Browse > Article
http://dx.doi.org/10.4196/kjpp.2019.23.1.63

Computational analysis of the electromechanical performance of mitral valve cerclage annuloplasty using a patient-specific ventricular model  

Lee, Kyung Eun (Department of Mechanical and Biomedical Engineering, Kangwon National University)
Kim, Ki Tae (Department of Mechanical and Biomedical Engineering, Kangwon National University)
Lee, Jong Ho (Department of Mechanical and Biomedical Engineering, Kangwon National University)
Jung, Sujin (Department of Cardiology, College of Medicine, Pusan National University)
Kim, June-Hong (Department of Cardiology, College of Medicine, Pusan National University)
Shim, Eun Bo (Department of Mechanical and Biomedical Engineering, Kangwon National University)
Publication Information
The Korean Journal of Physiology and Pharmacology / v.23, no.1, 2019 , pp. 63-70 More about this Journal
Abstract
We aimed to propose a novel computational approach to predict the electromechanical performance of pre- and post-mitral valve cerclage annuloplasty (MVCA). Furthermore, we tested a virtual estimation method to optimize the left ventricular basement tightening scheme using a pre-MVCA computer model. The present model combines the three-dimensional (3D) electromechanics of the ventricles with the vascular hemodynamics implemented in a lumped parameter model. 3D models of pre- and post-MVCA were reconstructed from the computed tomography (CT) images of two patients and simulated by solving the electromechanical-governing equations with the finite element method. Computed results indicate that reduction of the dilated heart chambers volume (reverse remodeling) appears to be dependent on ventricular stress distribution. Reduced ventricular stresses in the basement after MVCA treatment were observed in the patients who showed reverse remodeling of heart during follow up over 6 months. In the case who failed to show reverse remodeling after MVCA, more virtual tightening of the ventricular basement diameter than the actual model can induce stress unloading, aiding in heart recovery. The simulation result that virtual tightening of the ventricular basement resulted in a marked increase of myocardial stress unloading provides in silico evidence for a functional impact of MVCA treatment on cardiac mechanics and post-operative heart recovery. This technique contributes to establishing a pre-operative virtual rehearsal procedure before MVCA treatment by using patient-specific cardiac electromechanical modeling of pre-MVCA.
Keywords
Lumped parameter model; Mitral valve cerclage annuloplasty; Patient-specific model; Ventricular electromechanical model;
Citations & Related Records
연도 인용수 순위
  • Reference
1 Kim JH, Sung SC, Chon MK, Kim JO, Lee SH, Lee SY, Je HG, Choo KS, Hwang JM, Kim JS, Park YH, Chun KJ, Kim CM. Mitral loop cerclage as a variant form of mitral cerclage annuloplasty that adds a device (CSTV) for preventing potential complications: a preclinical proof of concept and feasibility study. EuroIntervention. 2016;11:e1669-1679.   DOI
2 Park YH, Chon MK, Lederman RJ, Sung SC, Je HG, Choo KS, Lee SH, Shin ES, Kim JS, Hwang KW, Lee SY, Chun KJ, Kim CM, Kim JH. Mitral loop cerclage annuloplasty for secondary mitral regurgitation: first human results. JACC Cardiovasc Interv. 2017;10:597-610.   DOI
3 Kono T, Sabbah HN, Stein PD, Brymer JF, Khaja F. Left ventricular shape as a determinant of functional mitral regurgitation in patients with severe heart failure secondary to either coronary artery disease or idiopathic dilated cardiomyopathy. Am J Cardiol. 1991;68:355-359.   DOI
4 Lorell BH, Carabello BA. Left ventricular hypertrophy: pathogenesis, detection, and prognosis. Circulation. 2000;102:470-479.   DOI
5 Herrmann HC, Maisano F. Transcatheter therapy of mitral regurgitation. Circulation. 2014;130:1712-1722.   DOI
6 Sabbah HN, Kono T, Rosman H, Jafri S, Stein PD, Goldstein S. Left ventricular shape: a factor in the etiology of functional mitral regurgitation in heart failure. Am Heart J. 1992;123:961-966.   DOI
7 Tibayan FA, Rodriguez F, Langer F, Liang D, Daughters GT, Ingels NB Jr, Miller DC. Undersized mitral annuloplasty alters left ventricular shape during acute ischemic mitral regurgitation. Circulation. 2004;110(11 Suppl 1):II98-102.
8 Lim KM, Constantino J, Gurev V, Zhu R, Shim EB, Trayanova NA. Comparison of the effects of continuous and pulsatile left ventricular-assist devices on ventricular unloading using a cardiac electromechanics model. J Physiol Sci. 2012;62:11-19.   DOI
9 Lim KM, Hong SB, Lee BK, Shim EB, Trayanova N. Computational analysis of the effect of valvular regurgitation on ventricular mechanics using a 3D electromechanics model. J Physiol Sci. 2015;65:159-164.   DOI
10 Yuniarti AR, Lim KM. The effect of electrical conductivity of myocardium on cardiac pumping efficacy: a computational study. Biomed Eng Online. 2017;16:11.   DOI
11 Kim JH, Kocaturk O, Ozturk C, Faranesh AZ, Sonmez M, Sampath S, Saikus CE, Kim AH, Raman VK, Derbyshire JA, Schenke WH, Wright VJ, Berry C, McVeigh ER, Lederman RJ. Mitral cerclage annuloplasty, a novel transcatheter treatment for secondary mitral valve regurgitation: initial results in swine. J Am Coll Cardiol. 2009;54:638-651.   DOI
12 Gurev V, Lee T, Constantino J, Arevalo H, Trayanova NA. Models of cardiac electromechanics based on individual hearts imaging data: image-based electromechanical models of the heart. Biomech Model Mechanobiol. 2011;10:295-306.   DOI
13 Trayanova NA, Constantino J, Gurev V. Electromechanical models of the ventricles. Am J Physiol Heart Circ Physiol. 2011;301:H279-286.   DOI
14 Watanabe H, Hisada T, Sugiura S, Okada J, Fukunari H. Computer simulation of blood flow, left ventricular wall motion and their interrelationship by fluid-structure interaction finite element method. JSME. 2002;45:1003-1012.
15 Kerckhoffs RCP, Healy SN, Usyk TP, McCulloch AD. Computational methods for cardiac electromechanics. Proc IEEE. 2006;94:769-783.   DOI
16 ten Tusscher KH, Panfilov AV. Alternans and spiral breakup in a human ventricular tissue model. Am J Physiol Heart Circ Physiol. 2006;291:H1088-1100.   DOI
17 Rice JJ, Wang F, Bers DM, de Tombe PP. Approximate model of cooperative activation and crossbridge cycling in cardiac muscle using ordinary differential equations. Biophys J. 2008;95:2368-2390.   DOI