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Aldosterone, the Mineralocorticoid Receptor, and Cardiovascular Disease in Obesity

Aldosterone, the Mineralocorticoid Receptor, and Cardiovascular Disease in Obesity

Status
Completed
Phases
Phase 4
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT04519164
Enrollment
79
Registered
2020-08-19
Start date
2020-12-01
Completion date
2025-09-17
Last updated
2026-09-15

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Hypertension, Metabolic Syndrome, Overweight and Obesity

Keywords

aldosterone, mineralocorticoid receptor antagonist

Brief summary

This study will evaluate whether the mineralocorticoid receptor antagonist eplerenone, when compared to chlorthalidone plus potassium chloride, can improve cardiac MRI-derived myocardial perfusion reserve and fibrosis, independent of blood pressure, and proportionately to the severity of autonomous aldosterone production.

Detailed description

Obesity is a dominant risk factor for the development of cardiovascular disease (CVD). The public health relevance of this relationship is underscored by the fact that 40% (93 million) of adult Americans are obese. Activation of the mineralocorticoid receptor (MR) is a major mechanism implicated in the pathogenesis of obesity-associated CVD. MR activation causes vascular stiffness, inflammation, and fibrosis, and MR antagonists improve clinical outcomes in heart failure with reduced ejection fraction, especially in obesity. However, even in the absence of heart failure, multiple mechanisms of CVD in obesity are mediated by excessive activation of the MR. These mechanisms include: autonomous aldosterone production, increased cortisol action, high sympathetic nervous system activity, increased leptin, inflammation, and oxidative stress. Autonomous aldosterone production is a highly prevalent and poorly recognized disorder that causes CVD independent of blood pressure (BP). Autonomous aldosterone production manifests across a wide severity spectrum, ranging from mild/subclinical (rarely recognized) to overt (primary aldosteronism). The investigators' work has characterized autonomous aldosterone production as a phenotype of non-physiologic, non-suppressible, and renin-independent aldosterone production that is highly prevalent in the general population of the U.S.A.. Autonomous aldosterone production and MR activation are especially enriched in obesity, particularly among obese/overweight individuals with hypertension and/or metabolic syndrome. Current treatment guidelines do not recommend the early use of MR antagonists in obesity or hypertension, thereby delaying or omitting a targeted therapy that may specifically mitigate the mechanism of CVD in this high-risk population. The investigators have validated cardiac MRI methods to measure coronary microvascular function and myocardial fibrosis, both strong surrogates for CVD that correlate with aldosterone production and that improve with MR antagonist therapy. Prospective studies to investigate the early mechanistic contribution of aldosterone-MR activation in the pathogenesis of CVD in obesity, and whether MR antagonists can prevent this, are lacking. Mechanistic studies, using innovative and robust intermediate phenotypes of clinical CVD outcomes in a cost-effective manner, could have a major public health impact by implicating a targeted medical therapy (MR antagonists) to prevent CVD in high-risk obesity (overweight/obese individuals with hypertension and/or metabolic syndrome). HYPOTHESIS: MR antagonists in high-risk obesity improve cardiac MRI-derived myocardial perfusion reserve and fibrosis, independent of BP, and proportionately to the severity of autonomous aldosterone production. STUDY DESIGN: This mechanistic study will investigate whether MR antagonist therapy in high-risk overweight or obese participants can be a targeted strategy to prevent CVD. 80 participants with overweight/obesity, untreated hypertension, and/or at least one other feature of the metabolic syndrome, will be enrolled. Participants will undergo a deep-phenotyping protocol to characterize aldosterone and cortisol physiology before randomization to eplerenone (25-100 mg/d) or chlorthalidone (6.25-25 mg/d + KCl 20 mEq/d) for one year. BP will be maintained in a target range to ensure outcomes are independent of BP control. Cardiac MRI-derived outcomes will be measured at baseline and after one year. AIM 1: To investigate whether eplerenone therapy in high-risk obese/overweight participants, when compared to chlorthalidone + KCl, can improve coronary microvascular function independent of BP, as measured via stress cardiac MRI-derived myocardial perfusion reserve (a strong predictor for incident cardiovascular events and death that has been shown to improve with MR antagonist therapy). AIM 2: To investigate whether eplerenone therapy in high-risk obese/overweight participants, when compared to chlorthalidone + KCl, can decrease myocardial fibrosis independent of BP, as measured via extracellular volume fraction on T1 mapping cardiac MRI (an established surrogate for myocardial fibrosis and inflammation that is also strongly associated with autonomous aldosterone production and mortality). Exploratory Aims: To investigate whether the severity of autonomous aldosterone production is associated with cardiac MRI-derived outcomes and predicts the response to eplerenone therapy; and, to investigate whether eplerenone therapy can improve measures of cardiac fat content, arterial stiffness (via pulse-wave velocity), and inflammation (via inflammatory markers and adipocytokines), when compared to chlorthalidone + KCl. IMPACT: Obesity/overweight status is enriched with autonomous aldosterone production and MR activation, mechanisms known to cause CVD. This study will investigate targeted mechanisms for the prevention of MR-mediated CVD in high-risk obesity using innovative physiologic phenotyping and surrogate imaging outcomes. This study will establish a mechanistic foundation for future outcome studies in obesity with incident CVD events.

Interventions

DRUGEplerenone

mineralocorticoid receptor antagonist and potassium-sparing diuretic

DRUGChlorthalidone with potassium chloride

potassium-wasting diuretic with potassium chloride

Sponsors

Brigham and Women's Hospital
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
QUADRUPLE (Subject, Caregiver, Investigator, Outcomes Assessor)

Masking description

study medications will be blinded to the participant, investigator, outcomes assessors, and the care providers of the participants. Only the research pharmacists who prepare the study medications will be aware.

Intervention model description

Participants will be randomized to receive either eplerenone or chlorthalidone with potassium chloride

Eligibility

Sex/Gender
ALL
Age
18 Years to 70 Years
Healthy volunteers
No

Inclusion criteria

1. BMI ≥ 30 with at least one of the following, or BMI ≥ 25 with at least two of the following: 1. Untreated Hypertension: Stage I (BP 120-139/80-89 mmHg) or stage II (BP 140-159/90-99 mmHg). 2. Treated Hypertension: On one anti-hypertensive medication with BP\<140/90 mmHg and willing to undergo a 2-week washout of the medication before initiating eplerenone or chlorthalidone + KCl 3. Dysglycemia: Impaired fasting plasma glucose (100-125 mg/dL) or glycated A1c 5.7-6.4% 4. Dyslipidemia: Fasting triglyceride level \> 150 mg/dL and HDL\< 40 mg/dL in men or \<50 mg/dL in women. 2. Age between 18 and 70 years old

Exclusion criteria

* Estimated glomerular filtration rate \< 60 mL/min/1.73m2) * Serum potassium \> 5.2 mEq/L * Known diagnosis or treatment for type 1 or type 2 diabetes * Known history of CVD (myocardial infarction, heart failure, atrial fibrillation, or stroke) * EKG with ischemic ST-segment or T-wave changes or Q waves in more than one territorial lead or a left bundle branch block * Pregnancy (verified with a pregnancy test) or breast-feeding

Design outcomes

Primary

MeasureTime frameDescription
Change in Stress Myocardial Perfusion Reserve on Cardiac MRIone yearChange in myocardial perfusion reserve

Secondary

MeasureTime frameDescription
Change in Extracellular Volume Fractionone yearChange in extracellular volume fraction on cardiac MRI

Countries

United States

Contacts

PRINCIPAL_INVESTIGATORAnand Vaidya, MD

Brigham and Women's Hospital, Harvard Medical School

Participant flow

Recruitment details

223 participants from the greater Boston metropolitan area assessed for eligibility, of which 88 were enrolled to undergo phenotyping visits, of which 79 were randomized to study medication intervention. Broad inclusion criteria overweight/obese status with high blood pressure.

Pre-assignment details

Participants on a single anti-hypertensive medication may have had to stop the medication if it interfered with the renin-angiotensin-aldosterone system (ACEi and ARBs)

Baseline characteristics

Characteristic
Age, Continuous55.2 years
STANDARD_DEVIATION 10
Race/Ethnicity, Customized
Asian
0 Participants
Race/Ethnicity, Customized
Black
9 Participants
Race/Ethnicity, Customized
More than one race
2 Participants
Race/Ethnicity, Customized
Other
1 Participants
Race/Ethnicity, Customized
White
67 Participants
Sex: Female, Male
Female
29 Participants
Sex: Female, Male
Male
24 Participants

Adverse events

Event typeEG000
affected / at risk
EG001
affected / at risk
deaths
Total, all-cause mortality
0 / 400 / 39
other
Total, other adverse events
31 / 4028 / 39
serious
Total, serious adverse events
0 / 402 / 39

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Sep 16, 2026