The regenerative capacity of zebrafish reverses cardiac failure caused by genetic cardiomyocyte depletion

Jinhu Wang(Howard Hughes Medical Institute), Daniela Panáková(Brigham and Women's Hospital), Kazu Kikuchi(Howard Hughes Medical Institute), Jennifer E. Holdway(Howard Hughes Medical Institute), Matthew Gemberling(Howard Hughes Medical Institute), James S. Burris(Howard Hughes Medical Institute), Sumeet Pal Singh(Howard Hughes Medical Institute), Amy L. Dickson(Howard Hughes Medical Institute), Yifan Lin(University of California San Diego), M. Khaled Sabeh(Brigham and Women's Hospital), Andreas A. Werdich(Brigham and Women's Hospital), Deborah Yelon(University of California San Diego), Calum A. MacRae(Brigham and Women's Hospital), Kenneth D. Poss(Howard Hughes Medical Institute)
Development
July 14, 2011
Cited by 381

Abstract

Natural models of heart regeneration in lower vertebrates such as zebrafish are based on invasive surgeries causing mechanical injuries that are limited in size. Here, we created a genetic cell ablation model in zebrafish that facilitates inducible destruction of a high percentage of cardiomyocytes. Cell-specific depletion of over 60% of the ventricular myocardium triggered signs of cardiac failure that were not observed after partial ventricular resection, including reduced animal exercise tolerance and sudden death in the setting of stressors. Massive myocardial loss activated robust cellular and molecular responses by endocardial, immune, epicardial and vascular cells. Destroyed cardiomyocytes fully regenerated within several days, restoring cardiac anatomy, physiology and performance. Regenerated muscle originated from spared cardiomyocytes that acquired ultrastructural and electrophysiological characteristics of de-differentiation and underwent vigorous proliferation. Our study indicates that genetic depletion of cardiomyocytes, even at levels so extreme as to elicit signs of cardiac failure, can be reversed by natural regenerative capacity in lower vertebrates such as zebrafish.


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