Functional Dynamics within the Human Ribosome Regulate the Rate of Active Protein Synthesis

  • Mol Cell. 2015 Nov 5;60(3):475-86. doi: 10.1016/j.molcel.2015.09.013.
Angelica Ferguson  1 Leyi Wang  2 Roger B Altman  2 Daniel S Terry  2 Manuel F Juette  2 Benjamin J Burnett  2 Jose L Alejo  2 Randall A Dass  2 Matthew M Parks  2 C Theresa Vincent  3 Scott C Blanchard  4
Affiliations
  • 1. Department of Physiology and Biophysics, Weill Cornell Medical College, New York, NY 10065, USA; Tri-Institutional Training Program in Chemical Biology, Weill Cornell Medical College, Rockefeller University, Memorial Sloan-Kettering Cancer Center, New York, NY 10065, USA.
  • 2. Department of Physiology and Biophysics, Weill Cornell Medical College, New York, NY 10065, USA.
  • 3. Department of Physiology and Biophysics, Weill Cornell Medical College, New York, NY 10065, USA; Department of Pharmacology and Physiology, Karolinska Institute, 171 77 Stockholm, Sweden.
  • 4. Department of Physiology and Biophysics, Weill Cornell Medical College, New York, NY 10065, USA; Tri-Institutional Training Program in Chemical Biology, Weill Cornell Medical College, Rockefeller University, Memorial Sloan-Kettering Cancer Center, New York, NY 10065, USA. Electronic address: [email protected].
Abstract

The regulation of protein synthesis contributes to gene expression in both normal physiology and disease, yet kinetic investigations of the human translation mechanism are currently lacking. Using single-molecule fluorescence imaging methods, we have quantified the nature and timing of structural processes in human ribosomes during single-turnover and processive translation reactions. These measurements reveal that functional complexes exhibit dynamic behaviors and thermodynamic stabilities distinct from those observed for Bacterial systems. Structurally defined sub-states of pre- and post-translocation complexes were sensitive to specific inhibitors of the eukaryotic ribosome, demonstrating the utility of this platform to probe drug mechanism. The application of three-color single-molecule fluorescence resonance energy transfer (smFRET) methods further revealed a long-distance allosteric coupling between distal tRNA binding sites within ribosomes bearing three tRNAs, which contributed to the rate of processive translation.