Stop codon readthrough generates a C-terminally extended variant of the human vitamin D receptor with reduced

Gary Loughran1, Irwin Jungreis2, Ioanna Tzani3

  • 1From the School of Biochemistry and Cell Biology, University College Cork, Cork, Ireland, g.loughran@ucc.ie.

Insights

Mammalian stop codon readthrough, previously rare, is now confirmed in genes like the vitamin D receptor (VDR). This process creates new protein forms (VDRx) with altered functions, expanding gene expression possibilities.

Area of Science:

  • Genetics
  • Molecular Biology
  • Genomics

Background:

  • Stop codon readthrough is a mechanism viruses use to expand gene expression.
  • Verified instances in mammals are recently discovered through systems biology and comparative genomics.
  • A conserved motif (UGA_CUAG) predicts efficient readthrough in vertebrates.

Purpose of the Study:

  • To investigate stop codon readthrough in human genes containing the UGA_CUAG motif.
  • To determine the readthrough efficiency of the vitamin D receptor (VDR) gene.
  • To characterize the novel VDR proteoform generated by readthrough.

Main Methods:

  • Analysis of conserved protein coding signatures beyond annotated stop codons.
  • Tissue culture reporter assays to test for stop codon readthrough.
  • Comparison of VDR and the novel VDRx proteoform's transcriptional response.

Main Results:

  • Identified and validated stop codon readthrough in several mammalian genes.
  • The vitamin D receptor (VDR) gene exhibited a readthrough efficiency of 6.7%.
  • A novel VDR proteoform (VDRx) was generated, showing reduced transcriptional response to calcitriol.

Conclusions:

  • Stop codon readthrough is a significant mechanism for gene expression in mammals.
  • The VDR gene undergoes readthrough to produce a functional variant (VDRx).
  • VDRx possesses altered ligand-binding and transcriptional activity compared to VDR.

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