Structure of ratcheted ribosomes with tRNAs in hybrid states
- 4 November 2008
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 105 (44) , 16924-16927
- https://doi.org/10.1073/pnas.0809587105
Abstract
During protein synthesis, tRNAs and mRNA move through the ribosome between aminoacyl (A), peptidyl (P), and exit (E) sites of the ribosome in a process called translocation. Translocation is accompanied by the displacement of the tRNAs on the large ribosomal subunit toward the hybrid A/P and P/E states and by a rotational movement (ratchet) of the ribosomal subunits relative to one another. So far, the structure of the ratcheted state has been observed only when translation factors were bound to the ribosome. Using cryo-electron microscopy and classification, we show here that ribosomes can spontaneously adopt a ratcheted conformation with tRNAs in their hybrid states. The peptidyl-tRNA molecule in the A/P state, which is visualized here, is not distorted compared with the A/A state except for slight adjustments of its acceptor end, suggesting that the displacement of the A-site tRNA on the 50S subunit is passive and is induced by the 30S subunit rotation. Simultaneous subunit ratchet and formation of the tRNA hybrid states precede and may promote the subsequent rapid and coordinated tRNA translocation on the 30S subunit catalyzed by elongation factor G.Keywords
This publication has 33 references indexed in Scilit:
- Spontaneous Intersubunit Rotation in Single RibosomesMolecular Cell, 2008
- Image processing for electron microscopy single-particle analysis using XMIPPNature Protocols, 2008
- Fluctuations of Transfer RNAs between Classical and Hybrid StatesBiophysical Journal, 2007
- Intersubunit movement is required for ribosomal translocationProceedings of the National Academy of Sciences, 2007
- Identification of Two Distinct Hybrid State Intermediates on the RibosomeMolecular Cell, 2007
- Disentangling conformational states of macromolecules in 3D-EM through likelihood optimizationNature Methods, 2006
- Aminoacylation complex structures of leucyl-tRNA synthetase and tRNALeu reveal two modes of discriminator-base recognitionNature Structural & Molecular Biology, 2005
- UCSF Chimera—A visualization system for exploratory research and analysisJournal of Computational Chemistry, 2004
- Hydrolysis of GTP by elongation factor G drives tRNA movement on the ribosomeNature, 1997
- SPIDER and WEB: Processing and Visualization of Images in 3D Electron Microscopy and Related FieldsJournal of Structural Biology, 1996