Structural Dynamics of the YidC:Ribosome Complex during Membrane Protein Biogenesis
Author(s) -
Alexej Kedrov,
Stephan Wickles,
Álvaro H. Crevenna,
Eli O. van der Sluis,
Robert Buschauer,
Otto Berninghausen,
Don C. Lamb,
Roland Beckmann
Publication year - 2016
Publication title -
cell reports
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.264
H-Index - 154
eISSN - 2639-1856
pISSN - 2211-1247
DOI - 10.1016/j.celrep.2016.11.059
Subject(s) - transmembrane domain , biogenesis , transmembrane protein , ribosome , membrane protein , translation (biology) , membrane , biophysics , chemistry , microbiology and biotechnology , biology , biochemistry , rna , receptor , messenger rna , gene
Members of the YidC/Oxa1/Alb3 family universally facilitate membrane protein biogenesis, via mechanisms that have thus far remained unclear. Here, we investigated two crucial functional aspects: the interaction of YidC with ribosome:nascent chain complexes (RNCs) and the structural dynamics of RNC-bound YidC in nanodiscs. We observed that a fully exposed nascent transmembrane domain (TMD) is required for high-affinity YidC:RNC interactions, while weaker binding may already occur at earlier stages of translation. YidC efficiently catalyzed the membrane insertion of nascent TMDs in both fluid and gel phase membranes. Cryo-electron microscopy and fluorescence analysis revealed a conformational change in YidC upon nascent chain insertion: the essential TMDs 2 and 3 of YidC were tilted, while the amphipathic helix EH1 relocated into the hydrophobic core of the membrane. We suggest that EH1 serves as a mechanical lever, facilitating a coordinated movement of YidC TMDs to trigger the release of nascent chains into the membrane.
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