Identification of Fhit as a post-transcriptional effector of Thymidine Kinase 1 expression

Daniel L Kiss1,2, Catherine E Waters3, Iman M Ouda3,4

  • 1Center for RNA Biology, 484 West 12th Ave., Columbus, OH 43210 USA.

Insights

The fragile histidine triad (FHIT) gene, a tumor suppressor, regulates Thymidine Kinase 1 (TK1) expression. FHIT loss leads to DNA damage by affecting TK1 translation, not transcription or mRNA levels.

Area of Science:

  • Molecular Biology
  • Cancer Biology
  • Genetics

Background:

  • The fragile histidine triad (FHIT) gene acts as a genome caretaker, frequently silenced in cancers.
  • Loss of Fhit protein is linked to DNA damage, apoptosis, and epithelial-mesenchymal transition, but mechanisms are unclear.
  • FHIT loss correlates with reduced Thymidine Kinase 1 (TK1) protein, initiating genome instability.

Purpose of the Study:

  • To elucidate the molecular mechanisms by which FHIT loss impacts TK1 expression and contributes to genome instability.
  • To investigate the role of FHIT in regulating TK1 mRNA translation and its functional consequences.

Main Methods:

  • FHIT knockdown and induction experiments in cells.
  • Analysis of TK1 protein turnover, transcription, mRNA levels, and promoter activity.
  • Polysome profiling to assess mRNA translation.
  • Luciferase reporter assays using TK1 5'-UTR constructs.
  • Studies with FHIT mutants affecting cap-like dinucleotide activity.

Main Results:

  • FHIT expression directly regulates TK1 protein levels, independent of transcription or mRNA stability.
  • FHIT influences TK1 mRNA translation by altering ribosome density and reducing non-translating mRNA.
  • FHIT's scavenger decapping activity modulates intracellular cap-like molecules, impacting TK1 translation.
  • FHIT mutants with impaired activity cause DNA damage due to TK1 deficiency.

Conclusions:

  • FHIT regulates TK1 expression at the translational level, likely via scavenger decapping activity.
  • Modulation of TK1 translation by FHIT is a key mechanism underlying its tumor suppressor and genome caretaker functions.
  • These findings offer insights into FHIT's broader role in cellular processes and cancer prevention.