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Calcium Channel Blockade in Primary Aldosteronism

Calcium Channel Blockade in Primary Aldosteronism

Status
Completed
Phases
Phase 2
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT04179019
Acronym
CCB-PA
Enrollment
15
Registered
2019-11-26
Start date
2020-09-01
Completion date
2023-12-30
Last updated
2025-04-15

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

Conditions

Primary Aldosteronism, Primary Aldosteronism Due to Adrenal Hyperplasia (Bilateral)

Keywords

primary aldosteronism, calcium channel blocker

Brief summary

This pilot study explore whether the calcium channel blocker amlodipine can lower aldosterone levels in people with primary aldosteronism.

Detailed description

BACKGROUND: Primary aldosteronism is a common cause of hypertension. The cause of primary aldosteronism can be a unilateral aldosterone-producing adenoma (APA) or bilateral idiopathic hyperaldosteronism (IHA) whereby there is diffuse production of ectopic and non-physiologic aldosterone in the adrenal cortex. IHA likely contributes to the majority of all primary aldosteronism. Whereas surgical cure is the preferred therapy for APA, lifelong mineralocorticoid receptor antagonists (MRAs), such as spironolactone or eplerenone, are used to treat IHA. Treatment is important as patients with primary aldosteronism have an elevated risk of adverse cardiovascular and renal outcomes compared to patients with essential hypertension. It was long thought that curative surgery and lifelong medical therapy were equivalent treatment options, but more recent studies suggest that MRAs may not ameliorate the adverse cardiovascular and renovascular effects of primary aldosteronism to the same extent as surgery. For one, MRAs do not lower aldosterone levels, in fact, aldosterone levels are often increased with MRA therapy. Therefore, for IHA patients with primary aldosteronism in whom surgery is not an option, efforts to improve and optimize medical therapy are important. Recent evidence in surgically removed adrenal glands from patients with primary aldosteronism and IHA has shown that even though IHA adrenal glands do not harbor adrenal tumors, they do harbor foci of ectopic aldosterone production and these foci are enriched for somatic mutations (gain of function) in CACNA1D, thereby suggesting that calcium channel mutations are predominant in the pathogenesis of IHA. This represents an intriguing target for medical therapy as blockade of this channel could lower intracellular calcium influx and hence decrease aldosterone production. Calcium channel blockade could also represent a more upstream therapy than mineralocorticoid receptor antagonists, which block the action of aldosterone at its receptor rather than lower its production. This study is a pilot study to test the hypothesis that calcium channel blockade may lower autonomous aldosterone production in primary aldosteronism patients with IHA. PROTOCOL: Participants taking calcium channel blockers will be required to stop these medications for 2-4 weeks prior to initiation of the study. During this time, blood pressure will be managed with doxazosin and/or hydralazine to target an ideal range of \<130/80 mmHg, but practically ranges of 120-150/60-90 mmHg will be allowed. Serum potassium will be treated with supplemental potassium chloride to target a range of 3.5-4.5 mEq/L prior to initiation of the study. Participants already on a mineralocorticoid receptor blocker must have a plasma renin activity of \<1.0 ng/mL/h to participate, or be able to reduce or stop the dose of this medication for the duration of the study. Study Visit 1: Participants will be provided sodium supplements (3g/daily) to take for five days prior to study visit 1. On the fifth day, a 24h urine collection will be obtained to measure urinary sodium and aldosterone and participants will arrive at the Clinical Research Center for testing. After one hour of seated rest, baseline blood measures will be obtained, and a single dose of amlodipine 10 mg will be administered. Blood measurements will be repeated every 2 hours to assess the serial change in outcome measures (t=2,4,and 6 hours after the amlodipine dose). Upon completion of the visit, participants will be prescribed amlodipine 10mg daily for 2 weeks. Treatment phase: Following completion of Visit 1, participants will be prescribed amlodipine 10mg daily for 2 weeks. Home blood pressure monitoring will continue to ensure blood pressure remains in the target range of 120-150/80-90 mmHg. If blood pressure falls below this range with amlodipine, doxazosin and/or hydralazine doses may be reduced or stopped. If blood pressure remains low even after stopping doxazosin and hydralazine, the dose of amlodipine may be lowered to 5mg daily. Potassium chloride supplements may be titrated based on the values obtained at Study visit 1. Study Visit 2: Participants will be provided sodium supplements (3g/daily) to take for five days prior to study visit 2. On the fifth day, a 24h urine collection will be obtained to measure urinary sodium and aldosterone and participants will arrive at the Clinical Research Center for testing. After one hour of seated rest, baseline blood measures will be obtained, and a single dose of amlodipine 10 mg will be administered. Blood measurements will be repeated every 2 hours to assess the serial change in outcome measures (t=2,4,and 6 hours after the amlodipine dose). Upon completion of the visit, the study will have concluded and participants will return to their usual care.

Interventions

DRUGAmlodipine

Amlodipine (10mg daily, as tolerated by blood pressure parameters) for 2 weeks

Sponsors

University of Michigan
CollaboratorOTHER
Brigham and Women's Hospital
Lead SponsorOTHER

Study design

Allocation
NA
Intervention model
SINGLE_GROUP
Primary purpose
TREATMENT
Masking
NONE

Intervention model description

Open-label, single group, pilot intervention to evaluate physiologic changes in hormonal parameters.

Eligibility

Sex/Gender
ALL
Age
18 Years to 80 Years
Healthy volunteers
No

Inclusion criteria

* Confirmed diagnosis of primary aldosteronism * Idiopathic bilateral hyperaldosteronism subtype based on adrenal venous sampling * Primary aldosteronism treated with medical therapy (not surgery) * Plasma renin activity \<1.0 ng/mL/h

Exclusion criteria

* large or discrete adrenal adenoma on cross-sectional imaging * inability to stop calcium channel blocker and transition to alternative medication * inability to stop mineralocorticoid receptor antagonist and transition to alternative medication if plasma renin activity \> 1.0 ng/mL/h * Anemia * leukopenia * thrombocytopenia * pregnant * breastfeeding

Design outcomes

Primary

MeasureTime frameDescription
Change in 24-hour Urinary Aldosterone Excretion RateBaseline and 2 weeks of amlodipine therapyChange in 24h urinary aldosterone excretion rate in response to maximal amlodipine therapy
Change in Plasma Aldosterone ConcentrationBaseline and 2 weeks of amlodipine therapyChange in plasma aldosterone concentration in response to maximal amlodipine therapy

Secondary

MeasureTime frameDescription
Acute Change in Plasma Aldosterone ConcentrationBaseline plasma aldosterone concentration before amlodipine therapy and 6 hours post-amlodipine dose, compared to baseline plasma aldosterone after 2 weeks of amlodipine therapy and 6 hours post-amlodipine therapy.Change in plasma aldosterone concentration after a single dose of amlodipine, before and after 2 weeks of amlodipine therapy

Countries

United States

Participant flow

Recruitment details

Participants were recruited from the hospital clinics for a diagnosis of known primary aldosteronism

Pre-assignment details

Prior to assignment, participants taking calcium channel blockers had to to stop these medications for 2-4 weeks. During this time, BP was managed with doxazosin and/or hydralazine to target an ideal range of \<130/80 mmHg, but practically ranges of 120-150/60-90 mmHg. In addition, Serum potassium had to be between 3.5-4.5 mEq/L and plasma renin activity had to be \<1.0 ng/mL/h, prior to initiation of the study. The inability to achieve these outcomes may result in withdrawal.

Participants by arm

ArmCount
Amlodipine
Amlodipine (dose 10 mg, once daily)
15
Total15

Withdrawals & dropouts

PeriodReasonFG000
Overall StudyAdverse Event4
Overall StudyLost to Follow-up2
Overall StudyPhysician Decision2
Overall StudyWithdrawal by Subject5

Baseline characteristics

CharacteristicAmlodipine
Age, Continuous58.9 years
STANDARD_DEVIATION 11.7
Ethnicity (NIH/OMB)
Hispanic or Latino
5 Participants
Ethnicity (NIH/OMB)
Not Hispanic or Latino
10 Participants
Ethnicity (NIH/OMB)
Unknown or Not Reported
0 Participants
Race (NIH/OMB)
American Indian or Alaska Native
0 Participants
Race (NIH/OMB)
Asian
1 Participants
Race (NIH/OMB)
Black or African American
3 Participants
Race (NIH/OMB)
More than one race
1 Participants
Race (NIH/OMB)
Native Hawaiian or Other Pacific Islander
0 Participants
Race (NIH/OMB)
Unknown or Not Reported
1 Participants
Race (NIH/OMB)
White
9 Participants
Sex: Female, Male
Female
7 Participants
Sex: Female, Male
Male
8 Participants

Adverse events

Event typeEG000
affected / at risk
deaths
Total, all-cause mortality
0 / 15
other
Total, other adverse events
4 / 15
serious
Total, serious adverse events
0 / 15

Outcome results

Primary

Change in 24-hour Urinary Aldosterone Excretion Rate

Change in 24h urinary aldosterone excretion rate in response to maximal amlodipine therapy

Time frame: Baseline and 2 weeks of amlodipine therapy

ArmMeasureValue (MEAN)Dispersion
AmlodipineChange in 24-hour Urinary Aldosterone Excretion Rate0.21 mcg/24hStandard Deviation 4.94
Comparison: The intra-individual, paired, 24h urine aldosterone excretion rate following 2 weeks of amlodipine therapy was compared to the baseline pre-treatment 24h urine aldosterone excretion rate. The null hypothesis was that amlodipine therapy would result in no change in the 24h urine aldosterone excretion rate. Because only 2 participants completed the pilot study, the validity of the results is low.p-value: 0.96t-test, 2 sided
Primary

Change in Plasma Aldosterone Concentration

Change in plasma aldosterone concentration in response to maximal amlodipine therapy

Time frame: Baseline and 2 weeks of amlodipine therapy

ArmMeasureValue (MEAN)Dispersion
AmlodipineChange in Plasma Aldosterone Concentration9.81 ng/dLStandard Deviation 6.87
Comparison: The intra-individual, paired, plasma aldosterone concentration following 2 weeks of amlodipine therapy was compared to the baseline pre-treatment aldosterone concentration. The null hypothesis was that amlodipine therapy would result in no change in the plasma aldosterone value. Because only 2 participants completed the pilot study, the validity of the results is low.p-value: 0.29t-test, 2 sided
Secondary

Acute Change in Plasma Aldosterone Concentration

Change in plasma aldosterone concentration after a single dose of amlodipine, before and after 2 weeks of amlodipine therapy

Time frame: Baseline plasma aldosterone concentration before amlodipine therapy and 6 hours post-amlodipine dose, compared to baseline plasma aldosterone after 2 weeks of amlodipine therapy and 6 hours post-amlodipine therapy.

ArmMeasureValue (MEAN)Dispersion
AmlodipineAcute Change in Plasma Aldosterone Concentration-0.86 ng/dLStandard Deviation 4.51
Comparison: The intra-individual, paired, change in plasma aldosterone concentration in response to an acute dose of amlodipine (6h post-dose) was compared to the baseline pre-treatment response to an acute dose of amlodipine. The null hypothesis was that an acute amlodipine dose would result in no acute change in the plasma aldosterone levels. Because only 2 participants completed the pilot study, the validity of the results is low.p-value: 0.83t-test, 2 sided

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026