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Toxicity and dose-response studies of 1,25-(OH)2-16-ene-23-yne vitamin D3 in transgenic mice
C L Wilkerson1, S R Darjatmoko, M J Lindstrom
1Department of Ophthalmology and Visual Sciences, University of Wisconsin Medical School, Madison 53792-3220, USA.
Abstract:
The vitamin D3 analogue 1,25-(OH)2-16-ene-23-yne vitamin D3 (16,23-D3) in doses with low systemic toxicity has been demonstrated to inhibit retinoblastoma growth in transgenic mice. This study examines the dose-dependent response for inhibition of tumor growth in transgenic mice with retinoblastoma and evaluates the in vivo toxicity of 16,23-D3 in nontransgenic mice. Transgenic 8-10-week-old mice with retinoblastoma (n = 119) were randomly assigned to groups receiving 1.0, 0.75, 0.5, 0.35, 0.2, or 0.05 microg of 16,23-D3 and a vehicle alone (control) group i.p. five times a week for 5 weeks. An additional control group received no injection. Eyes were enucleated one week after the end of treatment, and tumor areas were measured. To determine the toxic dose, transgene-negative littermates received 0.5, 1.0, 1.5, 2.5, 3.5, 4.5, or 5.0 microg of 16,23-D3, and control groups received vehicle alone, 5 days a week for 5 weeks. Serum calcium levels were measured, and necropsies were performed on animals from each group. In the dose-response study, tumor growth inhibition was greatest in the group receiving 0.35 microg (55% inhibition; P = 0.0056) and was also significant in the group receiving 0.5 microg (42% inhibition; P = 0.036). The systemic toxic effects due to hypercalcemia occurred at doses of > or =1.0 microg. 16,23-D3 inhibits tumor growth at doses > or =0.35 microg and shows toxic effects at doses > or =1.0 microg related to hypercalcemia in mice fed an unrestricted diet. No toxicity was observed with lower doses.
Insights
The vitamin D3 analogue 16,23-D3 effectively inhibits retinoblastoma tumor growth in mice at doses of 0.35 microg and above. Systemic toxicity, specifically hypercalcemia, was observed at doses of 1.0 microg and higher.
Area of Science:
- Oncology
- Endocrinology
- Pharmacology
Background:
- Retinoblastoma is a pediatric eye cancer.
- Vitamin D analogues show potential in cancer treatment.
- 1,25-(OH)2-16-ene-23-yne vitamin D3 (16,23-D3) has demonstrated preclinical efficacy.
Purpose of the Study:
- To evaluate the dose-dependent efficacy of 16,23-D3 in inhibiting retinoblastoma growth in a transgenic mouse model.
- To assess the in vivo toxicity of 16,23-D3 in nontransgenic mice.
Main Methods:
- Transgenic mice with retinoblastoma received varying doses of 16,23-D3 (0.05-1.0 microg) or vehicle control.
- Nontransgenic mice received higher doses of 16,23-D3 (0.5-5.0 microg) or vehicle control to determine toxicity.
- Tumor area was measured post-treatment; serum calcium levels and necropsies were performed to assess toxicity.
Main Results:
- Significant retinoblastoma tumor growth inhibition was observed at doses of 0.35 microg (55% inhibition) and 0.5 microg (42% inhibition).
- Systemic toxicity, characterized by hypercalcemia, occurred at doses of 1.0 microg and above in mice on an unrestricted diet.
- No toxicity was observed at doses below 1.0 microg.
Conclusions:
- 16,23-D3 demonstrates significant anti-tumor activity against retinoblastoma in vivo at doses of 0.35 microg and higher.
- The therapeutic window for 16,23-D3 is between 0.35 microg and 1.0 microg, with toxicity primarily related to hypercalcemia at higher doses.
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