Exploring alternative pathways for the in vitro establishment of the HOPAC cycle for synthetic CO<sub>2</sub> fixation.

McLean, Richard; Schwander, Thomas; Diehl, Christoph; Cortina, Niña Socorro; Paczia, Nicole; Zarzycki, Jan; Erb, Tobias J · Sci Adv · 2023

basic_science · Level V

Where this comes from

Abstract

Nature has evolved eight different pathways for the capture and conversion of CO<sub>2</sub>, including the Calvin-Benson-Bassham cycle of photosynthesis. Yet, these pathways underlie constrains and only represent a fraction of the thousands of theoretically possible solutions. To overcome the limitations of natural evolution, we introduce the HydrOxyPropionyl-CoA/Acrylyl-CoA (HOPAC) cycle, a new-to-nature CO<sub>2</sub>-fixation pathway that was designed through metabolic retrosynthesis around the reductive carboxylation of acrylyl-CoA, a highly efficient principle of CO<sub>2</sub> fixation. We realized the HOPAC cycle in a step-wise fashion and used rational engineering approaches and machine learning-guided workflows to further optimize its output by more than one order of magnitude. Version 4.0 of the HOPAC cycle encompasses 11 enzymes from six different organisms, converting ~3.0 mM CO<sub>2</sub> into glycolate within 2 hours. Our work moves the hypothetical HOPAC cycle from a theoretical design into an established in vitro system that forms the basis for different potential applications.

Medical subject headings