Right Ventricular Imaging and Computer Simulation for Electromechanical Substrate Characterization in Arrhythmogenic Right Ventricular Cardiomyopathy

Publication date

2016-11-15

Authors

Mast, Thomas P.
Teske, Arco J.ISNI 0000000396645403
Walmsley, John
van der Heijden, Jeroen FISNI 0000000396634202
van Es, RenéORCID 0000-0001-9950-4388
Prinzen, Frits W
Delhaas, Tammo
van Veen, ToonISNI 0000000394849488
Loh, PeterISNI 0000000357477339
Doevendans, PieterISNI 0000000110574516

Editors

Advisors

Supervisors

Document Type

Article

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License

taverne

Abstract

BACKGROUND: Previous studies suggested that electrical abnormalities precede overt structural disease in arrhythmogenic right ventricular cardiomyopathy (ARVC). Abnormal RV deformation has been reported in early ARVC without structural abnormalities. The pathophysiological mechanisms underlying these abnormalities remain unknown. OBJECTIVES: The authors used imaging and computer simulation to differentiate electrical from mechanical tissue substrates among ARVC clinical stages. METHODS: ARVC desmosomal mutation carriers (n = 84) were evaluated by electrocardiography (ECG), Holter monitoring, late-enhancement cardiac magnetic resonance imaging, and echocardiographic RV deformation imaging. Subjects were categorized based on the presence of 2010 International Task Force criteria: 1) subclinical stage (n = 21); 2) electrical stage (n = 15); and 3) structural stage (n = 48). Late enhancement was not present in any subclinical or electrical stage subjects. RESULTS: Three distinctive characteristic RV longitudinal deformation patterns were identified: type I: normal deformation (n = 12); type II: delayed onset of shortening, reduced systolic peak strain, and mild post-systolic shortening (n = 35); and type III: systolic stretching with large post-systolic shortening (n = 37). A majority (69%) of structural staged mutation carriers were type III, whereas a large proportion of both electrical and subclinical stage subjects (67% and 48%, respectively) were type II. Computer simulations demonstrated that the type II pattern can be explained by a combination of reduced contractility and mildly increased passive myocardial stiffness. This evolved into type III by aggravating both mechanical substrates. Electrical activation delay alone explained none of the patterns. CONCLUSIONS: Different ARVC stages were characterized by distinct RV deformation patterns, all of which could be reproduced by simulating different degrees of mechanical substrates. Subclinical and electrical staged ARVC subjects already showed signs of local mechanical abnormalities. Our novel approach could lead to earlier disease detection and, thereby, influence current definitions of electrical and subclinical ARVC stages.

Keywords

arrhythmogenic right ventricular dysplasia, computer model, contractility, myocardial tissue, strain, Taverne, Journal Article

Citation

Mast, TP, Teske, A J, Walmsley, J, van der Heijden, J F, van Es, R, Prinzen, F W, Delhaas, T, van Veen, T A, Loh, KP, Doevendans, P A, Cramer, M J & Lumens, J 2016, 'Right Ventricular Imaging and Computer Simulation for Electromechanical Substrate Characterization in Arrhythmogenic Right Ventricular Cardiomyopathy', Journal of the American College of Cardiology, vol. 68, no. 20, pp. 2185-2197. https://doi.org/10.1016/j.jacc.2016.08.061