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Aldosterone activates transcription factor Nrf2 in kidney cells both in vitro and in vivo
Nina Queisser1, Patricia I Oteiza, Samuel Link
11 Department of Toxicology, University of Würzburg , Würzburg, Bavaria, Germany .
Aims:
An increased kidney cancer risk was found in hypertensive patients, who frequently exhibit hyperaldosteronism, known to contribute to kidney injury, with oxidative stress playing an important role. The capacity of kidney cells to up-regulate transcription factor nuclear factor-erythroid-2-related factor 2 (Nrf2), a key regulator of the cellular antioxidative defense, as a prevention of aldosterone-induced oxidative damage was investigated both in vitro and in vivo.
Results:
Aldosterone activated Nrf2 and increased the expression of enzymes involved in glutathione (GSH) synthesis and detoxification. This activation depended on the mineralocorticoid receptor (MR) and oxidative stress. In vitro, Nrf2 activation, GSH amounts, and target gene levels decreased after 24 h, while oxidant levels remained high. Nrf2 activation could not protect cells against oxidative DNA damage, as aldosterone-induced double-strand breaks and 7,8-dihydro-8-oxo-guanine (8-oxodG) lesions steadily rose. The Nrf2 activator sulforaphane enhanced the Nrf2 response both in vitro and in vivo, thereby preventing aldosterone-induced DNA damage. In vivo, Nrf2 activation further had beneficial effects on the aldosterone-caused blood pressure increase and loss of kidney function.
Innovation:
This is the first study showing the activation of Nrf2 by aldosterone. Moreover, the results identify sulforaphane as a substance that is capable of preventing aldosterone-induced damage both in vivo and in vitro.
Conclusion:
Aldosterone-induced Nrf2 adaptive response cannot neutralize oxidative actions of chronically increased aldosterone, which, therefore could be causally involved in the increased cancer incidence of hypertensive individuals. Enhancing the cellular antioxidative defense with sulforaphane might exhibit beneficial effects.
Insights
Aldosterone activates the antioxidant response factor Nrf2, but this protection is insufficient against chronic damage. Sulforaphane, an Nrf2 activator, prevents aldosterone-induced DNA damage and kidney injury in hypertensive patients.
Area of Science:
- Nephrology
- Molecular Biology
- Oncology
Background:
- Hypertension is linked to increased kidney cancer risk, often associated with hyperaldosteronism and oxidative stress.
- Nuclear factor-erythroid-2-related factor 2 (Nrf2) is a key regulator of cellular antioxidant defenses.
Purpose of the Study:
- To investigate the capacity of kidney cells to up-regulate Nrf2 in response to aldosterone.
- To determine if Nrf2 activation can prevent aldosterone-induced oxidative damage and kidney injury.
Main Methods:
- In vitro and in vivo studies examining Nrf2 activation by aldosterone.
- Assessment of oxidative stress markers, DNA damage, and kidney function.
- Evaluation of the Nrf2 activator sulforaphane's effects.
Main Results:
- Aldosterone activated Nrf2, glutathione synthesis, and detoxification enzymes, dependent on the mineralocorticoid receptor and oxidative stress.
- Nrf2 activation alone could not prevent aldosterone-induced DNA damage, with oxidant levels remaining high.
- Sulforaphane enhanced Nrf2 response, preventing DNA damage and mitigating blood pressure increase and kidney function loss in vivo.
Conclusions:
- The aldosterone-induced Nrf2 response is insufficient to counteract chronic oxidative damage.
- Aldosterone may be causally linked to increased cancer incidence in hypertensive individuals.
- Enhancing antioxidant defense with sulforaphane shows potential therapeutic benefits.
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