Splicing remodels messenger ribonucleoprotein architecture via elF4A3-dependent and -independent recruitment of exon junction complex components

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Abstract

Pre-mRNA splicing not only removes introns and joins exons to generate spliced mRNA but also results in remodeling of the spliced messenger ribonucleoprotein, influencing various downstream events. This remodeling includes the loading of an exon-exon junction complex (EJC). It is unclear how the spliceosome recruits the EJC onto the mRNA and whether EJC formation or EJC components are required for pre-mRNA splicing. Here we immunodepleted the EJC core component elF4A3 from HeLa cell nuclear extract and found that elF4A3 is dispensable for pre-mRNA splicing in vitro. However, elF4A3 is required for the splicing-dependent loading of the Y14/Magoh heterodimer onto mRNA, and this activity of human elF4A3 is also present in the Drosophila ortholog. Surprisingly, the loading of six other EJC components was not affected by elF4A3 depletion, suggesting that their binding to mRNA involves different or redundant pathways. Finally, we found that the assembly of the EJC onto mRNA occurs at the late stages of the splicing reaction and requires the second-step splicing and mRNA-release factor HRH1/hPrp22. The EJC-dependent and -independent recruitment of RNA-binding proteins onto mRNA suggests a role for the EJC in messenger ribonucleoprotein remodeling involving interactions with other proteins already bound to the pre-mRNA, which has implications for nonsense-mediated mRNA decay and other mRNA transactions. © 2007 by The National Academy of Sciences of the USA.

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Zhang, Z., & Krainer, A. R. (2007). Splicing remodels messenger ribonucleoprotein architecture via elF4A3-dependent and -independent recruitment of exon junction complex components. Proceedings of the National Academy of Sciences of the United States of America, 104(28), 11574–11579. https://doi.org/10.1073/pnas.0704946104

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