Didemnin B and ternatin-4 differentially inhibit conformational changes in eEF1A required for aminoacyl-tRNA accommodation into mammalian ribosomes

  • Elife. 2022 Oct 20:11:e81608. doi: 10.7554/eLife.81608.
Manuel F Juette  #  1 Jordan D Carelli  #  2 Emily J Rundlet  #  1  3  4 Alan Brown  5 Sichen Shao  5 Angelica Ferguson  1 Michael R Wasserman  1 Mikael Holm  1  3 Jack Taunton  2 Scott C Blanchard  1  3
Affiliations
  • 1. Department of Physiology and Biophysics, Weill Cornell Medicine, New York, United States.
  • 2. Chemistry and Chemical Biology Graduate Program, University of California, San Francisco, San Francisco, United States.
  • 3. Department of Structural Biology, St. Jude Children's Research Hospital, Memphis, United States.
  • 4. Tri-Institutional PhD Program in Chemical Biology, Weill Cornell Medicine, New York, United States.
  • 5. MRC-LMB, Francis Crick Avenue, Cambridge, United Kingdom.
  • # Contributed equally.
Abstract

Rapid and accurate mRNA translation requires efficient codon-dependent delivery of the correct aminoacyl-tRNA (aa-tRNA) to the ribosomal A site. In mammals, this fidelity-determining reaction is facilitated by the GTPase elongation factor-1 Alpha (eEF1A), which escorts aa-tRNA as an eEF1A(GTP)-aa-tRNA ternary complex into the ribosome. The structurally unrelated cyclic Peptides didemnin B and ternatin-4 bind to the eEF1A(GTP)-aa-tRNA ternary complex and inhibit translation but have different effects on protein synthesis in vitro and in vivo. Here, we employ single-molecule fluorescence imaging and cryogenic electron microscopy to determine how these natural products inhibit translational elongation on mammalian ribosomes. By binding to a common site on eEF1A, didemnin B and ternatin-4 trap eEF1A in an intermediate state of aa-tRNA selection, preventing eEF1A release and aa-tRNA accommodation on the ribosome. We also show that didemnin B and ternatin-4 exhibit distinct effects on the dynamics of aa-tRNA selection that inform on observed disparities in their inhibition efficacies and physiological impacts. These integrated findings underscore the value of dynamics measurements in assessing the mechanism of small-molecule inhibition and highlight potential of single-molecule methods to reveal how distinct natural products differentially impact the human translation mechanism.

Keywords
Didemnin; Ternatin; biochemistry; chemical biology; eEF1A; human; o. cuniculus; ribosome; smFRET.