The main objective is to test the hypothesis that inorganic nitrate supplementation will: (1) Improve exercise efficiency and performance; (2) Enhance the systemic vasodilator reserve during exercise and specifically, the vasodilator response in exercising muscle; (3) Reduce arterial wave reflections and arterial load; (4) Improve skeletal muscle mitochondrial function in subjects with heart failure with preserved ejection fraction.
This represents a series of double-blind, controlled pilot randomized studies in which the effects of nitrate-rich beetroot juice and nitrate-depleted beetroot juice will be assessed in patients with heart failure and preserved ejection fraction (n=20). A total of 20 subjects will be enrolled over a 1.5 year period and randomized in a cross-over design to a single dose of nitrate-rich beetroot juice and nitrate-depleted beetroot juice. The order of the interventions will be randomized; thus, all subjects will receive the nitrate-rich and nitrate-depleted juice, with a 4-7 day washout period in-between studies.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
TREATMENT
Masking
QUADRUPLE
Enrollment
17
Subjects will receive 140 mL of Nitrate-rich concentrated beetroot juice.
Subjects will receive 140 mL of nitrate-depleted beetroot juice.
Philadelphia Veterans Affairs Medical Center
Philadelphia, Pennsylvania, United States
Change in Peak exercise efficiency during maximal effort supine-bicycle exercise and peak oxygen consumption (VO2) during a maximal effort supine-bicycle exercise test
We will assess the relationship between total power output and total O2 consumption (VO2, assessed via expired gas analysis) during a maximal-effort supine bicycle exercise test.
Time frame: Baseline study, repeat study 4-7 days later
Change in Arterial wave reflection magnitude
Reflection wave magnitude will be assessed using arterial tonometry to arrive at the augmentation index. The data will also be processed using custom designed software for wave separation analysis to quantify the magnitude and timing of the reflected waves.
Time frame: Baseline study, repeat study 4-7 days later
Change in Peripheral vascular resistance, total arterial compliance and reflection magnitude during supine bicycle peak exercise
Time frame: Baseline study, repeat study 4-7 days later
Change in lower extremity exercise vasodilator reserve (change in femoral vascular resistance between rest and maximal effort supine-bicycle exercise)
Time frame: Baseline study, repeat study 4-7 days later
Change in lower extremity blood flow reserve (change in femoral artery blood flow between rest and maximal effort supine-bicycle exercise)
Time frame: Baseline study, repeat study 4-7 days later
Change in submaximal exercise efficiency (O2 consumption per power output during submaximal exercise and standardized handgrip exercise)
Time frame: Baseline study, repeat study 4-7 days later
Change in Skeletal Muscle Mitochondrial Oxidative Capacity
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The investigators will assess the oxygen consumption recovery kinetics after moderate forearm exercise, using repeated cuff brachial artery occlusions and near-infrared spectroscopy.
Time frame: Baseline study, repeat study 4-7 days later
Change in post-ischemic vasodilatory response
The investigators will assess the post-ischemic vasodilatory response in the forearm using brachial artery pulsed wave Doppler interrogations before and after inflation of a brachial cuff at 200 mmHg for 5 minutes. The investigators will also assess forearm microvascular skeletal muscle flow with near-infrared spectroscopy and forearm skin microvascular flow using laser Doppler.
Time frame: Baseline study, repeat study 4-7 days later