Assembly of eukaryotic large ribosomal subunits (LSU) requires coordinated structural and compositional transitions within pre-60S particles, yet the underlying mechanisms remain poorly understood. Here, we show that the DEAD-box helicase Drs1 promotes early maturation across distinct regions of the pre-60S particle. Loss of Drs1 function causes accumulation of co-transcriptional intermediates retaining SSU processome components, indicating that Drs1 promotes timely separation of nascent LSU precursors from the small-subunit assembly pathway. Cryo-EM analyses reveal both a redistribution toward early nucleolar maturation states upon loss of Drs1, including Nsa1-deficient intermediates, and a confinement of Drs1-associated particles to states preceding stable incorporation of 25S rRNA domain III. Drs1 directly engages Erb1 through its unstructured N-terminal extension, promoting stable assembly of the Nop7-Erb1-Ytm1 module associated with domain III maturation. CRAC analysis localizes Drs1 to spatially clustered sites spanning the 5.8S and 25S rRNAs, encompassing domains I–IV. Together, these findings support a model in which Drs1 couples stabilization of assembly-factors with pre-rRNA remodeling across the pre-60S particle, thereby driving ordered early LSU maturation and the timed integration of domain III.
M. Thoms, Sanem Ayaz-Kök, Kohei Abe et al.· bioRxiv· 0 citations
mRNAs can form stable structures that need to be resolved to facilitate translation. During translation initiation in mammals, the scanning 48S complex requires the helicase activity of DHX29 to unwind stable mRNA structures that cannot be resolved by eIF4A. Here, we show that the yeast DHX29 homolog, Ylr419w (Dhx29), has a similar function during translation on elongating 80S ribosomes. Cryo-EM analyses show that the Dhx29 helicase module is positioned at the mRNA entry channel to engage mRNA, while its double-stranded RNA-binding domain (dsRBD) senses hairpin-forming mRNA in the ribosomal A-site. By selective ribosome profiling, we observed that Dhx29 is associated with transcripts that form RNA structures, such as stable tetraloops. Dhx29 mutants with perturbed helicase activity enrich 80S with hairpins in the A-site, as well as ribosome collisions, while a mutant lacking the N-terminal dsRBD sensor domain loses the specificity for such ribosomes. We thus propose that Dhx29 functions in translation elongation by resolving structured mRNA formed in the ribosomal A-site through its 3’-5’ helicase activity and pulling on the mRNA from its 3’ end.
L. Chitoiu, T. Denk, Martin B. D. Müller et al.· bioRxiv· 0 citations
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