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    An In Silico Model for Predicting the Efficacy of Edge-to-Edge Repair for Mitral Regurgitation

    Source: Journal of Biomechanical Engineering:;2023:;volume( 146 ):;issue: 002::page 21004-1
    Author:
    Ooida, Junichi
    ,
    Kiyohara, Naoki
    ,
    Noguchi, Hironaga
    ,
    Oguchi, Yuichiro
    ,
    Nagane, Kohei
    ,
    Sakaguchi, Takuya
    ,
    Aoyama, Gakuto
    ,
    Shige, Fumimasa
    ,
    Chapman, James V.
    ,
    Asami, Masahiko
    ,
    Kofoed, Klaus Fuglsang
    ,
    Pham, Michael Huy Cuong
    ,
    Suzuki, Koshiro
    DOI: 10.1115/1.4064055
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: In recent years, transcatheter edge-to-edge repair (TEER) has been widely adopted as an effective treatment for mitral regurgitation (MR). The aim of this study is to develop a personalized in silico model to predict the effect of edge-to-edge repair in advance to the procedure for each individual patient. For this purpose, we propose a combination of a valve deformation model for computing the mitral valve (MV) orifice area (MVOA) and a lumped parameter model for the hemodynamics, specifically mitral regurgitation volume (RVol). Although we cannot obtain detailed information on the three-dimensional flow field near the mitral valve, we can rapidly simulate the important medical parameters for the clinical decision support. In the present method, we construct the patient-specific pre-operative models by using the parameter optimization and then simulate the postoperative state by applying the additional clipping condition. The computed preclip MVOAs show good agreement with the clinical measurements, and the correlation coefficient takes 0.998. In addition, the MR grade in terms of RVol also has good correlation with the grade by ground truth MVOA. Finally, we try to investigate the applicability for the predicting the postclip state. The simulated valve shapes clearly show the well-known double orifice and the improvement of the MVOA, compared with the preclip state. Similarly, we confirmed the improved reverse flow and MR grade in terms of RVol. A total computational time is approximately 8 h by using general-purpose PC. These results obviously indicate that the present in silico model has good capability for the assessment of edge-to-edge repair.
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      An In Silico Model for Predicting the Efficacy of Edge-to-Edge Repair for Mitral Regurgitation

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    contributor authorOoida, Junichi
    contributor authorKiyohara, Naoki
    contributor authorNoguchi, Hironaga
    contributor authorOguchi, Yuichiro
    contributor authorNagane, Kohei
    contributor authorSakaguchi, Takuya
    contributor authorAoyama, Gakuto
    contributor authorShige, Fumimasa
    contributor authorChapman, James V.
    contributor authorAsami, Masahiko
    contributor authorKofoed, Klaus Fuglsang
    contributor authorPham, Michael Huy Cuong
    contributor authorSuzuki, Koshiro
    date accessioned2024-12-24T18:57:37Z
    date available2024-12-24T18:57:37Z
    date copyright12/12/2023 12:00:00 AM
    date issued2023
    identifier issn0148-0731
    identifier otherbio_146_02_021004.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4303050
    description abstractIn recent years, transcatheter edge-to-edge repair (TEER) has been widely adopted as an effective treatment for mitral regurgitation (MR). The aim of this study is to develop a personalized in silico model to predict the effect of edge-to-edge repair in advance to the procedure for each individual patient. For this purpose, we propose a combination of a valve deformation model for computing the mitral valve (MV) orifice area (MVOA) and a lumped parameter model for the hemodynamics, specifically mitral regurgitation volume (RVol). Although we cannot obtain detailed information on the three-dimensional flow field near the mitral valve, we can rapidly simulate the important medical parameters for the clinical decision support. In the present method, we construct the patient-specific pre-operative models by using the parameter optimization and then simulate the postoperative state by applying the additional clipping condition. The computed preclip MVOAs show good agreement with the clinical measurements, and the correlation coefficient takes 0.998. In addition, the MR grade in terms of RVol also has good correlation with the grade by ground truth MVOA. Finally, we try to investigate the applicability for the predicting the postclip state. The simulated valve shapes clearly show the well-known double orifice and the improvement of the MVOA, compared with the preclip state. Similarly, we confirmed the improved reverse flow and MR grade in terms of RVol. A total computational time is approximately 8 h by using general-purpose PC. These results obviously indicate that the present in silico model has good capability for the assessment of edge-to-edge repair.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleAn In Silico Model for Predicting the Efficacy of Edge-to-Edge Repair for Mitral Regurgitation
    typeJournal Paper
    journal volume146
    journal issue2
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.4064055
    journal fristpage21004-1
    journal lastpage21004-15
    page15
    treeJournal of Biomechanical Engineering:;2023:;volume( 146 ):;issue: 002
    contenttypeFulltext
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