Eukarya translation termination requires the stop codon recognizing protein eRF1. In contrast to the multiple proteins required for translation termination in Bacteria, eRF1 retains the ability to recognize all three of the stop codons. The details of the mechanism that eRF1 uses to recognize stop codons has remained elusive. This study describes the structural effects of mutations in the eRF1 N-domain that have previously been shown to alter stop codon recognition specificity. Here, we propose a model of eRF1 binding to the pre-translation termination ribosomal complex that is based in part on our solution NMR structures of the wild-type and mutant eRF1 N-domains. Since structural perturbations induced by these mutations were spread throug...
AbstractWe propose that the amino acid residues 57/58 and 60/61 of eukaryotic release factors (eRF1s...
Class 1 release factor in eukaryotes (eRF1) recognizes stop codons and promotes peptide release from...
In contrast to bacteria that have two release factors, RF1 and RF2, eukaryotes only possess one unre...
Translation termination occurs when one of three stop-codons (UAA, UGA, or UAG) in mRNA reaches the ...
International audienceIn eukaryotes, translation termination is performed by eRF1, which recognizes ...
Translation termination is critical. Many diseases are caused by nonsense mutation. Hence, understan...
In eukaryotes, translation termination is performed by eRF1, which recognizes stop codons via its N-...
Translation termination in eukaryotes typically requires the decoding of one of three stop codons UA...
SummaryTermination and ribosome recycling are essential processes in translation. In eukaryotes, a s...
In translation termination, the eukaryotic release factor (eRF1) recognizes mRNA stop codons (UAA, U...
Organisms that use the standard genetic code rec-ognize UAA, UAG, andUGA as stop codons, whereas var...
The termination of translation in Saccharomyces cerevisiae is controlled by two interacting polypept...
In contrast to bacteria that have two release factors, RF1 and RF2, eukaryotes only possess one unre...
Termination and ribosome recycling are essential processes in translation. In eukaryotes, a stop cod...
My thesis includes three subprojects related to NMR-based studies of three protein classes involved ...
AbstractWe propose that the amino acid residues 57/58 and 60/61 of eukaryotic release factors (eRF1s...
Class 1 release factor in eukaryotes (eRF1) recognizes stop codons and promotes peptide release from...
In contrast to bacteria that have two release factors, RF1 and RF2, eukaryotes only possess one unre...
Translation termination occurs when one of three stop-codons (UAA, UGA, or UAG) in mRNA reaches the ...
International audienceIn eukaryotes, translation termination is performed by eRF1, which recognizes ...
Translation termination is critical. Many diseases are caused by nonsense mutation. Hence, understan...
In eukaryotes, translation termination is performed by eRF1, which recognizes stop codons via its N-...
Translation termination in eukaryotes typically requires the decoding of one of three stop codons UA...
SummaryTermination and ribosome recycling are essential processes in translation. In eukaryotes, a s...
In translation termination, the eukaryotic release factor (eRF1) recognizes mRNA stop codons (UAA, U...
Organisms that use the standard genetic code rec-ognize UAA, UAG, andUGA as stop codons, whereas var...
The termination of translation in Saccharomyces cerevisiae is controlled by two interacting polypept...
In contrast to bacteria that have two release factors, RF1 and RF2, eukaryotes only possess one unre...
Termination and ribosome recycling are essential processes in translation. In eukaryotes, a stop cod...
My thesis includes three subprojects related to NMR-based studies of three protein classes involved ...
AbstractWe propose that the amino acid residues 57/58 and 60/61 of eukaryotic release factors (eRF1s...
Class 1 release factor in eukaryotes (eRF1) recognizes stop codons and promotes peptide release from...
In contrast to bacteria that have two release factors, RF1 and RF2, eukaryotes only possess one unre...