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Heterodimer requirement for gene regulation by Vitamin D in variant OK cells
Nicholas J Koszewski1, Anne Rowan
1Department of Internal Medicine, Division of Nephrology, Bone and Mineral Metabolism, University of Kentucky Medical Center, Room MN562, 800 Rose Street, Lexington, KY 40536-0298, USA. njhosz0@uky.edu
Abstract:
OK cells are a transformed cell line derived from opossum kidney proximal tubule cells. Prior studies have utilized this cell line to study both positive and negative transcriptional responses to Vitamin D. However, there was a noticeable decrease in sensitivity on the part of these cells to respond to Vitamin D treatment in transfection assays, particularly when assessing transcriptional activity from a heterologous promoter construct that used the chicken parathyroid hormone (cPTH) repressor Vitamin D response element (VDRE). Western blotting revealed the apparently diminished expression of both the Vitamin D receptor (VDR) together with its heterodimeric DNA-binding partner, the retinoid X receptor (RXR), in these cellular extracts. Co-transfection of either a VDR or RXR expression vector alone had little effect on hormone-dependent enhancer transcriptional activity from the human osteocalcin (hOC) reporter construct, or the degree of repression from the cPTH construct. Indeed, significant effects on repressor or enhancer activity were only observed in these cells when expression vectors for both the VDR and RXR were simultaneously introduced into the cells via transfection experiments. Analogous results were obtained irrespective of the identity of RXR isoform; co-transfection of either RXRalpha or RXRbeta expression vectors together with the VDR-produced similar improvements in repressor activity. Titration of Vitamin D hormone under conditions of co-expression of the two receptors indicated that half-maximal responses were comparable for both VDREs and occurred at <1nM concentration. In summary, these results are consistent with prior in vitro studies indicating interaction of the VDR with these VDREs occurs as a heterodimer complex with RXR. The decreased expression of both heterodimer partners observed in these cells could explain the requirement for additional VDR/RXR expression, in particular in order to compensate for the reportedly lower binding affinity of the heterodimer with the repressor cPTH VDRE. The extent of expression of both heterodimer partners, therefore, may act to modulate the available responses to Vitamin D in target cells.
Insights
OK cells show reduced Vitamin D response due to low Vitamin D Receptor (VDR) and Retinoid X Receptor (RXR) expression. Restoring both VDR and RXR levels enhances transcriptional activity, clarifying Vitamin D signaling in these cells.
Area of Science:
- Molecular Biology
- Cell Biology
- Endocrinology
Background:
- OK cells, derived from opossum kidney proximal tubules, are used to study Vitamin D transcriptional regulation.
- Previous studies noted decreased sensitivity of OK cells to Vitamin D in transfection assays, especially with repressor constructs.
- Diminished expression of Vitamin D Receptor (VDR) and Retinoid X Receptor (RXR) was observed in OK cells.
Purpose of the Study:
- To investigate the cause of reduced Vitamin D sensitivity in OK cells.
- To determine the role of VDR and RXR expression levels in Vitamin D-mediated transcription.
- To elucidate the mechanism of VDR-RXR heterodimer function in response to Vitamin D.
Main Methods:
- Western blotting to assess VDR and RXR protein levels.
- Transfection assays using reporter constructs with Vitamin D Response Elements (VDREs).
- Co-transfection of VDR and RXR expression vectors to evaluate their impact on transcriptional activity.
Main Results:
- Co-expression of both VDR and RXR significantly restored transcriptional activity for both enhancer and repressor constructs.
- Single co-transfection of either VDR or RXR had minimal effect.
- Similar results were observed with RXRalpha and RXRbeta isoforms.
- Half-maximal responses to Vitamin D were achieved at <1nM concentration with co-expressed receptors.
Conclusions:
- Reduced expression of VDR and RXR heterodimer partners in OK cells explains their decreased sensitivity to Vitamin D.
- Simultaneous re-expression of VDR and RXR is necessary to restore Vitamin D signaling.
- Expression levels of VDR and RXR can modulate cellular responses to Vitamin D.