Estrone-mediated lowering of ROS and NOX4 improves endothelial function in ovariectomized wistar rats
- PMID: 38643455
- DOI: 10.1007/s00210-024-03106-7
Estrone-mediated lowering of ROS and NOX4 improves endothelial function in ovariectomized wistar rats
Abstract
Estrone (E1) constitutes the primary component in oral conjugated equine estrogens (CEEs) and serves as the principal estrogen precursor in the female circulation in the post-menopause. E1 induces endothelium-dependent vasodilation and activate PI3K/NO/cGMP signaling. To assess whether E1 mitigates vascular dysfunction associated with postmenopause and explore the underlying mechanisms, we examined the vascular effects of E1 in ovariectomized (OVX) rats, a postmenopausal experimental model. Blood pressure was measured using tail-cuff plethysmography, and aortic rings were isolated to assess responses to phenylephrine, acetylcholine (ACh), and sodium nitroprusside. Responses to ACh in rings pre-incubated with superoxide dismutase (SOD), catalase (CAT), or apocynin were also evaluated. Protein expression of SOD, CAT, NOX1, NOX2, and NOX4 was determined by Western blotting. E1 treatment resulted in decreased body weight and retroperitoneal fat, increased uterine weight, and prevented elevated blood pressure in the OVX group. Furthermore, E1 improved endothelium-dependent ACh vasodilation, activated compensatory antioxidant mechanisms - i.e. increased SOD and CAT antioxidant enzymes activity, and decreased NOX4 expression. This, in turn, helped prevent oxidative stress and endothelial dysfunction in OVX rats. Additionally, E1 treatment reversed the increased total LDL cholesterol observed in the OVX group. The findings underscore protective effects of E1 on the cardiovascular system, counteracting OVX-related oxidative stress and endothelial dysfunction in Wistar rats. E1 exhibits promising therapeutic benefits for managing cardiovascular health, particularly in postmenopausal conditions.
Keywords: Cardiovascular Health; Estrone; Hormonal replacement therapy; Oxidative stress; Postmenopause.
© 2024. The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.
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References
-
- Adams V, Linke A, Kränkel N (2005) Impact of Regular Physical Activity on the NAD(P)H Oxidase and Angiotensin Receptor System in Patients With Coronary Artery Disease. Circulation 111(5): 555–562. https://doi.org/10.1161/01.CIR.0000154560.88933.7E .
-
- Barha CK, Galea LA (2013) The hormone therapy, Premarin, impairs hippocampus-dependent spatial learning and memory and reduces activation of new granule neurons in response to memory in female rats. Neurobiol Aging 34(3):986–1004. https://doi.org/10.1016/j.neurobiolaging.2012.07.009 .
-
- Berrodin TJ, Chang KC, Komm BS et al (2009) Differential biochemical and cellular actions of Premarin estrogens: distinct pharmacology of bazedoxifene-conjugated estrogens combination. Mol Endocrinol 23(1):74–85. https://doi.org/10.1210/me.2008-0366 - DOI - PubMed - PMC
-
- Bhavnani BR, Stanczyk FZ (2014) Pharmacology of conjugated equine estrogens: efficacy, safety and mechanism of action. J Steroid Biochem Mol Biol 142:16–29. https://doi.org/10.1016/j.jsbmb.2013.10.011 - DOI - PubMed
-
- Brahmbhatt Y, Gupta M, Hamrahian S (2019) Hypertension in Premenopausal and Postmenopausal women. Curr Hypertens Rep 21(10):74. https://doi.org/10.1007/s11906-019-0979-y - DOI - PubMed
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