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1.
J Cardiovasc Pharmacol ; 77(3): 280-290, 2021 03 01.
Article in English | MEDLINE | ID: mdl-33109927

ABSTRACT

ABSTRACT: Because cardiotoxicity is one of the leading causes of drug failure and attrition, the design of new protocols and technologies to assess proarrhythmic risks on cardiac cells is in continuous development by different laboratories. Current methodologies use electrical, intracellular Ca2+, or contractility assays to evaluate cardiotoxicity. Increasingly, the human-induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) are the in vitro tissue model used in commercial assays because it is believed to recapitulate many aspects of human cardiac physiology. In this work, we demonstrate that the combination of a contractility and voltage measurements, using video-based imaging and fluorescence microscopy, on hiPSC-CMs allows the investigation of mechanistic links between electrical and mechanical effects in an assay design that can address medium throughput scales necessary for drug screening, offering a view of the mechanisms underlying drug toxicity. To assess the accuracy of this novel technique, 10 commercially available inotropic drugs were tested (5 positive and 5 negative). Included were drugs with simple and specific mechanisms, such as nifedipine, Bay K8644, and blebbistatin, and others with a more complex action such as isoproterenol, pimobendan, digoxin, and amrinone, among others. In addition, the results provide a mechanism for the toxicity of itraconazole in a human model, a drug with reported side effects on the heart. The data demonstrate a strong negative inotropic effect because of the blockade of L-type Ca2+ channels and additional action on the cardiac myofilaments. We can conclude that the combination of contractility and action potential measurements can provide wider mechanistic knowledge of drug cardiotoxicity for preclinical assays.


Subject(s)
Arrhythmias, Cardiac/chemically induced , Excitation Contraction Coupling/drug effects , Fluorescent Dyes/chemistry , Induced Pluripotent Stem Cells/drug effects , Microscopy, Fluorescence , Microscopy, Video , Myocardial Contraction/drug effects , Myocytes, Cardiac/drug effects , Pyridinium Compounds/chemistry , Action Potentials/drug effects , Arrhythmias, Cardiac/metabolism , Arrhythmias, Cardiac/physiopathology , Calcium Channels, L-Type/drug effects , Calcium Channels, L-Type/metabolism , Cardiotoxicity , Cell Differentiation , Cells, Cultured , Humans , Induced Pluripotent Stem Cells/metabolism , Induced Pluripotent Stem Cells/pathology , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Myofibrils/drug effects , Myofibrils/metabolism , Myofibrils/pathology , Risk Assessment , Time Factors , Toxicity Tests
2.
Front Physiol ; 11: 607860, 2020.
Article in English | MEDLINE | ID: mdl-33519514

ABSTRACT

The electrophysiological behavior of the zebrafish heart is very similar to that of the human heart. In fact, most of the genes that codify the channels and regulatory proteins required for human cardiac function have their orthologs in the zebrafish. The high fecundity, small size, and easy handling make the zebrafish embryos/larvae an interesting candidate to perform whole animal experiments within a plate, offering a reliable and low-cost alternative to replace rodents and larger mammals for the study of cardiac physiology and pathology. The employment of zebrafish embryos/larvae has widened from basic science to industry, being of particular interest for pharmacology studies, since the zebrafish embryo/larva is able to recapitulate a complete and integrated view of cardiac physiology, missed in cell culture. As in the human heart, I Kr is the dominant repolarizing current and it is functional as early as 48 h post fertilization. Finally, genome editing techniques such as CRISPR/Cas9 facilitate the humanization of zebrafish embryos/larvae. These techniques allow one to replace zebrafish genes by their human orthologs, making humanized zebrafish embryos/larvae the most promising in vitro model, since it allows the recreation of human-organ-like environment, which is especially necessary in cardiac studies due to the implication of dynamic factors, electrical communication, and the paracrine signals in cardiac function.

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