Energy barriers and driving forces in tRNA translocation through the ribosome

2013 | journal article; research paper. A publication with affiliation to the University of Göttingen.

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​Energy barriers and driving forces in tRNA translocation through the ribosome​
Bock, L. V. ; Blau, C. ; Schroeder, G. F.; Davydov, I. I.; Fischer, N. ; Stark, H.   & Rodnina, M. V.  et al.​ (2013) 
Nature Structural & Molecular Biology20(12) pp. 1390​-1396​.​ DOI: https://doi.org/10.1038/nsmb.2690 

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Authors
Bock, Lars V. ; Blau, Christian ; Schroeder, Gunnar F.; Davydov, Iakov I.; Fischer, Niels ; Stark, Holger ; Rodnina, Marina V. ; Vaiana, Andrea C. ; Grubmüller, Helmut 
Abstract
During protein synthesis, tRNAs move from the ribosome's aminoacyl to peptidyl to exit sites. Here we investigate conformational motions during spontaneous translocation, using molecular dynamics simulations of 13 intermediate-translocation-state models obtained by combining Escherichia coli ribosome crystal structures with cryo-EM data. Resolving fast transitions between states, we find that tRNA motions govern the transition rates within the pre- and post-translocation states. Intersubunit rotations and L1-stalk motion exhibit fast intrinsic submicrosecond dynamics. The L1 stalk drives the tRNA from the peptidyl site and links intersubunit rotation to translocation. Displacement of tRNAs is controlled by 'sliding' and 'stepping' mechanisms involving conserved L16, L5 and L1 residues, thus ensuring binding to the ribosome despite large-scale tRNA movement. Our results complement structural data with a time axis, intrinsic transition rates and molecular forces, revealing correlated functional motions inaccessible by other means.
Issue Date
2013
Journal
Nature Structural & Molecular Biology 
ISSN
1545-9993
eISSN
1545-9985
Language
English

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