The proposed mechanistic trial will test the effect of dietary sodium reduction on cardiac and vascular structure and function in those with elevated blood pressure or hypertension. Findings from this study will fill the knowledge gap on the underlying mechanisms of dietary sodium intake on cardiovascular disease risk in addition to blood pressure and could provide further evidence on sodium reduction for the prevention of cardiovascular disease.
High dietary sodium intake increases risk of cardiovascular disease (CVD) independent of established risk factors, including blood pressure (BP). Non-BP mediated mechanisms underlying the increased risk of CVD associated with dietary sodium intake are not well understood, but observational studies suggest direct target organ damage in the heart and vasculature might play an important role. Little evidence exists from randomized controlled trials (RCTs) on target organ effects of dietary sodium reduction, and the National Academy of Medicine has recommended future research to "test the effects of different sodium intake levels on endothelial and vascular function" in order to "to better characterize the relationship between sodium intake and chronic disease". The overall objective of the proposed mechanistic trial is to test the effect of dietary sodium reduction on cardiac and vascular structure and function. Specifically, the proposed trial will test whether dietary sodium reduction (targeting a dietary sodium intake of \<2,300 mg/day) will improve left ventricular mass index (LVMI), left ventricular global longitudinal strain (LVGLS), carotid-femoral pulse wave velocity (cfPWV), and flow-mediated dilation (FMD) compared to usual intake. Additionally, we will test whether this effect is independent from BP reduction. We will recruit 256 people with elevated BP or hypertension from the greater New Orleans area and randomly assign them to a dietitian-led behavioral intervention aimed at decreasing dietary sodium intake to \<2,300 mg/day for 12 months or to a usual diet. Study outcomes, including cardiac magnetic resonance imaging (CMR)-determined LVMI and LVGLS, cfPWV, and FMD, will be measured at baseline, 6-month, and 12-month clinic visits using standardized protocols with stringent quality control. These outcomes are validated biomarkers for target organ damage and predict the risk of clinical CVD events. In primary analyses, the effect of sodium reduction on each subclinical CVD endpoint will be compared between the sodium reduction and usual diet groups according to the intention-to-treat principle without adjusting for covariates. In secondary analyses, changes in ambulatory and clinical BP will be adjusted to assess the BP-independent effect of dietary sodium reduction on each subclinical CVD endpoint. The proposed trial has 85% statistical power to detect a clinically significant difference in changes of the four co-primary outcomes (10 g/m2 in LVMI, 1.3% in LVGLS, 0.9 m/s in cfPWV, and 1.1% in FMD) over 12 months between the two groups at a 2-sided significance level of 0.0125 (0.05/4). Findings from this trial will fill the knowledge gap of the underlying mechanisms of dietary sodium intake on CVD risk and provide further evidence on sodium reduction for CVD prevention.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
BASIC_SCIENCE
Masking
SINGLE
Enrollment
256
The sodium reduction intervention is a dietician-led behavioral intervention consisting of two phases, first a 3-month intensive intervention phase, followed by a 9-month maintenance phase. The overall goal of the intervention is to reduce sodium intake to \<2,300 mg per day based on the most recent guideline from the National Academies of Medicine. Both phases will include individual and group behavioral modification counseling designed to facilitate a reduction in dietary sodium intake.
Tulane University Office of Health Research
New Orleans, Louisiana, United States
RECRUITINGChange in Left Ventricular Global Longitudinal Strain (LVGLS) from baseline to 12 months
Cardiac magnetic resonance imaging will be used to determine LVGLS.
Time frame: 12 months
Change in Left Ventricular Mass Index (LVMI) from baseline to 12 months
Cardiac magnetic resonance imaging will be used to determine left ventricular mass (LVM). LVM will be indexed to body surface area.
Time frame: 12 months
Change in Pulse Wave Velocity (PWV) from baseline to 12 months
A carotid tonometer will be used to measure carotid-femoral PWV.
Time frame: 12 months
Change in Flow-Mediated Dilation (FMD) from baseline to 12 months
Endothelial-dependent FMD will be quantified using high resolution ultrasound.
Time frame: 12 months
Left Ventricular Volumes
Cardiac magnetic resonance imaging will be used to determine left ventricular volumes.
Time frame: Baseline, 6 months, and 12 months
Left Atrial Maximum and Minimum Volume
Cardiac magnetic resonance imaging will be used to determine left atrial maximum and minimum volumes.
Time frame: Baseline, 6 months, and 12 months
Left Atrial Ejection Fraction
Cardiac magnetic resonance imaging will be used to determine left atrial ejection fraction.
Time frame: Baseline, 6 months, and 12 months
Left Atrial Global Strain
Cardiac magnetic resonance imaging will be used to determine left atrial global strain.
Time frame: Baseline, 6 months, and 12 months
Aortic Pulse Wave Velocity
Cardiac magnetic resonance imaging will be used to determine aortic pulse wave velocity.
Time frame: Baseline, 6 months, and 12 months
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