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Updated: Jan 14, 2026

Light Sheet Microscopy of Fast Cardiac Dynamics in Zebrafish Embryos
Published on: August 13, 2021
Functional Cardiac Imaging in Zebrafish Embryos Using Standard Microscopy and Video Analysis: Applications in
Nikola Mitovic1, Sanjin Kovacevic2, Jelena Nesovic Ostojic2
1Medical Faculty, Department of Pathophysiology, University of Belgrade; nikolamitovic@gmail.com.
Abstract:
Zebrafish (Danio rerio) are widely used as a vertebrate model in cardiovascular research due to their genetic similarity to humans, optical transparency during early development, and amenability to in vivo imaging. This manuscript presents a standardized, accessible protocol for assessing cardiac morphology and function in zebrafish embryos at 96 h post-fertilization (hpf) using brightfield light microscopy. The method includes embryo collection, morphological screening, immobilization in agarose, video recording of the beating heart, and image-based analysis of cardiac parameters such as ventricular dimensions, stroke volume, heart rate, ejection fraction, and cardiac output. Calculations are based on geometric approximations of the ventricle using open-source software (e.g., ImageJ, Zembryo Analyzer). The protocol enables quantitative assessment of cardiac performance using widely available equipment, making it suitable for laboratories with limited resources and high-throughput screenings. In this study, 96 hpf zebrafish larvae were analyzed by recording the beating heart under a light microscope. Key cardiac parameters measured included ventricular dimensions, which were used to calculate stroke volume and heart rate, determined by beats per minute. From these, ejection fraction and cardiac output were derived to assess overall cardiac performance. Representative results from healthy embryos demonstrated consistent ventricular contraction and robust functional indices, while embryos exposed to cadmium showed impaired cardiac morphology and significantly reduced cardiac output. Overall, the method is important for detecting developmental cardiotoxicity and provides a reproducible, non-invasive approach for evaluating cardiac function in vivo during early zebrafish development.

