Key result
Single-molecule FRET revealed a single-step, irreversible recruitment of 40S subunits to the HCV IRES, followed by slow conformational rearrangements that are suppressed by translation extracts.
This basic science study demonstrates that 40S:HCV IRES complex formation involves dynamic conformational rearrangements that are funneled into a single conformation by translation extracts.
Does not alter HCV management; leaves open whether IRES dynamics can be targeted for antivirals.
Translation initiation can occur by multiple pathways. To delineate these pathways by single-molecule methods, fluorescently labeled ribosomal subunits are required. Here, we labeled human 40S ribosomal subunits with a fluorescent SNAP-tag at ribosomal protein eS25 (RPS25). The resulting ribosomal subunits could be specifically labeled in living cells and in vitro. Using single-molecule Förster resonance energy transfer (FRET) between RPS25 and domain II of the hepatitis C virus (HCV) internal ribosome entry site (IRES), we measured the rates of 40S subunit arrival to the HCV IRES. Our data support a single-step model of HCV IRES recruitment to 40S subunits, irreversible on the initiation time scale. We furthermore demonstrated that after binding, the 40S:HCV IRES complex is conformationally dynamic, undergoing slow large-scale rearrangements. Addition of translation extracts suppresses these fluctuations, funneling the complex into a single conformation on the 80S assembly pathway. These findings show that 40S:HCV IRES complex formation is accompanied by dynamic conformational rearrangements that may be modulated by initiation factors.
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Fuchs et al. (2014) studied this question. Fluorescent SNAP-tag labeling of human 40S ribosomal subunits was evaluated on Rates of 40S subunit arrival to the HCV IRES and conformational dynamics. Single-molecule FRET revealed a single-step, irreversible recruitment of 40S subunits to the HCV IRES, followed by slow conformational rearrangements that are suppressed by translation extracts.
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