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Updated: Jun 13, 2026

Scanning Electron Microscopy of Macerated Tissue to Visualize the Extracellular Matrix
Published on: June 14, 2016
Cellular and molecular pathways to myocardial necrosis and replacement fibrosis
Malay S Gandhi1, German Kamalov, Atta U Shahbaz
1Division of Cardiovascular Diseases, Department of Medicine, University of Tennessee Health Science Center, 956 Court Ave., Suite A312, Memphis, TN 38163, USA.
Insights
Fibrosis in heart failure involves cardiomyocyte death and scarring, impairing heart function. Increasing zinc may counteract calcium overload, offering a novel cardioprotective strategy.
Area of Science:
- Cardiovascular Biology
- Cellular Pathology
- Medical Biochemistry
Background:
- Fibrosis is a key feature of heart remodeling in heart failure.
- Myocardial scarring results from cardiomyocyte necrosis, leading to impaired cardiac function.
- Intracellular calcium overload and mitochondrial oxidative stress are central to cardiomyocyte necrosis.
Purpose of the Study:
- To explore the role of calcium (Ca2+) and zinc (Zn2+) dyshomeostasis in cardiomyocyte necrosis.
- To investigate the potential of increasing intracellular Zn2+ as a cardioprotective strategy.
Main Methods:
- Review of cellular and molecular studies on cardiomyocyte necrosis pathways.
- Analysis of the interplay between Ca2+ and Zn2+ in cardiac myocytes and mitochondria.
Main Results:
- Intracellular Ca2+ overloading induces oxidative stress and mitochondrial damage, leading to cell death.
- Zn2+ entry acts as an antioxidant, counterbalancing the prooxidant effects of Ca2+.
- Dysregulation of the Ca2+-Zn2+ balance is implicated in the pathogenesis of heart failure.
Conclusions:
- Targeting the Ca2+-Zn2+ dyshomeostasis by increasing intracellular Zn2+ may offer a novel cardioprotective approach.
- Adjuvant nutriceuticals could be used to enhance antioxidant defenses and protect against heart failure progression.
- Further exploration of Zn2+-based cardioprotective strategies is warranted.
Abstract:
Fibrosis is a fundamental component of the adverse structural remodeling of myocardium present in the failing heart. Replacement fibrosis appears at sites of previous cardiomyocyte necrosis to preserve the structural integrity of the myocardium, but not without adverse functional consequences. The extensive nature of this microscopic scarring suggests cardiomyocyte necrosis is widespread and the loss of these contractile elements, combined with fibrous tissue deposition in the form of a stiff in-series and in-parallel elastic elements, contributes to the progressive failure of this normally efficient muscular pump. Cellular and molecular studies into the signal-transducer-effector pathway involved in cardiomyocyte necrosis have identified the crucial pathogenic role of intracellular Ca2+ overloading and subsequent induction of oxidative stress, predominantly confined within its mitochondria, to be followed by the opening of the mitochondrial permeability transition pore that leads to the destruction of these organelles and cells. It is now further recognized that Ca2+ overloading of cardiac myocytes and mitochondria serves as a prooxidant and which is counterbalanced by an intrinsically coupled Zn2+ entry serving as antioxidant. The prospect of raising antioxidant defenses by increasing intracellular Zn2+ with adjuvant nutriceuticals can, therefore, be preferentially exploited to uncouple this intrinsically coupled Ca2+ - Zn2+ dyshomeostasis. Hence, novel yet simple cardioprotective strategies may be at hand that deserve to be further explored.
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