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Hazemann, I.

Publications and source records attributed to Hazemann, I..

2 recordsLinked to original sources

Translation initiation by the Kozak mRNA sequence is based on a conformational readout on the ribosome

The recognition mechanism of Kozak mRNA, typically comprising purines in the - 3 and +4 positions flanking the AUG start codon, has remained enigmatic for decades. To address this fundamental function in eukaryotes during translation initiation, we analysed the cryo-EM structures of human 48S preinitiation complexes with mRNA point mutations. They reveal a fan-like intercalation of the pre-codon triplet into the 18S ribosomal RNA (rRNA), while the -3 purine as opposed to the pyrimidine in the non-Kozak context favours stabilization of the ternary complex between initiation factor eIF2 and initiator tRNA. Specificity towards the +4 purine is achieved beyond a single residue recognition by mutual conformational adaptations of eIF1A, mRNA and rRNA and involves the insertion of a reading head in which decoding residue A1825 (rRNA) stacks with the A-site codon to stabilize the fully accommodated state. Hence, instead of relying on base pairing as in bacteria, the specific recognition of the Kozak sequence on eukaryotic ribosomes is based on an induced-fit mechanism that triggers a conformational readout of the mRNA.

biochemistry↗

Structure of the human 80S ribosome at 1.9 A resolution - the molecular role of chemical modifications and ions in RNA

The ribosomal RNA of the human protein synthesis machinery comprises numerous chemical modifications that are introduced during ribosome biogenesis. We present the 1.9 [A] resolution cryo-EM structure of the 80S human ribosome resolving numerous new rRNA modifications and functionally important ions such as Zn2+, K+ and Mg2+ including their associated individual water molecules. 2-O-methylation, pseudo-uridine and base modifications were confirmed by mass spectrometry resulting in a complete investigation of the > 230 sites many of which could not be addressed previously. They choreograph key interactions within the RNA and at the interface with proteins, including at the ribosomal subunit interfaces of the fully assembled 80S ribosome. Uridine isomerisation turns out to be a key mechanism for U-A base pair stabilisation in RNA in general. The structural environment of chemical modifications & ions is primordial for the RNA architecture of the mature human ribosome, hence providing a structural framework to address their role in healthy context and human diseases.

biochemistry↗