Improving cell-free metabolism through direct integration of artificial respiratory chains
Abstract
Energy-conserving mechanisms are essential in supporting cellular life. Yet in synthetic biology, it remains a challenge to reconstruct such processes from the bottom–up and integrate them with other biological functions to create complex systems with life-like properties. Recent efforts to build higher-order cell-free metabolic networks have suffered from the fact that their central oxidation reactions are not coupled to energy conservation, causing kinetic and thermodynamic limitations. Here, we developed an artificial respiratory chain that we tailored to sustain rapid electron transfer in a CO 2 -fixing 16-enzyme catalytic cycle (crotonyl-CoA/ethylmalonyl-CoA/hydroxybutyryl-CoA), while also exploiting the concurrent electron flow for adenosine triphosphate synthesis. We demonstrate how such artificial respiratory chains can be further diversified to accept multiple electron entries and coupled to other biological functionalities, such as cell-free transcription–translation networks. Altogether, our work highlights the opportunities and challenges of directly integrating energy conservation mechanisms when building toward self-sustaining/self-energizing artificial life-like systems.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (5)
Owen D. Jarman
Department of Biochemistry and Synthetic Metabolism, Max Planck Institute for Terrestrial Microbiology
Nitin Bohra
Department of Biochemistry and Synthetic Metabolism, Max Planck Institute for Terrestrial Microbiology
Peter Claus
Core Facility for Metabolomics and Small Molecule Mass Spectrometry, Max Planck Institute for Terrestrial Microbiology
Nicole Paczia
Core Facility for Metabolomics and Small Molecule Mass Spectrometry
Tobias J. Erb
Department of Biochemistry and Synthetic Metabolism, Max Planck Institute for Terrestrial Microbiology