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.

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.