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    Thromboresistance Comparison of the HeartMate II Ventricular Assist Device With the Device Thrombogenicity Emulation Optimized HeartAssist 5 VAD

    Source: Journal of Biomechanical Engineering:;2014:;volume( 136 ):;issue: 002::page 21014
    Author:
    Chiu, Wei
    ,
    Girdhar, Gaurav
    ,
    Xenos, Michalis
    ,
    Alemu, Yared
    ,
    Soares, Jأµao S.
    ,
    Einav, Shmuel
    ,
    Slepian, Marvin
    ,
    Bluestein, Danny
    DOI: 10.1115/1.4026254
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Approximately 7.5 أ— 106 patients in the US currently suffer from endstage heart failure. The FDA has recently approved the designations of the Thoratec HeartMate II ventricular assist device (VAD) for both bridgetotransplant and destination therapy (DT) due to its mechanical durability and improved hemodynamics. However, incidence of pump thrombosis and thromboembolic events remains high, and the lifelong complex pharmacological regimens are mandatory in its VAD recipients. We have previously successfully applied our device thrombogenicity emulation (DTE) methodology for optimizing device thromboresistance to the Micromed Debakey VAD, and demonstrated that optimizing device features implicated in exposing blood to elevated shear stresses and exposure times significantly reduces shearinduced platelet activation and significantly improves the device thromboresistance. In the present study, we compared the thrombogenicity of the FDAapproved HeartMate II VAD with the DTEoptimized Debakey VAD (now labeled HeartAssist 5). With quantitative probability density functions of the stress accumulation along large number of platelet trajectories within each device which were extracted from numerical flow simulations in each device, and through measurements of platelet activation rates in recirculation flow loops, we specifically show that: (a) Platelets flowing through the HeartAssist 5 are exposed to significantly lower stress accumulation that lead to platelet activation than the HeartMate II, especially at the impellershroud gap regions (b) Thrombus formation patterns observed in the HeartMate II are absent in the HeartAssist 5 (c) Platelet activation rates (PAR) measured in vitro with the VADs mounted in recirculation flowloops show a 2.5fold significantly higher PAR value for the HeartMate II. This head to head thrombogenic performance comparative study of the two VADs, one optimized with the DTE methodology and one FDAapproved, demonstrates the efficacy of the DTE methodology for drastically reducing the device thrombogenic potential, validating the need for a robust in silico/in vitro optimization methodology for improving cardiovascular devices thromboresistance.
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      Thromboresistance Comparison of the HeartMate II Ventricular Assist Device With the Device Thrombogenicity Emulation Optimized HeartAssist 5 VAD

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    contributor authorChiu, Wei
    contributor authorGirdhar, Gaurav
    contributor authorXenos, Michalis
    contributor authorAlemu, Yared
    contributor authorSoares, Jأµao S.
    contributor authorEinav, Shmuel
    contributor authorSlepian, Marvin
    contributor authorBluestein, Danny
    date accessioned2017-05-09T01:05:16Z
    date available2017-05-09T01:05:16Z
    date issued2014
    identifier issn0148-0731
    identifier otherbio_136_02_021014.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/153953
    description abstractApproximately 7.5 أ— 106 patients in the US currently suffer from endstage heart failure. The FDA has recently approved the designations of the Thoratec HeartMate II ventricular assist device (VAD) for both bridgetotransplant and destination therapy (DT) due to its mechanical durability and improved hemodynamics. However, incidence of pump thrombosis and thromboembolic events remains high, and the lifelong complex pharmacological regimens are mandatory in its VAD recipients. We have previously successfully applied our device thrombogenicity emulation (DTE) methodology for optimizing device thromboresistance to the Micromed Debakey VAD, and demonstrated that optimizing device features implicated in exposing blood to elevated shear stresses and exposure times significantly reduces shearinduced platelet activation and significantly improves the device thromboresistance. In the present study, we compared the thrombogenicity of the FDAapproved HeartMate II VAD with the DTEoptimized Debakey VAD (now labeled HeartAssist 5). With quantitative probability density functions of the stress accumulation along large number of platelet trajectories within each device which were extracted from numerical flow simulations in each device, and through measurements of platelet activation rates in recirculation flow loops, we specifically show that: (a) Platelets flowing through the HeartAssist 5 are exposed to significantly lower stress accumulation that lead to platelet activation than the HeartMate II, especially at the impellershroud gap regions (b) Thrombus formation patterns observed in the HeartMate II are absent in the HeartAssist 5 (c) Platelet activation rates (PAR) measured in vitro with the VADs mounted in recirculation flowloops show a 2.5fold significantly higher PAR value for the HeartMate II. This head to head thrombogenic performance comparative study of the two VADs, one optimized with the DTE methodology and one FDAapproved, demonstrates the efficacy of the DTE methodology for drastically reducing the device thrombogenic potential, validating the need for a robust in silico/in vitro optimization methodology for improving cardiovascular devices thromboresistance.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleThromboresistance Comparison of the HeartMate II Ventricular Assist Device With the Device Thrombogenicity Emulation Optimized HeartAssist 5 VAD
    typeJournal Paper
    journal volume136
    journal issue2
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.4026254
    journal fristpage21014
    journal lastpage21014
    identifier eissn1528-8951
    treeJournal of Biomechanical Engineering:;2014:;volume( 136 ):;issue: 002
    contenttypeFulltext
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