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    A Method for Automatically Optimizing Medical Devices for Treating Heart Failure: Designing Polymeric Injection Patterns

    Source: Journal of Biomechanical Engineering:;2009:;volume( 131 ):;issue: 012::page 121011
    Author:
    Jonathan F. Wenk
    ,
    Hani N. Sabbah
    ,
    Mike Burger
    ,
    Mark B. Ratcliffe
    ,
    Julius M. Guccione
    ,
    Nielen Stander
    ,
    Samuel T. Wall
    ,
    Robert C. Peterson
    ,
    Sam L. Helgerson
    DOI: 10.1115/1.4000165
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Heart failure continues to present a significant medical and economic burden throughout the developed world. Novel treatments involving the injection of polymeric materials into the myocardium of the failing left ventricle (LV) are currently being developed, which may reduce elevated myofiber stresses during the cardiac cycle and act to retard the progression of heart failure. A finite element (FE) simulation-based method was developed in this study that can automatically optimize the injection pattern of the polymeric “inclusions” according to a specific objective function, using commercially available software tools. The FE preprocessor TRUEGRID ® was used to create a parametric axisymmetric LV mesh matched to experimentally measured end-diastole and end-systole metrics from dogs with coronary microembolization-induced heart failure. Passive and active myocardial material properties were defined by a pseudo-elastic-strain energy function and a time-varying elastance model of active contraction, respectively, that were implemented in the FE software LS-DYNA . The companion optimization software LS-OPT was used to communicate directly with TRUEGRID ® to determine FE model parameters, such as defining the injection pattern and inclusion characteristics. The optimization resulted in an intuitive optimal injection pattern (i.e., the one with the greatest number of inclusions) when the objective function was weighted to minimize mean end-diastolic and end-systolic myofiber stress and ignore LV stroke volume. In contrast, the optimization resulted in a nonintuitive optimal pattern (i.e., 3 inclusions longitudinally×6 inclusions circumferentially) when both myofiber stress and stroke volume were incorporated into the objective function with different weights.
    keyword(s): Design , Medical devices , Optimization , Stress , Failure , Finite element model , Myocardium , Computer software , Materials properties AND Simulation ,
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      A Method for Automatically Optimizing Medical Devices for Treating Heart Failure: Designing Polymeric Injection Patterns

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    http://yetl.yabesh.ir/yetl1/handle/yetl/139809
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    • Journal of Biomechanical Engineering

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    contributor authorJonathan F. Wenk
    contributor authorHani N. Sabbah
    contributor authorMike Burger
    contributor authorMark B. Ratcliffe
    contributor authorJulius M. Guccione
    contributor authorNielen Stander
    contributor authorSamuel T. Wall
    contributor authorRobert C. Peterson
    contributor authorSam L. Helgerson
    date accessioned2017-05-09T00:31:27Z
    date available2017-05-09T00:31:27Z
    date copyrightDecember, 2009
    date issued2009
    identifier issn0148-0731
    identifier otherJBENDY-27079#121011_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/139809
    description abstractHeart failure continues to present a significant medical and economic burden throughout the developed world. Novel treatments involving the injection of polymeric materials into the myocardium of the failing left ventricle (LV) are currently being developed, which may reduce elevated myofiber stresses during the cardiac cycle and act to retard the progression of heart failure. A finite element (FE) simulation-based method was developed in this study that can automatically optimize the injection pattern of the polymeric “inclusions” according to a specific objective function, using commercially available software tools. The FE preprocessor TRUEGRID ® was used to create a parametric axisymmetric LV mesh matched to experimentally measured end-diastole and end-systole metrics from dogs with coronary microembolization-induced heart failure. Passive and active myocardial material properties were defined by a pseudo-elastic-strain energy function and a time-varying elastance model of active contraction, respectively, that were implemented in the FE software LS-DYNA . The companion optimization software LS-OPT was used to communicate directly with TRUEGRID ® to determine FE model parameters, such as defining the injection pattern and inclusion characteristics. The optimization resulted in an intuitive optimal injection pattern (i.e., the one with the greatest number of inclusions) when the objective function was weighted to minimize mean end-diastolic and end-systolic myofiber stress and ignore LV stroke volume. In contrast, the optimization resulted in a nonintuitive optimal pattern (i.e., 3 inclusions longitudinally×6 inclusions circumferentially) when both myofiber stress and stroke volume were incorporated into the objective function with different weights.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleA Method for Automatically Optimizing Medical Devices for Treating Heart Failure: Designing Polymeric Injection Patterns
    typeJournal Paper
    journal volume131
    journal issue12
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.4000165
    journal fristpage121011
    identifier eissn1528-8951
    keywordsDesign
    keywordsMedical devices
    keywordsOptimization
    keywordsStress
    keywordsFailure
    keywordsFinite element model
    keywordsMyocardium
    keywordsComputer software
    keywordsMaterials properties AND Simulation
    treeJournal of Biomechanical Engineering:;2009:;volume( 131 ):;issue: 012
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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