chemistry Materials & Manufacturing

SuCCEED: Sustainable Commodity Chemicals through Enzyme Engineering & Design

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Plastics, paints, and detergents are currently made from oil and gas, but this project aims to produce them from plant waste instead, using engineered enzymes. The problem is that commodity chemicals—the building blocks for everything from polyester to cosmetics—are toxic to the microorganisms that could otherwise brew them from renewable biomass. Fermentation can produce harmless precursors like ethanol, but converting those into the final chemical has been too inefficient to compete with fossil-fuel-based manufacturing. The researchers have already shown that separating the fermentation step from the chemical conversion step works: they boosted styrene production fivefold compared to earlier methods. If this succeeds, the team—working with Shell—will demonstrate that the same two-step process can make aldehydes, dienes, and dicarboxylic acids at industrial scale. That would open a route to replacing petroleum feedstocks in global supply chains for plastics, synthetic rubber, and adhesives, cutting CO₂ emissions without redesigning the products themselves. The work is applied, not fundamental: it directly tackles the economic and technical barriers that have kept biomanufacturing from competing in low-margin, high-volume chemical markets.

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Commodity chemicals underpin various aspect of modern everyday life, and are mass produced on a global scale. They underpin the production of plastics/polymers, dyes/pigments, cosmetics/detergents etc, and are normally derived from finite geological sources. In view of the need to move towards a more sustainable and circular economy, viable routes for the bioproduction of commodity chemicals are urgently required. One of the key challenges for such routes is that they must operate at relatively low profit margins and at appropriate bulk scale. This presents a significant hurdle to commercial deployment, but, given the scale of commodity chemical production, viable biomanufacturing routes would offer substantial impact upon the global efforts to reduce CO2 emissions. In addition to the challenges posed at economic and technical levels, the very nature of most commodity chemicals all too often renders them incompatible with direct production by microorganisms. This is due to the inherent reactivity and associated toxicity of these compounds. Furthermore, the relatively slow accumulation of the product during fermentation all too frequently leads to downstream side reactions. Nevertheless, various routes to a wide range of commodity chemicals of interest have been reported, but suffer from low productivity for these reasons. By contrast, fermentation can yield high levels of biocompatible precursors such as ethanol/lactic acid etc as frequently used in brewing/diary industry. These compounds in turn can be converted to a limited range of commodity chemicals through downstream processes. By analogy, we propose that both existing and novel bioroutes to commodity chemicals would benefit from a similar two-step approach. In the first step, we seek to achieve accumulation of suitable biocompatible precursors from 2G/3G derived biomass. In the second step, we will use enzymatic conversion to yield the desired commodity chemical product. Crucially, separation of microbial growth from chemical production is afforded by such a two-step process, bypassing the issue of toxicity/side-reactions during fermentation. As a proof-of-principle, we recently applied this strategy to bio-styrene production, achieving a 5-fold increase on styrene production levels compared to previous methods. In collaboration with Shell, we seek to further enhance the new styrene bioproduction process and demonstrate production at scales appropriate for further industrial development. Furthermore, we seek to demonstrate that similar strategies can be successfully applied to the production of a wider range of commodity chemicals, including aldehydes, dienes, dicarboxylic acids etc. To this end, we have brought together an interdisciplinary team of biochemists, protein engineers, synthetic biologists, chemists and chemical engineers to provide proof-of-principle for scalable production of multiple commodity chemicals using post-fermentative enzymatic conversion to support creation of viable biorefineries.

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Researchers

Anthony Green (Co-Investigator)David Leys (Principal Investigator)James Winterburn (Co-Investigator)Jesus Esteban Serrano (Co-Investigator)Michael Turner (Co-Investigator)Neil Dixon (Co-Investigator)Nigel Scrutton (Co-Investigator)Rosa Cuellar Franca (Co-Investigator)Vincenzo Spallina (Co-Investigator)

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Research Grant

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