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    Accurate and Efficient Plate and Rod Microfinite Element Models for Whole Bone Segments Based on High-Resolution Peripheral Computed Tomography

    Source: Journal of Biomechanical Engineering:;2019:;volume( 141 ):;issue: 004::page 41005
    Author:
    Wang, Ji
    ,
    Zhou, Bin
    ,
    Jenny Hu, Yizhong
    ,
    Zhang, Zhendong
    ,
    Eric Yu, Y.
    ,
    Nawathe, Shashank
    ,
    Nishiyama, Kyle K.
    ,
    Keaveny, Tony M.
    ,
    Shane, Elizabeth
    ,
    Edward Guo, X.
    DOI: 10.1115/1.4042680
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: The high-resolution peripheral quantitative computed tomography (HR-pQCT) provides unprecedented visualization of bone microstructure and the basis for constructing patient-specific microfinite element (μFE) models. Based on HR-pQCT images, we have developed a plate-and-rod μFE (PR μFE) method for whole bone segments using individual trabecula segmentation (ITS) and an adaptive cortical meshing technique. In contrast to the conventional voxel approach, the complex microarchitecture of the trabecular compartment is simplified into shell and beam elements based on the trabecular plate-and-rod configuration. In comparison to voxel-based μFE models of μCT and measurements from mechanical testing, the computational and experimental gold standards, nonlinear analyses of stiffness and yield strength using the HR-pQCT-based PR μFE models demonstrated high correlation and accuracy. These results indicated that the combination of segmented trabecular plate-rod morphology and adjusted cortical mesh adequately captures mechanics of the whole bone segment. Meanwhile, the PR μFE modeling approach reduced model size by nearly 300-fold and shortened computation time for nonlinear analysis from days to within hours, permitting broader clinical application of HR-pQCT-based nonlinear μFE modeling. Furthermore, the presented approach was tested using a subset of radius and tibia HR-pQCT scans of patients with prior vertebral fracture in a previously published study. Results indicated that yield strength for radius and tibia whole bone segments predicted by the PR μFE model was effective in discriminating vertebral fracture subjects from nonfractured controls. In conclusion, the PR μFE model of HR-pQCT images accurately predicted mechanics for whole bone segments and can serve as a valuable clinical tool to evaluate musculoskeletal diseases.
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      Accurate and Efficient Plate and Rod Microfinite Element Models for Whole Bone Segments Based on High-Resolution Peripheral Computed Tomography

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    contributor authorWang, Ji
    contributor authorZhou, Bin
    contributor authorJenny Hu, Yizhong
    contributor authorZhang, Zhendong
    contributor authorEric Yu, Y.
    contributor authorNawathe, Shashank
    contributor authorNishiyama, Kyle K.
    contributor authorKeaveny, Tony M.
    contributor authorShane, Elizabeth
    contributor authorEdward Guo, X.
    date accessioned2019-03-17T10:09:57Z
    date available2019-03-17T10:09:57Z
    date copyright2/25/2019 12:00:00 AM
    date issued2019
    identifier issn0148-0731
    identifier otherbio_141_04_041005.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4255960
    description abstractThe high-resolution peripheral quantitative computed tomography (HR-pQCT) provides unprecedented visualization of bone microstructure and the basis for constructing patient-specific microfinite element (μFE) models. Based on HR-pQCT images, we have developed a plate-and-rod μFE (PR μFE) method for whole bone segments using individual trabecula segmentation (ITS) and an adaptive cortical meshing technique. In contrast to the conventional voxel approach, the complex microarchitecture of the trabecular compartment is simplified into shell and beam elements based on the trabecular plate-and-rod configuration. In comparison to voxel-based μFE models of μCT and measurements from mechanical testing, the computational and experimental gold standards, nonlinear analyses of stiffness and yield strength using the HR-pQCT-based PR μFE models demonstrated high correlation and accuracy. These results indicated that the combination of segmented trabecular plate-rod morphology and adjusted cortical mesh adequately captures mechanics of the whole bone segment. Meanwhile, the PR μFE modeling approach reduced model size by nearly 300-fold and shortened computation time for nonlinear analysis from days to within hours, permitting broader clinical application of HR-pQCT-based nonlinear μFE modeling. Furthermore, the presented approach was tested using a subset of radius and tibia HR-pQCT scans of patients with prior vertebral fracture in a previously published study. Results indicated that yield strength for radius and tibia whole bone segments predicted by the PR μFE model was effective in discriminating vertebral fracture subjects from nonfractured controls. In conclusion, the PR μFE model of HR-pQCT images accurately predicted mechanics for whole bone segments and can serve as a valuable clinical tool to evaluate musculoskeletal diseases.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleAccurate and Efficient Plate and Rod Microfinite Element Models for Whole Bone Segments Based on High-Resolution Peripheral Computed Tomography
    typeJournal Paper
    journal volume141
    journal issue4
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.4042680
    journal fristpage41005
    journal lastpage041005-9
    treeJournal of Biomechanical Engineering:;2019:;volume( 141 ):;issue: 004
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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