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学術論文

Coupled inter-subunit dynamics enable the fastest CO2-fixation by reductive carboxylases

MPS-Authors
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Stoffel,  Gabriele M. M.
Understanding and Building Metabolism, Department of Biochemistry and Synthetic Metabolism, Max Planck Institute for Terrestrial Microbiology, Max Planck Society;

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Vögeli,  Bastian
Understanding and Building Metabolism, Department of Biochemistry and Synthetic Metabolism, Max Planck Institute for Terrestrial Microbiology, Max Planck Society;

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Schell,  Kristina
Understanding and Building Metabolism, Department of Biochemistry and Synthetic Metabolism, Max Planck Institute for Terrestrial Microbiology, Max Planck Society;

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Erb,  Tobias J.
Understanding and Building Metabolism, Department of Biochemistry and Synthetic Metabolism, Max Planck Institute for Terrestrial Microbiology, Max Planck Society;

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引用

DeMirci, H., Rao, Y., Stoffel, G. M. M., Vögeli, B., Schell, K., Batyuk, A., Gati, C., Sierra, R. G., Hunter, M. S., Doa, H. E., Ciftci, H. I., Hayes, B., Poitevin, F., Tono, K., Saez, D. A., Vöhringer-Martinez, E., Deutsch, S., Yoshikuni, Y., & Erb, T. J. (2019). Coupled inter-subunit dynamics enable the fastest CO2-fixation by reductive carboxylases. bioRxiv preprint Server. doi:10.1101/607101.


要旨
Enoyl-CoA carboxylases/reductases (ECRs) are the most efficient CO2-fixing enzymes described to date, outcompeting RubisCO, the key enzyme in photosynthesis in catalytic activity by more than an order of magnitude. However, the molecular mechanisms underlying ECR’s extraordinary catalytic activity remain elusive. Here we used different crystallographic approaches, including ambient temperature X-ray Free Electron Laser (XFEL) experiments, to study the dynamic structural organization of the ECR from Kitasatospora setae. K. setae ECR is a homotetramer that differentiates into a dimer of dimers of open- and closed-form subunits in the catalytically active state, suggesting that the enzyme operates with “half-site reactivity” to achieve high catalytic rates. Using structure-based mutagenesis, we show that catalysis is synchronized in K. setae ECR across the pair of dimers by conformational coupling of catalytic domains and within individual dimers by shared substrate binding sites. Our results provide unprecedented insights into the dynamic organization and synchronized inter- and intra-subunit communications of nature’s most efficient CO2-fixing enzyme during catalysis.