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An In Vitro Model for Studying Cellular Transformation by Kaposi Sarcoma Herpesvirus
Published on: August 25, 2017
Cell cycle arrest and apoptosis induced by 1α,25(OH)2D3 and TX 527 in Kaposi sarcoma is VDR dependent
Verónica González-Pardo1, Alejandra Suares1, Annemieke Verstuyf2
1Departamento de Biología, Bioquímica & Farmacia, Universidad Nacional del Sur-CONICET, 8000 Bahía Blanca, Argentina.
Abstract:
We have previously shown that 1α,25(OH)2-Vitamin D3 [1α,25(OH)2D3] and its less calcemic analog TX 527 inhibit the proliferation of endothelial cells transformed by the viral G protein-coupled receptor associated to Kaposi sarcoma (vGPCR) and this could be partially explained by the inhibition of the NF-κB pathway. In this work, we further explored the mechanism of action of both vitamin D compounds in Kaposi sarcoma. We investigated whether the cell cycle arrest and subsequent apoptosis of endothelial cells (SVEC) and SVEC transformed by vGPCR (SVEC-vGPCR) elicited by 1α,25(OH)2D3 and TX 527 were mediated by the vitamin D receptor (VDR). Cell cycle analysis of SVEC and SVEC-vGPCR treated with 1α,25(OH)2D3 (10nM, 48h) revealed that 1α,25(OH)2D3 increased the percentage of cells in the G0/G1 phase and diminished the percentage of cells in the S phase of the cell cycle. Moreover, the number of cells in the S phase was higher in SVEC-vGPCR than in SVEC due to vGPCR expression. TX 527 exerted similar effects on growth arrest in SVEC-vGPCR cells. The cell cycle changes were suppressed when the expression of the VDR was blocked by a stable transfection of shRNA against VDR. Annexin V-PI staining demonstrated apoptosis in both SVEC and SVEC-vGPCR after 1α,25(OH)2D3 and TX 527 treatment (10nM, 24h). Cleavage of caspase-3 detected by Western blot analysis was increased to a greater extent in SVEC than in SVEC-vGPCR cells, and this effect was also blocked in VDR knockdown cells. Altogether, these results suggest that 1α,25(OH)2D3 and TX 527 inhibit the proliferation of SVEC and SVEC-vGPCR and induce apoptosis by a mechanism that involves the VDR.
Insights
1α,25(OH)2-Vitamin D3 and its analog TX 527 inhibit Kaposi sarcoma cell proliferation and induce apoptosis. These effects are mediated by the vitamin D receptor (VDR), highlighting its role in controlling cancer cell growth.
Area of Science:
- Oncology
- Cell Biology
- Endocrinology
Background:
- Kaposi sarcoma (KS) is a cancer associated with viral G protein-coupled receptor (vGPCR).
- 1α,25(OH)2-Vitamin D3 [1α,25(OH)2D3] and its analog TX 527 inhibit vGPCR-transformed endothelial cell proliferation.
- The NF-κB pathway is implicated in the anti-proliferative effects of these vitamin D compounds.
Purpose of the Study:
- To investigate the mechanism of action of 1α,25(OH)2D3 and TX 527 in Kaposi sarcoma.
- To determine if vitamin D receptor (VDR) mediates the cell cycle arrest and apoptosis induced by these compounds in endothelial cells (SVEC) and vGPCR-transformed SVEC (SVEC-vGPCR).
Main Methods:
- Cell cycle analysis using flow cytometry.
- VDR expression was blocked using shRNA against VDR.
- Apoptosis was assessed by Annexin V-PI staining.
- Caspase-3 cleavage was detected by Western blot analysis.
Main Results:
- 1α,25(OH)2D3 and TX 527 induced G0/G1 cell cycle arrest and reduced S phase in SVEC and SVEC-vGPCR cells.
- vGPCR expression increased S phase cells compared to SVEC.
- The observed cell cycle changes were abrogated by VDR knockdown.
- Both compounds induced apoptosis in SVEC and SVEC-vGPCR cells, evidenced by increased caspase-3 cleavage.
- VDR knockdown suppressed the pro-apoptotic effects.
Conclusions:
- 1α,25(OH)2D3 and TX 527 inhibit proliferation and induce apoptosis in endothelial cells relevant to Kaposi sarcoma.
- The anti-cancer effects of these vitamin D compounds are mediated through the vitamin D receptor (VDR).
- VDR plays a crucial role in regulating cell cycle progression and apoptosis in the context of vGPCR-transformed cells.
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