Diverse mechanisms of translation arrest by a Clostridia ribosome stalling peptide CliM
Abstract
Abstract Ribosome arrest peptides undergo programmed translational stalling in response to changes in the cellular environment to feedback-regulate gene expression. CliM, an arrest peptide in Clostridia, is encoded upstream of the YidC membrane protein insertase gene, but its function and mechanism remain unclear. Here we show that CliM monitors YidC activity to maintain adequate cellular YidC capacity. Interestingly, Clostridium kluyveri CliM induces elongation arrest at multiple sense codons, whereas Clostridioides difficile CliM causes termination arrest. Cryo-EM-based structural and mutational analyses demonstrate that C. difficile CliM adopts multiple α-helices within the nascent polypeptide exit tunnel, where it forms extensive arrest-essential interactions with the ribosome. The residue immediately N-terminal to the stalling site contributes to arrest by sterically interfering with full accommodation of the release factor or aminoacyl-tRNA in the A-site. Molecular dynamics simulations suggest that membrane insertion of CliM induces sequential unwinding of these α-helical structures and relocation of the penultimate residue, thereby triggering arrest release. These findings provide a unified mechanistic framework that explains the distinct arrest behaviors of CliM homologs.
Article Details
Authors (12)
Mayu Yoshida
Felix Gersteuer
Ole Berendes
Keigo Fujiwara
Haaris A. Safdari
Helge Paternoga
Department of Chemistry, Institute for Biochemistry and Molecular Biology, University of Hamburg
Hiraku Takada
Nozomu Obana
Helmut Grubmüller
Department of Theoretical and Computational Biophysics, Max Planck Institute for Multidisciplinary Sciences
Lars V. Bock
Daniel N. Wilson
SHINOBU CHIBA