Angiotensin receptor blocker/diuretic combination preserves insulin responses in obese hypertensives

James R Sowers1, Leopoldo Raij, Ishwaral Jialal

  • 1Diabetes and Cardiovascular Center, University of Missouri School of Medicine, and VA Medical Center, Columbia, Missouri 65212, USA. sowersj@health.missouri.edu

Abstract

Insights

Adding valsartan to hydrochlorothiazide improves glucose metabolism and insulin secretion compared to amlodipine. This combination may attenuate thiazide-induced negative effects on pancreatic beta-cell function.

Area of Science:

  • Cardiovascular Medicine
  • Endocrinology
  • Pharmacology

Background:

  • Thiazide diuretics can negatively impact glucose metabolism and increase diabetes risk.
  • The protective mechanism of angiotensin receptor blockers (ARBs) when combined with diuretics is not fully understood.

Purpose of the Study:

  • To investigate the comparative effects of valsartan/hydrochlorothiazide versus amlodipine/hydrochlorothiazide on glucose metabolism.
  • To explore the underlying mechanisms of potential metabolic protection offered by ARBs.

Main Methods:

  • A 16-week multicenter trial involving 412 hypertensive individuals with central obesity.
  • Randomized comparison of valsartan/hydrochlorothiazide versus amlodipine/hydrochlorothiazide treatment.
  • Assessment of fasting and postprandial glucose and insulin levels following an oral glucose load.

Main Results:

  • Both treatment groups achieved similar blood pressure reductions.
  • The valsartan combination did not increase fasting or postprandial glucose levels, unlike the amlodipine combination.
  • Glucose-stimulated insulin secretion was significantly greater in the valsartan group compared to the amlodipine group.

Conclusions:

  • Valsartan/hydrochlorothiazide combination therapy demonstrated superior glucose metabolism control compared to amlodipine/hydrochlorothiazide.
  • ARBs, when combined with thiazides, appear to enhance pancreatic beta-cell insulin secretion.
  • This suggests a mechanism by which ARBs may mitigate thiazide-induced adverse metabolic effects.

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