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Selective estrogen receptor modulators (SERMs) affect cholesterol homeostasis through the master regulators SREBP and
María E Fernández-Suárez1, Lidia Daimiel1, Gemma Villa-Turégano2
1Servicio de Bioquímica-Investigación, Hospital Universitario Ramón y Cajal, IRYCIS, Ctra. de Colmenar, km 9, 28034 Madrid, Spain; CIBER de Fisiopatología de la Obesidad y Nutrición (CIBEROBN), Instituto de Salud Carlos III, Spain.
Abstract:
Selective estrogen receptor modulators (SERMs) are nonsteroidal drugs that display an estrogen-agonist or estrogen-antagonist effect depending on the tissue targeted. SERMs have attracted great clinical interest for the treatment of several pathologies, most notably breast cancer and osteoporosis. There is strong evidence that SERMs secondarily affect cholesterol metabolism, although the mechanism has not been fully elucidated. In this study, we analysed the effect of the SERMs tamoxifen, raloxifene, and toremifene on the expression of lipid metabolism genes by microarrays and quantitative PCR in different cell types, and ascertained the main mechanisms involved. The three SERMs increased the expression of sterol regulatory element-binding protein (SREBP) target genes, especially those targeted by SREBP-2. In consonance, SERMs increased SREBP-2 processing. These effects were associated to the interference with intracellular LDL-derived cholesterol trafficking. When the cells were exposed to LDL, but not to cholesterol/methyl-cyclodextrin complexes, the SERM-induced increases in gene expression were synergistic with those induced by lovastatin. Furthermore, the SERMs reduced the stimulation of the transcriptional activity of the liver X receptor (LXR) by exogenous cholesterol. However, their impact on the expression of the LXR canonical target ABCA1 in the presence of LDL was cell-type dependent. These actions of SERMs were independent of estrogen receptors. We conclude that, by inhibiting the intracellular trafficking of LDL-derived cholesterol, SERMs promote the activation of SREBP-2 and prevent the activation of LXR, two master regulators of cellular cholesterol metabolism. This study highlights the impact of SERMs on lipid homeostasis regulation beyond their actions as estrogen receptor modulators.
Insights
Selective estrogen receptor modulators (SERMs) impact cholesterol metabolism by disrupting LDL cholesterol transport. This affects key regulators like SREBP-2 and LXR, independent of estrogen receptors.
Area of Science:
- Endocrinology
- Molecular Biology
- Pharmacology
Background:
- Selective estrogen receptor modulators (SERMs) are crucial in treating breast cancer and osteoporosis.
- SERMs are known to influence cholesterol metabolism, but the underlying mechanisms require further elucidation.
Purpose of the Study:
- To investigate the effects of SERMs (tamoxifen, raloxifene, toremifene) on lipid metabolism gene expression.
- To identify the primary mechanisms by which SERMs modulate cellular cholesterol homeostasis.
Main Methods:
- Gene expression analysis using microarrays and quantitative PCR in various cell types.
- Assessment of sterol regulatory element-binding protein (SREBP) processing and liver X receptor (LXR) activity.
- Investigation of low-density lipoprotein (LDL)-derived cholesterol trafficking.
Main Results:
- SERMs significantly increased the expression of SREBP target genes, particularly those regulated by SREBP-2, and enhanced SREBP-2 processing.
- SERM-induced gene expression changes were synergistic with lovastatin in the presence of LDL, indicating interference with LDL cholesterol trafficking.
- SERMs inhibited LXR transcriptional activity stimulated by exogenous cholesterol, with cell-type-dependent effects on ABCA1 expression.
Conclusions:
- SERMs modulate cellular cholesterol metabolism by inhibiting intracellular LDL-derived cholesterol trafficking.
- This inhibition leads to the activation of SREBP-2 and the prevention of LXR activation, impacting key regulators of cholesterol homeostasis.
- The observed effects of SERMs on lipid metabolism are independent of estrogen receptors, highlighting a distinct mechanism of action.
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