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    Investigating the Regional, Directional, and Rate-Dependent Mechanical Response of Fixed Human Brain Tissue Under Compression

    Source: Journal of Biomechanical Engineering:;2026:;volume( 148 ):;issue:005::page 5
    Author:
    Camarillo, Alejandro Matos
    ,
    Baggaley, Michael
    ,
    Rabey, Karyne N.
    ,
    Hogan, James D.
    ,
    Romanyk, Dan L.
    DOI: 10.1115/1.4070588
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Abstract. Assuming homogeneous mechanical properties for all brain tissue in computational simulations may lead to inaccurate predictions of response, affecting conclusions about brain injury mechanisms, prevention, and treatment. This study investigated the effect of tissue location, loading direction, and strain rate on the mechanical properties of brain tissue. Digital Image Correlation (DIC) analysis was used to quantify the stress response, Poisson's Ratio (PR), and volume ratio of human brain tissue under uniaxial compression. The directional, regional, and strain rate dependent properties of white matter from the corpus callosum and gray matter from the temporal lobe cortex were investigated. Higher strain rate and compression magnitude increased the tissue stress response across all brain regions and loading directions. The PR of all tissues varied with compression magnitude. The temporal lobe exhibited isotropic deformation behavior, aligning with homogeneous incompressible material behavior. In the corpus callosum, directionally dependent PR suggested transverse isotropy. For both tissue locations, the volume ratio investigation showed deviations from incompressibility as strain rate and compressive strain magnitude increased; these deviations can result in large stored-energy penalties due to the high bulk modulus of brain tissue. Integrating region- and direction-specific mechanical properties into brain tissue models could improve insights into complex load transfer mechanisms within the brain, potentially refining clinical strategies for brain injury intervention and prevention.
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      Investigating the Regional, Directional, and Rate-Dependent Mechanical Response of Fixed Human Brain Tissue Under Compression

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    contributor authorCamarillo, Alejandro Matos
    contributor authorBaggaley, Michael
    contributor authorRabey, Karyne N.
    contributor authorHogan, James D.
    contributor authorRomanyk, Dan L.
    date accessioned2026-08-23T08:34:24Z
    date available2026-08-23T08:34:24Z
    date copyright2026/05/01
    date issued2026
    identifier issn0148-0731
    identifier otherbio-25-1142.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4316750
    description abstractAbstract. Assuming homogeneous mechanical properties for all brain tissue in computational simulations may lead to inaccurate predictions of response, affecting conclusions about brain injury mechanisms, prevention, and treatment. This study investigated the effect of tissue location, loading direction, and strain rate on the mechanical properties of brain tissue. Digital Image Correlation (DIC) analysis was used to quantify the stress response, Poisson's Ratio (PR), and volume ratio of human brain tissue under uniaxial compression. The directional, regional, and strain rate dependent properties of white matter from the corpus callosum and gray matter from the temporal lobe cortex were investigated. Higher strain rate and compression magnitude increased the tissue stress response across all brain regions and loading directions. The PR of all tissues varied with compression magnitude. The temporal lobe exhibited isotropic deformation behavior, aligning with homogeneous incompressible material behavior. In the corpus callosum, directionally dependent PR suggested transverse isotropy. For both tissue locations, the volume ratio investigation showed deviations from incompressibility as strain rate and compressive strain magnitude increased; these deviations can result in large stored-energy penalties due to the high bulk modulus of brain tissue. Integrating region- and direction-specific mechanical properties into brain tissue models could improve insights into complex load transfer mechanisms within the brain, potentially refining clinical strategies for brain injury intervention and prevention.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleInvestigating the Regional, Directional, and Rate-Dependent Mechanical Response of Fixed Human Brain Tissue Under Compression
    typeJournal Paper
    journal volume148
    journal issue5
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.4070588
    journal fristpage5
    journal lastpage46
    page42
    treeJournal of Biomechanical Engineering:;2026:;volume( 148 ):;issue:005
    contenttypeFulltext
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