TOB Proteins Repress Translation via the CCR4-NOT Deadenylase Complex Independent of Deadenylation

Kanae Miyazaki1, Takumi Tomohiro1, Yoshinori Funakami1

  • 1Kindai University, Higashi-Osaka, Japan.

Insights

Transducer of ErbB2 (TOB) proteins repress translation initiation independently of mRNA decay. This repression relies on eIF4A activity and the CCR4-NOT complex, revealing a new role for TOB proteins.

Area of Science:

  • Molecular Biology
  • Gene Regulation
  • Protein Function

Background:

  • Transducer of ErbB2 (TOB) proteins are known regulators of mRNA decay via deadenylation.
  • The role of TOB proteins in translational control has not been previously investigated.

Purpose of the Study:

  • To investigate the function of TOB1 and TOB2 in translational control.
  • To determine if TOB proteins regulate translation initiation or elongation.
  • To elucidate the mechanism underlying TOB-mediated translational regulation.

Main Methods:

  • In vitro translation system
  • RNA tethering assay
  • Knockdown of CNOT1
  • Disruption of TOB-PABP interaction

Main Results:

  • TOB1 and TOB2 were found to repress translation initiation independently of deadenylation.
  • This repression is specific to eIF4A-dependent translation, sparing IRES-driven translation.
  • CNOT1 knockdown significantly relieved repression, indicating the CCR4-NOT complex's essential role.
  • The TOB-PABP interaction was dispensable for full translational repression.

Conclusions:

  • TOB proteins function as direct repressors of translation initiation.
  • This function is independent of mRNA decay and relies on eIF4A activity.
  • The CCR4-NOT complex is crucial for TOB-mediated translational repression.

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