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Published on: September 27, 2015
Mutational analysis of human eIF4AIII identifies regions necessary for exon junction complex formation and
Toshiharu Shibuya1, Thomas Ø Tange, M Elizabeth Stroupe
1Howard Hughes Medical Institute, Department of Biochemistry, MS009, Brandeis University, 415 South Street, Waltham, MA 02454, USA.
Abstract:
The exon junction complex (EJC) is deposited on mRNAs by the process of pre-mRNA splicing and is a key effector of downstream mRNA metabolism. We previously demonstrated that human eIF4AIII, which is essential for nonsense-mediated mRNA decay (NMD), constitutes at least part of the RNA-binding platform anchoring other EJC components to the spliced mRNA. To determine the regions of eIF4AIII that are functionally important for EJC formation, for binding to other EJC components, and for NMD, we now report results of an extensive mutational analysis of human eIF4AIII. Using GFP-, GST- or Flag-fusions of eIF4AIII versions containing site-specific mutations or truncations, we analyzed subcellular localizations, protein-protein interactions, and EJC formation in vivo and in vitro. We also tested whether mutant proteins could rescue NMD inhibition resulting from RNAi depletion of endogenous eIF4AIII. Motifs Ia and VI, which are conserved among the eIF4A family of RNA helicases (DEAD-box proteins), are crucial for EJC formation and NMD, as is one eIF4AIII-specific region. An additional eIF4AIII-specific motif forms part of the binding site for MLN51, another EJC core component. Mutations in the canonical Walker A and B motifs that eliminate RNA-dependent ATP hydrolysis by eIF4AIII in vitro are of no detectable consequence for EJC formation and NMD activation. Implications of these findings are discussed in the context of other recent results and a new structural model for human eIF4AIII based on the known crystal structure of Saccharomyces cerevisiae eIF4AI.
Insights
Specific regions of human eIF4AIII are crucial for exon junction complex (EJC) formation and nonsense-mediated mRNA decay (NMD). Mutations affecting ATP hydrolysis do not impact EJC assembly or NMD.
Area of Science:
- Molecular Biology
- RNA Metabolism
- Protein Biochemistry
Background:
- The exon junction complex (EJC) is deposited during mRNA splicing and regulates mRNA metabolism.
- Human eIF4AIII is essential for nonsense-mediated mRNA decay (NMD) and forms part of the EJC's RNA-binding platform.
Purpose of the Study:
- To identify functionally important regions of human eIF4AIII for EJC formation, component binding, and NMD.
- To investigate the role of conserved and specific motifs within eIF4AIII.
Main Methods:
- Extensive mutational analysis of human eIF4AIII using various fusion proteins.
- In vivo and in vitro assays for subcellular localization, protein-protein interactions, and EJC formation.
- Complementation assays to assess NMD rescue in eIF4AIII-depleted cells.
Main Results:
- Conserved motifs Ia and VI, along with an eIF4AIII-specific region, are critical for EJC formation and NMD.
- Another eIF4AIII-specific motif is involved in binding the EJC component MLN51.
- Mutations in Walker A and B motifs, abolishing ATP hydrolysis, did not affect EJC formation or NMD.
Conclusions:
- Specific regions of eIF4AIII, beyond its ATP hydrolysis activity, are essential for its roles in EJC assembly and NMD.
- These findings contribute to a new structural model for human eIF4AIII and its interactions within the EJC.
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