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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.
Abstract:
Although stop codon readthrough is used extensively by viruses to expand their gene expression, verified instances of mammalian readthrough have only recently been uncovered by systems biology and comparative genomics approaches. Previously, our analysis of conserved protein coding signatures that extend beyond annotated stop codons predicted stop codon readthrough of several mammalian genes, all of which have been validated experimentally. Four mRNAs display highly efficient stop codon readthrough, and these mRNAs have a UGA stop codon immediately followed by CUAG (UGA_CUAG) that is conserved throughout vertebrates. Extending on the identification of this readthrough motif, we here investigated stop codon readthrough, using tissue culture reporter assays, for all previously untested human genes containing UGA_CUAG. The readthrough efficiency of the annotated stop codon for the sequence encoding vitamin D receptor (VDR) was 6.7%. It was the highest of those tested but all showed notable levels of readthrough. The VDR is a member of the nuclear receptor superfamily of ligand-inducible transcription factors, and it binds its major ligand, calcitriol, via its C-terminal ligand-binding domain. Readthrough of the annotated VDR mRNA results in a 67 amino acid-long C-terminal extension that generates a VDR proteoform named VDRx. VDRx may form homodimers and heterodimers with VDR but, compared with VDR, VDRx displayed a reduced transcriptional response to calcitriol even in the presence of its partner retinoid X receptor.
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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