Musclemotion: A versatile open software tool to quantify cardiomyocyte and cardiac muscle contraction in vitro and in vivo
Sala, Luca; Van Meer, Berend J.; Tertoolen, Leon G.J.; Bakkers, Jeroen; Bellin, Milena; Davis, Richard P.; Denning, Chris; Dieben, Michel A.E.; Eschenhagen, Thomas; Giacomelli, Elisa; Grandela, Catarina; Hansen, Arne; Holman, Eduard R.; Jongbloed, Monique R.M.; Kamel, Sarah M.; Koopman, Charlotte D.; Lachaud, Quentin; Mannhardt, Ingra; Mol, Mervyn P.H.; Mosqueira, Diogo; Orlova, Valeria V.; Passier, Robert; Ribeiro, Marcelo C.; Saleem, Umber; Smith, Godfrey L.; Burton, Francis L.; Mummery, Christine L.
(2018) Circulation Research, volume 122, issue 3, pp. e5 - e16
(Article)
Abstract
Rationale: There are several methods to measure cardiomyocyte and muscle contraction, but these require customized hardware, expensive apparatus, and advanced informatics or can only be used in single experimental models. Consequently, data and techniques have been difficult to reproduce across models and laboratories, analysis is time consuming, and only specialist
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researchers can quantify data. Objective: Here, we describe and validate an automated, open-source software tool (MUSCLEMOTION) adaptable for use with standard laboratory and clinical imaging equipment that enables quantitative analysis of normal cardiac contraction, disease phenotypes, and pharmacological responses. Methods and Results: MUSCLEMOTION allowed rapid and easy measurement of movement from high-speed movies in (1) 1-dimensional in vitro models, such as isolated adult and human pluripotent stem cell-derived cardiomyocytes; (2) 2-dimensional in vitro models, such as beating cardiomyocyte monolayers or small clusters of human pluripotent stem cell-derived cardiomyocytes; (3) 3-dimensional multicellular in vitro or in vivo contractile tissues, such as cardiac “organoids,” engineered heart tissues, and zebrafish and human hearts. MUSCLEMOTION was effective under different recording conditions (bright-field microscopy with simultaneous patch-clamp recording, phase contrast microscopy, and traction force microscopy). Outcomes were virtually identical to the current gold standards for contraction measurement, such as optical flow, post deflection, edge-detection systems, or manual analyses. Finally, we used the algorithm to quantify contraction in in vitro and in vivo arrhythmia models and to measure pharmacological responses. Conclusions: Using a single open-source method for processing video recordings, we obtained reliable pharmacological data and measures of cardiac disease phenotype in experimental cell, animal, and human models.
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Keywords: arrhythmias, cardiac, humans, pluripotent stem cells, software, zebrafish, Physiology, Cardiology and Cardiovascular Medicine
ISSN: 0009-7330
Publisher: Lippincott Williams & Wilkins
Note: Publisher Copyright: © 2017 The Authors.
(Peer reviewed)