A Simple Analysis and Scoring of Zebrafish Larvae Cardiac Performance in Teratogenicity Study using Light Microscopy and ImageJ Software

Main Article Content

Koyuki Atifa Rahmi
Husnul Khotimah
Mohammad Saifur Rohman

Abstract

Background: Zebrafish is one of the suitable model organisms for teratogenicity study. One of the organs assessed during the study is the heart. There has been an established scoring system for the cardiac morphology, but not cardiac performance. Furthermore, the assessment of cardiac function in zebrafish often use expensive instruments and complicated methods.


Materials and Methods: Cardiac performance scoring method and system was proposed for zebrafish larvae aged 5 dpf. Observation was done using light microscope and the video of the observation was taken using smartphone or camera. The videos were then converted and rendered to be compatible with the ImageJ program using the measure function and time series analyzer plugin. The assessed parameters were the heart rate and rhythm, strength of heart contraction, and synchronicity between atrium and ventricle.


Results: The scoring system was formulated based on the assessments towards healthy control 5 dpf zebrafish larvae and references. The score for cardiac performance ranged from 3 – 6, with score 3 representing arrhythmic, weak, and asynchronous contractions, while score 6 representing rhythmic, strong, and synchronous contraction. The scoring system was also valid to point out the difference in cardiac performance between healthy control zebrafish larvae and larvae that previously exposed to lithium as teratogenic agent (p = 0.000).


Conclusions: The scoring methods and system developed in this study allowed for a non – expensive and simple assessment of cardiac performance in zebrafish larvae aged 5 dpf, especially for a teratogenicity study.

Article Details

How to Cite
Rahmi, K. A., Khotimah, H., & Rohman, M. S. (2024). A Simple Analysis and Scoring of Zebrafish Larvae Cardiac Performance in Teratogenicity Study using Light Microscopy and ImageJ Software. International Journal of Pharmaceutical and Bio Medical Science, 4(1), 44–51. https://doi.org/10.47191/ijpbms/v4-i1-07
Section
Articles

References

I. Eisen JS. History of Zebrafish Research. In: The Zebrafish in Biomedical Research. Elsevier; 2020. p. 3–14.

II. Panzica‐Kelly JM, Zhang CX, Danberry TL, Flood A, DeLan JW, Brannen KC, et al. Morphological score assignment guidelines for the dechorionated zebrafish teratogenicity assay. Birth Defects Res B Dev Reprod Toxicol. 2010 Oct 10;89(5):382–95.

III. Teame T, Zhang Z, Ran C, Zhang H, Yang Y, Ding Q, et al. The use of zebrafish (Danio rerio) as biomedical models. Animal Frontiers. 2019 Jun 25;9(3):68–77.

IV. Sampurna BP, Audira G, Juniardi S, Lai YH, Hsiao C Der. A simple ImageJ-based method to measure cardiac rhythm in zebrafish embryos. Inventions. 2018 Jun 1;3(2).

V. Lee L, Genge CE, Cua M, Sheng X, Rayani K, Beg MF, et al. Functional assessment of cardiac responses of adult zebrafish (danio rerio) to acute and chronic temperature change using high-resolution echocardiography. PLoS One. 2016 Jan 5;11(1).

VI. Zhao Y, Yun M, Nguyen SA, Tran M, Nguyen TP. In Vivo Surface Electrocardiography for Adult Zebrafish [Internet]. 2019. Available from: https://www.jove.com/video/60011/

VII. Hoage T, Ding Y, Xu X. Quantifying cardiac functions in embryonic and adult zebrafish. Methods in Molecular Biology. 2012;843:11–20.

VIII. Rahmi KA. Lithium Exposure during Embryonic Stage Affects Heart and Eye Morphology in Zebrafish Larvae via Changes in Transcription Factor Expression . [Malang]: Brawijaya University; 2023.

IX. Desai D, Hajouli S. Arrhythmias. StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing https://www.ncbi.nlm.nih.gov/books/NBK558923/. 2023.

X. Niedbalska‐tarnowska J, Ochenkowska K, Migocka‐patrzałek M, Dubińska‐magiera M. Assessment of the Preventive Effect of L‐carnitine on Post‐statin Muscle Damage in a Zebrafish Model. Cells. 2022 Apr 1;11(8).

XI. Rahman M, Yandrapalli S. Atrioventricular Dissociation. StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing https://www.ncbi.nlm.nih.gov/books/NBK563205/. 2023.

XII. Ernstmeyer K, Christman E. Interpret Basic ECG. In: Nursing Advanced Skills. Chippewa Valley Technical College: Eau Claire (WI); 2023.

XIII. Vornanen M, Hassinen M. Zebrafish heart as a model for human cardiac electrophysiology. Vol. 10, Channels. Taylor and Francis Inc.; 2016. p. 101–10.

XIV. Patorno E, Huybrechts KF, Bateman BT, Cohen JM, Desai RJ, Mogun H, et al. Lithium Use in Pregnancy and the Risk of Cardiac Malformations. New England Journal of Medicine. 2017 Jun 8;376(23):2245–54.

XV. Siebel AM, Vianna MR, Bonan CD. Pharmacological and toxicological effects of lithium in zebrafish. Vol. 5, ACS Chemical Neuroscience. American Chemical Society; 2014. p. 468–76.

XVI. Cho SJ, Park E, Baker A, Reid AY. Age Bias in Zebrafish Models of Epilepsy: What Can We Learn From Old Fish? Front Cell Dev Biol. 2020 Sep 10;8.

XVII. Nikam V, Singh D, Takawale R, Ghante M. Zebrafish: An emerging whole-organism screening tool in safety pharmacology. Indian J Pharmacol. 2020;52(6):505.

XVIII. Lynch TA, Abel DE. Teratogens and congenital heart disease. Journal of Diagnostic Medical Sonography. 2015 Sep 19;31(5):301–5.

XIX. Kemmler CL, Riemslagh FW, Moran HR, Mosimann C. From stripes to a beating heart: Early cardiac development in zebrafish. Vol. 8, Journal of Cardiovascular Development and Disease. MDPI AG; 2021. p. 1–21.

XX. Bruss Z, Raja A. Physiology, Stroke Volume. StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing https://www.ncbi.nlm.nih.gov/books/NBK547686/. 2022.

XXI. Muir WW, Hamlin RL. Myocardial Contractility: Historical and Contemporary Considerations. Vol. 11, Frontiers in Physiology. Frontiers Media S.A.; 2020.

XXII. Moulton K, Bhutta B, Mullin J. Evaluation of Suspected Cardiac Arrhythmia. StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing https://www.ncbi.nlm.nih.gov/books/NBK585054/. 2023.

XXIII. Gauvrit S, Bossaer J, Lee J, Collins MM. Modeling Human Cardiac Arrhythmias: Insights from Zebrafish. Vol. 9, Journal of Cardiovascular Development and Disease. MDPI; 2022.

XXIV. Padala SK, Cabrera J, Ellenbogen KA. Anatomy of the cardiac conduction system. Pacing and Clinical Electrophysiology. 2021 Jan 12;44(1):15–25.

XXV. Miller C. Human Biology Chapter 14.3 Heart. Thompson River University Pressbooks; 2020.

XXVI. Husby MP, Soliman EZ, Goldberger JJ, Liu K, Lloyd-Jones D, Durazo-Arvizu R, et al. The association between the PR interval and left ventricular measurements in the multiethnic study of atherosclerosis. Cardiol Res Pract. 2015;2015.

XXVII. Mandal A, Holowiecki A, Song YC, Waxman JS. Wnt signaling balances specification of the cardiac and pharyngeal muscle fields. Mech Dev. 2017 Feb;143:32–41.