Conversion of CO<sub>2</sub> into organic acids by engineered autotrophic yeast.

Baumschabl, Michael; Ata, Özge; Mitic, Bernd M; Lutz, Lisa; Gassler, Thomas; Troyer, Christina; Hann, Stephan; Mattanovich, Diethard · Proc Natl Acad Sci U S A · 2022

basic_science · Level V

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Abstract

The increase of CO<sub>2</sub> emissions due to human activity is one of the preeminent reasons for the present climate crisis. In addition, considering the increasing demand for renewable resources, the upcycling of CO<sub>2</sub> as a feedstock gains an extensive importance to establish CO<sub>2</sub>-neutral or CO<sub>2</sub>-negative industrial processes independent of agricultural resources. Here we assess whether synthetic autotrophic <i>Komagataella phaffii</i> (<i>Pichia pastoris</i>) can be used as a platform for value-added chemicals using CO<sub>2</sub> as a feedstock by integrating the heterologous genes for lactic and itaconic acid synthesis. <sup>13</sup>C labeling experiments proved that the resulting strains are able to produce organic acids via the assimilation of CO<sub>2</sub> as a sole carbon source. Further engineering attempts to prevent the lactic acid consumption increased the titers to 600 mg L<sup>-1</sup>, while balancing the expression of key genes and modifying screening conditions led to 2 g L<sup>-1</sup> itaconic acid. Bioreactor cultivations suggest that a fine-tuning on CO<sub>2</sub> uptake and oxygen demand of the cells is essential to reach a higher productivity. We believe that through further metabolic and process engineering, the resulting engineered strain can become a promising host for the production of value-added bulk chemicals by microbial assimilation of CO<sub>2</sub>, to support sustainability of industrial bioprocesses.

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