Literature DB >> 31858614

Molecular mechanism of translational stalling by inhibitory codon combinations and poly(A) tracts.

Petr Tesina1, Laura N Lessen2,3, Robert Buschauer1, Jingdong Cheng1, Colin Chih-Chien Wu3,4, Otto Berninghausen1, Allen R Buskirk3, Thomas Becker1, Roland Beckmann1, Rachel Green3,4.   

Abstract

Inhibitory codon pairs and poly(A) tracts within the translated mRNA cause ribosome stalling and reduce protein output. The molecular mechanisms that drive these stalling events, however, are still unknown. Here, we use a combination of in vitro biochemistry, ribosome profiling, and cryo-EM to define molecular mechanisms that lead to these ribosome stalls. First, we use an in vitro reconstituted yeast translation system to demonstrate that inhibitory codon pairs slow elongation rates which are partially rescued by increased tRNA concentration or by an artificial tRNA not dependent on wobble base-pairing. Ribosome profiling data extend these observations by revealing that paused ribosomes with empty A sites are enriched on these sequences. Cryo-EM structures of stalled ribosomes provide a structural explanation for the observed effects by showing decoding-incompatible conformations of mRNA in the A sites of all studied stall- and collision-inducing sequences. Interestingly, in the case of poly(A) tracts, the inhibitory conformation of the mRNA in the A site involves a nucleotide stacking array. Together, these data demonstrate a novel mRNA-induced mechanisms of translational stalling in eukaryotic ribosomes.
© 2019 The Authors.

Entities:  

Keywords:  disome; frameshift; ribosome collision; stalling; translation

Mesh:

Substances:

Year:  2019        PMID: 31858614      PMCID: PMC6996574          DOI: 10.15252/embj.2019103365

Source DB:  PubMed          Journal:  EMBO J        ISSN: 0261-4189            Impact factor:   11.598


  64 in total

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9.  Adjacent Codons Act in Concert to Modulate Translation Efficiency in Yeast.

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  42 in total

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Review 3.  The effects of codon bias and optimality on mRNA and protein regulation.

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8.  Plasmodium falciparum translational machinery condones polyadenosine repeats.

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Review 9.  Ribosome states signal RNA quality control.

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