Hypusinated eIF5A Promotes Ribosomal Frameshifting during Decoding of ODC Antizyme mRNA in Saccharomyces cerevisiae

Kai Halwas1, Lennard-Maximilian Döring1, Franziska Valentina Oehlert1

  • 1Center of Molecular Biosciences, Institute for Genetics, Department of Biology, Faculty of Natural Sciences and Mathematics, University of Cologne, 50674 Cologne, Germany.

Insights

Polyamines regulate the translation of ornithine decarboxylase antizyme (OAZ) mRNA through a ribosomal frameshift. Hypusinated translation factor eIF5A is crucial for this process, impacting polyamine synthesis.

Area of Science:

  • Molecular Biology
  • Cellular Biology
  • Biochemistry

Background:

  • Polyamines are vital poly-cations involved in cellular processes and diseases like cancer.
  • Ornithine decarboxylase (ODC) catalyzes a rate-limiting step in polyamine biosynthesis.
  • ODC antizyme (OAZ) regulates ODC degradation via a ubiquitin-independent mechanism.

Purpose of the Study:

  • To investigate the role of translation factor eIF5A in polyamine-regulated ribosomal frameshifting (RFS) of OAZ1 mRNA.
  • To elucidate the mechanism by which polyamine depletion affects OAZ1 mRNA translation and RFS.

Main Methods:

  • Utilized Saccharomyces cerevisiae conditional mutants deficient in eIF5A/Hyp2 or its hypusination.
  • Analyzed OAZ1 mRNA translation efficiency and RFS using constructs with the OAZ1 shift site.
  • Employed DFMO to induce polyamine depletion and assess its effects on RFS.

Main Results:

  • Hypusinated eIF5A is essential for efficient translation across the OAZ1 RFS site.
  • Polyamine depletion inhibits RFS, partly by reducing eIF5A hypusination.
  • Polyamine depletion also directly affects RFS independently of hypusination, even prior to hypusination impairment.

Conclusions:

  • Identified hypusinated eIF5A as a key regulator of OAZ1 mRNA translation and RFS.
  • Established a novel link between eIF5A function, polyamine homeostasis, and OAZ regulation.
  • Demonstrated a dual mechanism for polyamine depletion's inhibition of OAZ1 RFS, involving both eIF5A-dependent and independent pathways.

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