Fluid structure computational model of simulating mitral valve motion in a contracting left ventricle

被引:5
作者
Alharbi, Yousef [1 ,2 ,7 ]
Al Abed, Amr [2 ]
Bakir, Azam Ahmad [2 ,3 ]
Lovell, Nigel H. [2 ]
Muller, David W. M. [4 ,5 ]
Otton, James [4 ,6 ]
Dokos, Socrates [2 ]
机构
[1] Prince Sattam Bin Abdulaziz Univ, Coll Appl Med Sci, Al Kharj, Saudi Arabia
[2] Univ New South Wales, Grad Sch Biomed Engn, Sydney, Australia
[3] Univ Southampton, Malaysia Campus, Iskandar Puteri, Johor, Malaysia
[4] Victor Chang Cardiac Res Inst, Sydney, Australia
[5] St Vincents Hosp, Dept Cardiol & Cardiothorac Surg, Sydney, Australia
[6] Liverpool Hosp, Dept Cardiol, Sydney, Australia
[7] Prince Sattam bin Abdulaziz Univ, Al Kharj 11942, Riyadh, Saudi Arabia
关键词
Mitral valve; Left ventricle; Fluid structure interaction; Regurgitation; Computational model; VITRO DYNAMIC STRAIN; MECHANICAL-PROPERTIES; NUMERICAL-SIMULATION; HEART; REGURGITATION; FLOW; REPLACEMENT; OBSTRUCTION; MYOCARDIUM; ANNULUS;
D O I
10.1016/j.compbiomed.2022.105834
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: Fluid structure interaction simulations h hold promise in studying normal and abnormal cardiac function, including the effect of fluid dynamics on mitral valve (MV) leaflet motion. The goal of this study was to develop a 3D fluid structure interaction computational model to simulate bileaflet MV when interacting with blood motion in left ventricle (LV).Methods: The model consists of ideal geometric-shaped MV leaflets and the LV, with MV dimensions based on human anatomical measurements. An experimentally-based hyperelastic isotropic material was used to model the mechanical behaviour of the MV leaflets, with chordae tendineae and papillary muscle tips also incorporated. LV myocardial tissue was prescribed using a transverse isotropic hyperelastic formulation. Incompressible Navier-Stokes fluid formulations were used to govern the blood motion, and the Arbitrary Lagrangian Eulerian (ALE) method was employed to determine the mesh deformation of the fluid and solid domains due to trans-valvular pressure on MV boundaries and the resulting leaflet movement.Results: The LV-MV generic model was able to reproduce physiological MV leaflet opening and closing profiles resulting from the time-varying atrial and ventricular pressures, as well as simulating normal and prolapsed MV states. Additionally, the model was able to simulate blood flow patterns after insertion of a prosthetic MV with and without left ventricular outflow tract flow obstruction. In the MV-LV normal model, the regurgitant blood flow fraction was 10.1 %, with no abnormality in cardiac function according to the mitral regurgitation severity grades reported by the American Society of Echocardiography.Conclusion: Our simulation approach provides insights into intraventricular fluid dynamics in a contracting LV with normal and prolapsed MV function, as well as aiding in the understanding of possible complications after transcatheter MV implantation prior to clinical trials.
引用
收藏
页数:16
相关论文
共 50 条
  • [41] Paravalvular Abscess of the Mitral Valve with Fistula to the Left Ventricle and Detachment of the Coronary Sinus in a Young Woman
    Amano, Jun
    Takahashi, Kohei
    Seto, Tatsuichiro
    Terasaki, Takamitsu
    Wada, Yuko Fabish
    Fukui, Daisuke
    Takano, Tamaki
    ANNALS OF THORACIC AND CARDIOVASCULAR SURGERY, 2014, 20 : 720 - 724
  • [42] A 3D-0D Computational Model of the Left Ventricle for Investigating Blood Flow Patterns for Cases of Systolic Anterior Motion and after Anterior Mitral Leaflet Splitting
    Alharbi, Yousef
    APPLIED SCIENCES-BASEL, 2024, 14 (01):
  • [43] Asymptotic Model of Fluid–Tissue Interaction for Mitral Valve Dynamics
    Federico Domenichini
    Gianni Pedrizzetti
    Cardiovascular Engineering and Technology, 2015, 6 : 95 - 104
  • [44] Augmenting mitral valve repair evaluation with intraoperative left ventricle pressure measurements
    Issa, Hugo
    Deng, Mimi
    Rahmouni, Kenza
    Chan, Vincent
    INTERACTIVE CARDIOVASCULAR AND THORACIC SURGERY, 2022, 35 (05)
  • [45] Computational modeling and validation of intraventricular flow in a simple model of the left ventricle
    Vedula, Vijay
    Fortini, Stefania
    Seo, Jung-Hee
    Querzoli, Giorgio
    Mittal, Rajat
    THEORETICAL AND COMPUTATIONAL FLUID DYNAMICS, 2014, 28 (06) : 589 - 604
  • [46] Mitral valve-sparing resection of huge left ventricle cardiac fibroma
    Montant, P.
    Mfou'ou, S.
    Pozzi, M.
    Saroul, C.
    Mansour, Ph.
    Chalabreysse, L.
    Obadia, J. F.
    INTERNATIONAL JOURNAL OF CARDIOLOGY, 2014, 172 (01) : E210 - E211
  • [47] Posterior Restoration of Left Ventricle and Mitral Valve Repair in Patients With Muscular Dystrophy
    Hirota, Masanori
    Hoshino, Joji
    Fukada, Yasuhisa
    Kondo, Taichi
    Takahashi, Yu
    Notomi, Yuichi
    Isomura, Tadashi
    ANNALS OF THORACIC SURGERY, 2014, 97 (02) : 577 - 581
  • [48] Co-simulation of hypertensive left ventricle based on computational fluid dynamics and a closed-loop network model
    Zuo, Xiaowen
    Xu, Zhike
    Jia, Huaping
    Mu, Yang
    Zhang, Mingming
    Yuan, Manli
    Wu, Chengwei
    COMPUTER METHODS AND PROGRAMS IN BIOMEDICINE, 2022, 216
  • [49] Classic Mitral Valve Prolapse Causes Enlargement in Left Ventricle Even in the Absence of Significant Mitral Regurgitation
    Yiginer, Omer
    Keser, Nurgul
    Ozmen, Namik
    Tokatli, Alptug
    Kardesoglu, Ejder
    Isilak, Zafer
    Uz, Omer
    Uzun, Mehmet
    ECHOCARDIOGRAPHY-A JOURNAL OF CARDIOVASCULAR ULTRASOUND AND ALLIED TECHNIQUES, 2012, 29 (02): : 123 - 129
  • [50] Hemodynamic and Energetic Aspects of the Left Ventricle in Patients With Mitral Regurgitation Before and After Mitral Valve Surgery
    Al-Wakeel, Nadya
    Fernandes, Joao Filipe
    Amiri, Aref
    Siniawski, Henryk
    Goubergrits, Leonid
    Berger, Felix
    Kuehne, Titus
    JOURNAL OF MAGNETIC RESONANCE IMAGING, 2015, 42 (06) : 1705 - 1712