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Published on: August 27, 2015
Metabolism of 20-hydroxyvitamin D3 by mouse liver microsomes
Chloe Y S Cheng1, Andrzej T Slominski2, Robert C Tuckey1
1School of Chemistry and Biochemistry, The University of Western Australia, Crawley, WA 6009, Australia.
Abstract:
20-Hydroxyvitamin D3 [20(OH)D3], the major product of CYP11A1 action on vitamin D3, is biologically active and like 1,25-dihydroxyvitamin D3 [1,25(OH)2D3] can inhibit proliferation and promote differentiation of a range of cells, and has anti-inflammatory properties. However, unlike 1,25(OH)2D3, it does not cause toxic hypercalcemia at high doses and is therefore a good candidate for therapeutic use to treat hyperproliferative and autoimmune disorders. In this study we analyzed the ability of mouse liver microsomes to metabolize 20(OH)D3. The two major products were identified from authentic standards as 20,24-dihydroxyvitamin D3 [20,24(OH)2D3] and 20,25-dihydroxyvitamin D3 [20,25(OH)2D3]. The reactions for synthesis of these two products from 20(OH)D3 displayed similar Km values suggesting that they were catalyzed by the same cytochrome P450. Some minor metabolites were produced by reactions with higher Km values for 20(OH)D3. Some metabolites gave mass spectra suggesting that they were the result of hydroxylation followed by dehydrogenation. One product had an increase in the wavelength for maximum absorbance from 263nm seen for 20(OH)D3, to 290nm, suggesting a new double bond was interacting with the vitamin D-triene chromophore. The two major products, 20,24(OH)2D3 and 20,25(OH)2D3 have both previously been shown to have higher potency for inhibition of colony formation by melanoma cells than 20(OH)D3, thus it appears that metabolism of 20(OH)D3 by mouse liver microsomes can generate products with enhanced activity.
Insights
20-Hydroxyvitamin D3 is a potential therapeutic for autoimmune diseases. Mouse liver microsomes metabolize it into compounds with enhanced anti-cancer activity, suggesting improved therapeutic potential.
Area of Science:
- Biochemistry
- Endocrinology
- Pharmacology
Background:
- 20-Hydroxyvitamin D3 [20(OH)D3] is biologically active, inhibiting cell proliferation and inflammation.
- Unlike 1,25-dihydroxyvitamin D3 [1,25(OH)2D3], 20(OH)D3 does not cause hypercalcemia, making it a promising therapeutic candidate for hyperproliferative and autoimmune disorders.
Purpose of the Study:
- To investigate the metabolism of 20(OH)D3 by mouse liver microsomes.
- To identify the metabolites of 20(OH)D3 and assess their potential biological activity.
Main Methods:
- Incubation of 20(OH)D3 with mouse liver microsomes.
- Identification of metabolites using authentic standards and mass spectrometry.
- Analysis of kinetic parameters (Km values) for metabolite formation.
Main Results:
- The primary metabolites identified were 20,24-dihydroxyvitamin D3 [20,24(OH)2D3] and 20,25-dihydroxyvitamin D3 [20,25(OH)2D3].
- These major metabolites were formed via reactions catalyzed by the same cytochrome P450 enzyme, indicated by similar Km values.
- Some metabolites suggested further modifications like hydroxylation followed by dehydrogenation, and one showed altered chromophore properties.
Conclusions:
- Mouse liver microsomes metabolize 20(OH)D3 into 20,24(OH)2D3 and 20,25(OH)2D3.
- These metabolites have previously demonstrated enhanced potency in inhibiting melanoma cell colony formation compared to 20(OH)D3.
- Metabolism of 20(OH)D3 generates products with potentially enhanced therapeutic activity for cancer and other diseases.

