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A Langendorff-like System to Quantify Cardiac Pump Function in Adult Zebrafish

Overview
Journal Dis Model Mech
Specialty General Medicine
Date 2018 Jul 18
PMID 30012855
Citations 13
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Abstract

Zebrafish are increasingly used as a vertebrate model to study human cardiovascular disorders. Although heart structure and function are readily visualized in zebrafish embryos because of their optical transparency, the lack of effective tools for evaluating the hearts of older, nontransparent fish has been a major limiting factor. The recent development of high-frequency echocardiography has been an important advance for cardiac assessment, but it necessitates anesthesia and has limited ability to study acute interventions. We report the development of an alternative experimental technique for quantifying heart size and function that resembles the Langendorff heart preparations that have been widely used in mammalian models. Dissected adult zebrafish hearts were perfused with a calcium-containing buffer, and a beat frequency was maintained with electrical stimulation. The impact of pacing frequency, flow rate and perfusate calcium concentration on ventricular performance (including end-diastolic and end-systolic volumes, ejection fraction, radial strain, and maximal velocities of shortening and relaxation) were evaluated and optimal conditions defined. We determined the effects of age on heart function in wild-type male and female zebrafish, and successfully detected hypercontractile and hypocontractile responses after adrenergic stimulation or doxorubicin treatment, respectively. Good correlations were found between indices of cardiac contractility obtained with high-frequency echocardiography and with the technique in a subset of fish studied with both methods. The beating heart preparation is a valuable addition to the cardiac function tool kit that will expand the use of adult zebrafish for cardiovascular research.

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References
1.
Zhang P, Llach A, Ye Sheng X, Hove-Madsen L, Tibbits G . Calcium handling in zebrafish ventricular myocytes. Am J Physiol Regul Integr Comp Physiol. 2010; 300(1):R56-66. DOI: 10.1152/ajpregu.00377.2010. View

2.
Werdich A, Brzezinski A, Jeyaraj D, Sabeh M, Ficker E, Wan X . The zebrafish as a novel animal model to study the molecular mechanisms of mechano-electrical feedback in the heart. Prog Biophys Mol Biol. 2012; 110(2-3):154-65. PMC: 3663588. DOI: 10.1016/j.pbiomolbio.2012.07.006. View

3.
Asimaki A, Kapoor S, Plovie E, Karin Arndt A, Adams E, Liu Z . Identification of a new modulator of the intercalated disc in a zebrafish model of arrhythmogenic cardiomyopathy. Sci Transl Med. 2014; 6(240):240ra74. PMC: 4471875. DOI: 10.1126/scitranslmed.3008008. View

4.
Vedula V, Lee J, Xu H, Kuo C, Hsiai T, Marsden A . A method to quantify mechanobiologic forces during zebrafish cardiac development using 4-D light sheet imaging and computational modeling. PLoS Comput Biol. 2017; 13(10):e1005828. PMC: 5679653. DOI: 10.1371/journal.pcbi.1005828. View

5.
Reischauer S, Arnaout R, Ramadass R, Stainier D . Actin binding GFP allows 4D in vivo imaging of myofilament dynamics in the zebrafish heart and the identification of Erbb2 signaling as a remodeling factor of myofibril architecture. Circ Res. 2014; 115(10):845-56. PMC: 4371144. DOI: 10.1161/CIRCRESAHA.115.304356. View