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bioRxiv · 10.1101/2022.08.13.503842

Atomistic simulations of the E. coli ribosome provide selection criteria for translationally active substrates

Abstract

As genetic code expansion advances beyond L--amino acids to backbone modifications and new polymerization chemistries, the field faces an increasingly broad challenge to discover what the ribosome can accommodate. Although the E. coli ribosome tolerates non-L--amino acids in vitro, few structural insights are available, and the boundary conditions for efficient bond formation are unknown. We describe a 2.1 [A] cryo-EM structure of the E. coli ribosome containing well-resolved -amino acid monomers coupled with a computational approach for which energy surface minima produced by metadynamics trend in agreement with established incorporation efficiencies. Reactive monomers across diverse structural classes favor a conformational space characterized by an A-site nucleophile to P-site carbonyl distance of < 4 [A] and a Burgi-Dunitz angle of 90-110{degrees}. Monomers whose free energy minima fall outside these regions do not react. Application of this model should accelerate the in vivo and in vitro ribosomal synthesis and application of sequence-defined, non-peptide heterooligomers.

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BibTeXRIS

Watson, Z., Knudson, I., Ward, F. R., Miller, S. J., Cate, J. H., Schepartz, A., Abramyan, A. M.. 2022-08-13. Atomistic simulations of the E. coli ribosome provide selection criteria for translationally active substrates. https://doi.org/10.1101/2022.08.13.503842

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