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Miscicka, A.

Publications and source records attributed to Miscicka, A..

2 recordsLinked to original sources

Structural mechanism of mRNA decoding by mammalian GTPase GTPBP1

GTP-binding protein 1 (GTPBP1) is a widespread translational GTPase closely related to elongation factor eEF1A. The loss of GTPBP1 leads to errors in neuronal development in animals and is associated with neurodegenerative disorders in humans. Although linked to translation and quality control mechanisms, GTPBP1 functions remain largely obscure. Similarly to eEF1A, GTPBP1 delivers cognate aminoacyl-tRNA to the ribosomal A site in a GTP-dependent manner, but GTP hydrolysis is not followed by rapid peptide bond formation, and GTPBP1-mediated elongation is slow. To establish the basis for GTPBP1 function, we determined cryo-EM structures of 80S ribosomal complexes bound to GTPBP1*aa-tRNA with GTP or the non-hydrolysable analog GDPCP. They revealed that the unique GTPBP1 architecture, including the additional eIF1/IF3-like N-terminal domain and the shoulder-interacting H-loop in place of the 2 helix of canonical GTPases, is responsible for establishing GTPBP1-specific interactions with tRNA and the ribosome, leading to slow GTPBP1 dissociation after GTP hydrolysis and thus delayed tRNA accommodation. Slow dissociation correlates with an extended proofreading stage resulting in higher accuracy of GTPBP1-mediated decoding and potentially allows GTPBP1 to elicit its putative quality control functions. GTPBP1 visualization provides the foundation for mapping and elucidating GTPBP1 mutations associated with human diseases.

biochemistry↗

In vitro reconstitution of SARS CoV-2 Nsp1-induced mRNA cleavage reveals the key roles of the N-terminal domain of Nsp1 and the RRM domain of eIF3g

SARS CoV-2 nonstructural protein 1 (Nsp1) is the major pathogenesis factor that inhibits host translation using a dual strategy of impairing initiation and inducing endonucleolytic cleavage of cellular mRNAs. To investigate the mechanism of cleavage, we reconstituted it in vitro on {beta}-globin, EMCV IRES and CrPV IRES mRNAs that use unrelated initiation mechanisms. In all instances, cleavage required Nsp1 and only canonical translational components (40S subunits and initiation factors), arguing against involvement of a putative cellular RNA endonuclease. Requirements for initiation factors differed for these mRNAs, reflecting their requirements for ribosomal attachment. Cleavage of CrPV IRES mRNA was supported by a minimal set of components consisting of 40S subunits and eIF3gs RRM domain. The cleavage site was located in the coding region 18 nucleotides downstream from the mRNA entrance indicating that cleavage occurs on the solvent side of the 40S subunit. Mutational analysis identified a positively charged surface on Nsp1s N-terminal domain (NTD) and a surface above the mRNA-binding channel on eIF3gs RRM domain that contain residues essential for cleavage. These residues were required for cleavage on all three mRNAs, highlighting general roles of Nsp1-NTD and eIF3gs RRM domain in cleavage per se, irrespective of the mode of ribosomal attachment.

molecular biology↗