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Alternative splicing of the vitamin D receptor modulates target gene expression and promotes ligand-independent
Andrew J Annalora1, Marija Jozic1, Craig B Marcus1
1Department of Environmental and Molecular Toxicology, Oregon State University, 1007 Agriculture & Life Sciences Building, Corvallis, OR 97331; USA.
Abstract:
Alternative splicing modulates gene function by creating splice variants with alternate functions or non-coding RNA activity. Naturally occurring variants of nuclear receptor (NR) genes with dominant negative or gain-of-function phenotypes have been documented, but their cellular roles, regulation, and responsiveness to environmental stress or disease remain unevaluated. Informed by observations that class I androgen and estrogen receptor variants display ligand-independent signaling in human cancer tissues, we questioned whether the function of class II NRs, like the vitamin D receptor (VDR), would also respond to alternative splicing regulation. Artificial VDR constructs lacking exon 3 (Dex3-VDR), encoding part of the DNA binding domain (DBD), and exon 8 (Dex8-VDR), encoding part of the ligand binding domain (LBD), were transiently transfected into DU-145 cells and stably-integrated into Caco-2 cells to study their effect on gene expression and cell viability. Changes in VDR promoter signaling were monitored by the expression of target genes (e.g. CYP24A1, CYP3A4 and CYP3A5). Ligand-independent VDR signaling was observed in variants lacking exon 8, and a significant loss of gene suppressor function was documented for variants lacking exon 3. The gain-of-function behavior of the Dex8-VDR variant was recapitulated in vitro using antisense oligonucleotides (ASO) that induce the skipping of exon 8 in wild-type VDR. ASO targeting the splice acceptor site of exon 8 significantly stimulated ligand-independent VDR reporter activity and the induction of CYP24A1 above controls. These results demonstrate how alternative splicing can re-program NR gene function, highlighting novel mechanisms of toxicity and new opportunities for the use of splice-switching oligonucleotides (SSO) in precision medicine.
Insights
Alternative splicing reprograms nuclear receptor function. Skipping exon 8 in the vitamin D receptor (VDR) causes ligand-independent signaling, while skipping exon 3 impairs gene suppression, opening avenues for splice-switching oligonucleotide therapies.
Area of Science:
- Molecular Biology
- Genetics
- Endocrinology
Background:
- Alternative splicing generates functional variants of nuclear receptors (NRs), but their roles in disease and stress response are largely unknown.
- Class I NR variants show ligand-independent signaling in cancer, prompting investigation into Class II NRs like the vitamin D receptor (VDR).
Purpose of the Study:
- To investigate the impact of alternative splicing on vitamin D receptor (VDR) function, specifically its ligand-independent signaling and gene regulatory activity.
- To explore the potential of modulating VDR splicing using antisense oligonucleotides (ASOs) for therapeutic applications.
Main Methods:
- Constructed artificial VDR variants lacking exon 3 (Dex3-VDR) or exon 8 (Dex8-VDR).
- Transfected and integrated these variants into DU-145 and Caco-2 cells to assess gene expression (CYP24A1, CYP3A4, CYP3A5) and cell viability.
- Utilized antisense oligonucleotides (ASOs) to induce exon 8 skipping in wild-type VDR and evaluated VDR reporter activity and target gene induction.
Main Results:
- VDR variants lacking exon 8 exhibited ligand-independent signaling.
- Variants lacking exon 3 demonstrated a significant loss of gene suppressor function.
- ASOs targeting exon 8 successfully induced exon skipping, leading to increased ligand-independent VDR reporter activity and CYP24A1 induction.
Conclusions:
- Alternative splicing can fundamentally alter nuclear receptor gene function, reprogramming cellular signaling pathways.
- Splicing-induced VDR variants may contribute to disease pathogenesis through novel mechanisms of toxicity.
- Splice-switching oligonucleotides (SSOs) represent a promising therapeutic strategy for precisely targeting NR gene function in precision medicine.
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