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Induction of Atherosclerotic Plaques Through Activation of Mineralocorticoid Receptors in Apolipoprotein E-deficient Mice
Published on: September 26, 2018
Striatin heterozygous mice are more sensitive to aldosterone-induced injury
Amanda E Garza1, Elijah Trefts1, Isis A Katayama Rangel1
1Division of Endocrinology, Diabetes and Hypertension, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, Massachusetts, USA.
Abstract:
Aldosterone modulates the activity of both epithelial (specifically renal) and non-epithelial cells. Binding to the mineralocorticoid receptor (MR), activates two pathways: the classical genomic and the rapidly activated non-genomic that is substantially modulated by the level of striatin. We hypothesized that disruption of MR's non-genomic pathway would alter aldosterone-induced cardiovascular/renal damage. To test this hypothesis, wild type (WT) and striatin heterozygous knockout (Strn+/-) littermate male mice were fed a liberal sodium (1.6% Na+) diet and randomized to either protocol one: 3 weeks of treatment with either vehicle or aldosterone plus/minus MR antagonists, eplerenone or esaxerenone or protocol two: 2 weeks of treatment with either vehicle or L-NAME/AngII plus/minus MR antagonists, spironolactone or esaxerenone. Compared to the WT mice, basally, the Strn+/- mice had greater (~26%) estimated renal glomeruli volume and reduced non-genomic second messenger signaling (pAkt/Akt ratio) in kidney tissue. In response to active treatment, the striatin-associated-cardiovascular/renal damage was limited to volume effects induced by aldosterone infusion: significantly increased blood pressure (BP) and albuminuria. In contrast, with aldosterone or L-NAME/AngII treatment, striatin deficiency did not modify aldosterone-mediated damage: in the heart and kidney, macrophage infiltration, and increases in aldosterone-induced biomarkers of injury. All changes were near-normalized following MR blockade with spironolactone or esaxerenone, except increased BP in the L-NAME/AngII model. In conclusion, the loss of striatin amplified aldosterone-induced damage suggesting that aldosterone's non-genomic pathway is protective but only related to effects likely mediated via epithelial, but not non-epithelial cells.
Insights
Loss of striatin amplifies aldosterone damage, suggesting its non-genomic pathway is protective in epithelial cells. Aldosterone
Area of Science:
- Endocrinology
- Cardiovascular Research
- Nephrology
Background:
- Aldosterone exerts effects via mineralocorticoid receptor (MR) through genomic and non-genomic pathways.
- Striatin modulates the non-genomic MR pathway, influencing aldosterone's cellular actions.
- Disruption of the non-genomic pathway may alter aldosterone-induced cardiovascular and renal damage.
Purpose of the Study:
- To investigate the role of striatin in aldosterone-induced cardiovascular and renal damage.
- To determine if disrupting the MR's non-genomic pathway, via striatin deficiency, affects aldosterone-mediated injury.
Main Methods:
- Wild type (WT) and striatin heterozygous knockout (Strn+/-) mice were used.
- Mice received a high sodium diet and were treated with aldosterone or L-NAME/AngII, with or without MR antagonists.
- Cardiovascular and renal damage markers, including blood pressure, albuminuria, and macrophage infiltration, were assessed.
Main Results:
- Strn+/- mice exhibited larger glomeruli and reduced non-genomic signaling compared to WT mice.
- Striatin deficiency amplified aldosterone-induced increases in blood pressure and albuminuria.
- Striatin deficiency did not alter aldosterone-mediated cardiac and renal injury markers (macrophage infiltration, injury biomarkers).
- MR blockade with spironolactone or esaxerenone normalized most changes, except for increased blood pressure in the L-NAME/AngII model.
Conclusions:
- Loss of striatin exacerbates aldosterone-induced cardiovascular and renal damage, particularly volume-dependent effects.
- Aldosterone's non-genomic pathway, modulated by striatin, appears protective, likely through epithelial cell-mediated effects.
- These findings highlight the distinct roles of genomic and non-genomic MR pathways in aldosterone's actions.

