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  Inter-subunit coupling enables fast CO2-fixation by reductive carboxylases

DeMirci, H., Rao, Y., Stoffel, G. M. M., Vögeli, B., Schell, K., Gomez, A., et al. (2022). Inter-subunit coupling enables fast CO2-fixation by reductive carboxylases. bioRxiv: the preprint server for biology, doi: 10.1101/607101.

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https://doi.org/10.1101/607101 (Preprint)
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 Creators:
DeMirci, Hasan1, Author
Rao, Yash1, Author
Stoffel, Gabriele M. M.2, Author           
Vögeli, Bastian2, Author           
Schell, Kristina2, Author
Gomez, Aharon1, Author
Batyuk, Alexander1, Author
Gati, Cornelius1, Author
Sierra, Raymond G.1, Author
Hunter, Mark S.1, Author
Dao, E. Han1, Author
Ciftci, Halil I.1, Author
Hayes, Brandon1, Author
Poitevin, Fredric1, Author
Li, Po-Nan1, Author
Kaur, Manat1, Author
Tono, Kensuke1, Author
Saez, David Adrian1, Author
Deutsch, Samuel1, Author
Yoshikuni, Yasuo1, Author
Grubmüller, Helmut1, AuthorErb, Tobias J.2, Author           Vöhringer-Martinez, Esteban1, AuthorWakatsuki, Soichi1, Author more..
Affiliations:
1external, ou_persistent22              
2Understanding and Building Metabolism, Department of Biochemistry and Synthetic Metabolism, Max Planck Institute for Terrestrial Microbiology, Max Planck Society, ou_3266303              

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 Abstract: Enoyl-CoA carboxylases/reductases (ECRs) belong to the most efficient CO2-fixing enzymes described to date. However, the molecular mechanisms underlying ECR’s extraordinary catalytic activity on the level of the protein assembly remain elusive. Here we used a combination of ambient temperature X-ray Free Electron Laser (XFEL) and cryogenic synchrotron experiments to study the structural organization of the ECR from Kitasatospora setae. K. setae ECR is a homo-tetramer that differentiates into a dimer of dimers of open- and closed-form subunits in the catalytically active state. Using molecular dynamics simulations and structure-based mutagenesis, we show that catalysis is synchronized in K. setae ECR across the pair of two dimers. This conformational coupling of catalytic domains is conferred by individual amino acids to achieve high CO2-fixation rates. Our results provide unprecedented insights into the dynamic organization and synchronized inter- and intra-subunit communications of this remarkably efficient CO2-fixing enzyme during catalysis.Significance Statement Fixation of CO2 offers real potential for reaching negative CO2 emissions in bioenergy, and bioproduct utilization. The capture and conversion of atmospheric CO2 remains a challenging task. Existing biological systems can be exploited and optimized for this use. Bacterial enoyl-CoA carboxylases/reductases (ECRs) encompass the fastest CO2-fixing enzymes found in nature to date. However, the mechanisms underlying ECR’s extraordinary catalytic activity remain elusive. Our structural, computational, and biochemical results elucidate the dynamic structural organization of the ECR complex and describe how coupled motions of catalytic domains in the ECR tetramer drive carboxylation. This mechanistic understanding is critical for engineering highly efficient CO2-fixing biocatalysts for bioenergy and bioproduct applications.Competing Interest StatementThe authors have declared no competing interest.

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Language(s): eng - English
 Dates: 2022-01
 Publication Status: Issued
 Pages: -
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 Table of Contents: -
 Rev. Type: No review
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Title: bioRxiv : the preprint server for biology
  Abbreviation : bioRxiv
Source Genre: Journal
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Pages: - Volume / Issue: - Sequence Number: doi: 10.1101/607101 Start / End Page: - Identifier: ZDB: 2766415-6
CoNE: https://pure.mpg.de/cone/journals/resource/2766415-6