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eIF1 Controls Multiple Steps in Start Codon Recognition during Eukaryotic Translation Initiation
Authors:Jagpreet S. Nanda  Yuen-Nei Cheung  Julie E. Takacs  Adesh K. Saini  Jon R. Lorsch
Affiliation:1 Department of Biophysics and Biophysical Chemistry, Johns Hopkins University School of Medicine, Baltimore, MD 21205, USA
2 Laboratory of Gene Regulation and Development, National Institute of Child Health and Human Development, National Institutes of Health, Bethesda, MD 20892, USA
Abstract:Eukaryotic translation initiation factor (eIF) 1 is a central mediator of start codon recognition. Dissociation of eIF1 from the preinitiation complex (PIC) allows release of phosphate from the G-protein factor eIF2, triggering downstream events in initiation. Mutations that weaken binding of eIF1 to the PIC decrease the fidelity of start codon recognition (Sui phenotype) by allowing increased eIF1 release at non-AUG codons. Consistent with this, overexpression of these mutant proteins suppresses their Sui phenotypes. Here, we have examined mutations at the penultimate residue of eIF1, G107, that produce Sui phenotypes without increasing the rate of eIF1 release. We provide evidence that, in addition to its role in gating phosphate release, dissociation of eIF1 triggers conversion from an open, scanning-competent state of the PIC to a stable, closed one. We also show that eIF5 antagonizes binding of eIF1 to the complex and that key interactions of eIF1 with its partners are modulated by the charge at and around G107. Our data indicate that eIF1 plays multiple roles in start codon recognition and suggest that prior to AUG recognition it prevents eIF5 from binding to a key site in the PIC required for triggering downstream events.
Keywords:eIF, eukaryotic translation initiation factor   PIC, preinitiation complex   TC, ternary complex   GTP, guanosine triphosphate   GTPase, guanosine triphosphatase   GDP, guanosine diphosphate   Gcd, general control derepressed   Sui, suppressor of initiation   WT, wild type   ORF, open reading frame   3-AT, 3-aminotriazole   MFC, multifactor complex   FRET, fluorescence resonance energy transfer   WCE, whole-cell extract   TCA, trichloroacetic acid
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