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Published on: June 11, 2017
Tamoxifen Accelerates Endothelial Healing by Targeting ERα in Smooth Muscle Cells
Rana Zahreddine1, Morgane Davezac1, Natalia Smirnova1
1I2MC, Institut National de la Santé et de la Recherche Médicale (INSERM) U 1048, University of Toulouse 3, France (R.Z., M.D., N.S., M.B., E.L., A.L., R.S., A.V., F.L., M.L., J.-F.A., C.F.).
Rationale:
Tamoxifen prevents the recurrence of breast cancer and is also beneficial against bone demineralization and arterial diseases. It acts as an ER (estrogen receptor) α antagonist in ER-positive breast cancers, whereas it mimics the protective action of 17β-estradiol in other tissues such as arteries. However, the mechanisms of these tissue-specific actions remain unclear.
Objective:
Here, we tested whether tamoxifen is able to accelerate endothelial healing and analyzed the underlying mechanisms.
Methods And Results:
Using 3 complementary mouse models of carotid artery injury, we demonstrated that both tamoxifen and estradiol accelerated endothelial healing, but only tamoxifen required the presence of the underlying medial smooth muscle cells. Chronic treatment with 17β-estradiol and tamoxifen elicited differential gene expression profiles in the carotid artery. The use of transgenic mouse models targeting either whole ERα in a cell-specific manner or ERα subfunctions (membrane/extranuclear versus genomic/transcriptional) demonstrated that 17β-estradiol-induced acceleration of endothelial healing is mediated by membrane ERα in endothelial cells, while the effect of tamoxifen is mediated by the nuclear actions of ERα in smooth muscle cells.
Conclusions:
Whereas tamoxifen acts as an antiestrogen and ERα antagonist in breast cancer but also on the membrane ERα of endothelial cells, it accelerates endothelial healing through activation of nuclear ERα in smooth muscle cells, inviting to revisit the mechanisms of action of selective modulation of ERα.
Insights
Tamoxifen accelerates artery healing by activating estrogen receptor alpha (ERα) in smooth muscle cells, distinct from its anti-estrogen effects in breast cancer. This reveals tissue-specific mechanisms for selective ERα modulation.
Area of Science:
- Cardiovascular Biology
- Endocrinology
- Pharmacology
Background:
- Tamoxifen is a widely used drug for breast cancer treatment.
- Tamoxifen exhibits tissue-specific estrogenic and anti-estrogenic effects.
- The mechanisms underlying tamoxifen's diverse actions remain incompletely understood.
Purpose of the Study:
- To investigate tamoxifen's effect on endothelial healing.
- To elucidate the molecular mechanisms by which tamoxifen influences arterial repair.
Main Methods:
- Utilized three complementary mouse models of carotid artery injury.
- Administered tamoxifen and 17β-estradiol to assess endothelial healing.
- Employed transgenic mouse models to investigate cell-specific and subfunctional estrogen receptor alpha (ERα) roles.
Main Results:
- Both tamoxifen and 17β-estradiol accelerated endothelial healing in mouse carotid arteries.
- Tamoxifen's pro-healing effect required the presence of medial smooth muscle cells.
- 17β-estradiol-induced healing involved membrane ERα in endothelial cells, while tamoxifen's effect involved nuclear ERα in smooth muscle cells.
Conclusions:
- Tamoxifen accelerates endothelial healing via nuclear ERα activation in smooth muscle cells.
- This contrasts with tamoxifen's anti-estrogenic action in breast cancer and its membrane ERα effects in endothelial cells.
- Findings necessitate a re-evaluation of selective estrogen receptor alpha (ERα) modulation strategies.
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