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Updated: May 6, 2026

Monitoring eIF4F Assembly by Measuring eIF4E-eIF4G Interaction in Live Cells
Published on: May 1, 2020
Crystal structure of the human eIF4AIII-CWC22 complex shows how a DEAD-box protein is inhibited by a MIF4G domain
Gretel Buchwald1, Steffen Schüssler, Claire Basquin
1Department of Structural Cell Biology, Max Planck Institute of Biochemistry, D-82152 Martinsried/Munich, Germany.
Abstract:
DEAD-box proteins are involved in all aspects of RNA processing. They bind RNA in an ATP-dependent manner and couple ATP hydrolysis to structural and compositional rearrangements of ribonucleoprotein particles. Conformational control is a major point of regulation for DEAD-box proteins to act on appropriate substrates and in a timely manner in vivo. Binding partners containing a middle domain of translation initiation factor 4G (MIF4G) are emerging as important regulators. Well-known examples are eIF4G and Gle1, which bind and activate the DEAD-box proteins eIF4A and Dbp5. Here, we report the mechanism of an inhibiting MIF4G domain. We determined the 2.0-Å resolution structure of the complex of human eIF4AIII and the MIF4G domain of the splicing factor Complexed With Cef1 (CWC22), an essential prerequisite for exon junction complex assembly by the splicing machinery. The CWC22 MIF4G domain binds both RecA domains of eIF4AIII. The mode of RecA2 recognition is similar to that observed in the activating complexes, yet is specific for eIF4AIII. The way the CWC22 MIF4G domain latches on the eIF4AIII RecA1 domain is markedly different from activating complexes. In the CWC22-eIF4AIII complex, the RNA-binding and ATP-binding motifs of the two RecA domains do not face each other, as would be required in the active state, but are in diametrically opposite positions. The binding mode of CWC22 to eIF4AIII reveals a facet of how MIF4G domains use their versatile structural frameworks to activate or inhibit DEAD-box proteins.
Insights
The study reveals how the CWC22 protein
Area of Science:
- Molecular Biology
- Structural Biology
- RNA Processing
Background:
- DEAD-box proteins regulate RNA processing via ATP-dependent mechanisms.
- MIF4G domains of proteins like eIF4G and Gle1 are known regulators of DEAD-box proteins.
- Understanding regulatory mechanisms is crucial for RNA processing control.
Purpose of the Study:
- To elucidate the inhibitory mechanism of the CWC22 MIF4G domain on the DEAD-box protein eIF4AIII.
- To determine the structural basis of CWC22-eIF4AIII interaction.
- To understand how MIF4G domains can inhibit DEAD-box protein activity.
Main Methods:
- X-ray crystallography to determine the 2.0-Å resolution structure of the human eIF4AIII-CWC22 MIF4G complex.
- Structural analysis of protein-protein interactions and domain binding modes.
Main Results:
- The CWC22 MIF4G domain binds both RecA domains of eIF4AIII.
- RecA2 recognition is specific for eIF4AIII, while RecA1 binding differs from activating complexes.
- The RNA-binding and ATP-binding motifs are positioned oppositely, preventing an active conformation.
Conclusions:
- The CWC22-eIF4AIII complex structure reveals an inhibitory binding mode.
- This highlights the versatility of MIF4G domains in regulating DEAD-box proteins.
- Provides insights into the conformational control of RNA processing machinery.
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