Overweight and obesity, which afflicts \~65% of the U.S. population and more than 1 billion people worldwide, increases the risk of developing hypertension. Activation of the renin angiotensin system (RAS) is an important mechanism by which obesity leads to hypertension. In addition to its vasoconstricting and sodium retaining actions, angiotensin II also has potent pro-inflammatory actions including macrophage infiltration and expression of proinflammatory cytokines in target tissues. Adipose tissue and skeletal muscle appear to be a key sites for the generation of proinflammatory cytokines. Although angiotensin II receptor blockade reduces inflammation in many tissues, the effects on adipose tissue and skeletal muscle in humans are not clear. Importantly, the chronic low grade inflammatory state that accompanies obesity complicates hypertension by contributing to insulin resistance and accelerating cardiovascular disease. Therefore, the general aim of the present proposal will be to determine the influence of angiotensin II receptor blockade on adipose tissue and skeletal muscle inflammation and its relation to improvements in insulin sensitivity, if observed, in obese hypertensive humans. To address these aims, 44 obese (BMI\>30 kg/m2) hypertensive (BP\>140 systolic and/or 90 diastolic) individuals (age=50-65 years) will be randomized to receive 8 weeks of either the angiotensin II receptor antagonist, olmesartan medoxomil, or no treatment in a crossover manner. Subcutaneous adipose tissue and skeletal muscle biopsies will be obtained and insulin sensitivity (intravenous glucose tolerance tests) will be assessed at baseline and following 8 weeks of each intervention. A two week washout period will separate the interventions.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
PREVENTION
Masking
NONE
Enrollment
20
Crossover intervention comparing antihypertensive medication to no drug intervention.
Insulin Sensitivity by Intravenous Glucose Tolerance Testing (Change Over Time)
Data collected from the intravenous glucose tolerance tests included blood concentrations of glucose and insulin. Glucose was measured immediately on a YSI glucose analyzer and insulin was measured via ELISA colormetric kits once all study samples were collected. To analyze changes in insulin sensitivity, the MINMOD software was used. The MINMOD software uses Bergman's minimal model to determine insulin sensitivity during an intravenous glucose tolerance test. Both glucose and insulin values were inserted at each timepoint collected (33 in total over the 3-hour protocol) and the software was run to generate the insulin sensitivity value at baseline and post-test. This information was then used to calculate the change of insulin sensitivity from baseline to post-testing after each 8-week intervention.
Time frame: Baseline testing to post-testing after 8-week intervention
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