Amlodipine rescues advanced iron overload cardiomyopathy in hemojuvelin knockout murine model: Clinical implications

Pavel Zhabyeyev1,2, Chandu Sadasivan1,2, Saumya Shah1,2

  • 1Division of Cardiology, Department of Medicine, University of Alberta, Edmonton, AB, Canada.

Insights

Amlodipine effectively reversed iron overload cardiomyopathy (IOC) in a mouse model and a human patient. This calcium channel blocker offers a promising therapeutic option for IOC, a serious complication of iron overload disorders.

Area of Science:

  • Cardiology
  • Hematology
  • Pharmacology

Background:

  • Iron overload cardiomyopathy (IOC) is a severe complication of genetic hemochromatosis and secondary iron overload.
  • Limited therapeutic options currently exist for managing IOC.
  • This study investigates amlodipine's potential as a therapeutic agent for IOC.

Purpose of the Study:

  • To investigate the rescue mechanisms of amlodipine in a murine model of iron overload.
  • To characterize cardiac tissue changes in human IOC.
  • To compare human IOC changes with those in the animal model.

Main Methods:

  • Utilized male hemojuvelin knockout (HJVKO) mice fed a high-iron diet.
  • Administered amlodipine, a Ca2+ channel blocker, to iron-overloaded mice.
  • Analyzed cardiac tissue from the murine model and an IOC patient (beta-thalassemia).

Main Results:

  • Iron overload induced cardiac dysfunction and pathological changes in mice, mirroring human IOC.
  • The murine model and explanted human heart showed myocyte iron deposition, fibrosis, hypertrophy, oxidative stress, and altered Ca2+ cycling.
  • Amlodipine treatment normalized cellular function and reversed cardiac remodeling in mice.
  • A clinical case of primary hemochromatosis demonstrated successful IOC treatment with amlodipine.

Conclusions:

  • The HJVKO mouse model effectively replicates human IOC features.
  • Amlodipine demonstrated efficacy in reversing IOC remodeling in both the murine model and a clinical case.
  • Amlodipine is a potential effective adjuvant therapy for iron overload cardiomyopathy.
Abstract

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