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    Passive Stress–Strain Measurements in the Stage-16 and Stage-18 Embryonic Chick Heart

    Source: Journal of Biomechanical Engineering:;1997:;volume( 119 ):;issue: 004::page 445
    Author:
    C. E. Miller
    ,
    M. A. Vanni
    ,
    L. A. Taber
    ,
    B. B. Keller
    DOI: 10.1115/1.2798292
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: The first stress–strain measurements on embryonic cardiovascular tissue are described here, obtained from cyclic uniaxial loading of the primitive Ventricle. An excised ventricular segment from Hamburger/Hamilton stage-16 or stage-18 chicks (2-1/2 and 3 days of a 21-day incubation period) was mounted longitudinally between two small wires in oxygenated Krebs–Henseleit cardioplegia solution. One wire was attached to an ultrasensitive force transducer and the other to a Huxley micromanipulator controlled by remote motor drive. A real-time video tracking system calculated three myocardial surface strains based on the positions of three surface markers while the heart was deformed in a triangular wave pattern. Force transducer output was filtered, digitally sampled, and stored with strains and time. Results were plotted as strain (longitudinal, circumferential, shear, and principal) versus time, stress versus time, and stress versus longitudinal strain. The stress–strain curves were nonlinear, even at low strain levels. The hysteresis loops were large; mean hysteresis energy as a proportion of total cycle stored strain energy was 36 percent (stage 16) and 41 percent (stage 18). We created a finite element model of the ventricle and fit the model behavior to the experimental behavior to determine parameters for a stage-18 pseudoelastic strain-energy function of exponential form. The calculated exponential parameter is significantly lower than that found in corresponding uniaxial studies of mature myocardium, possibly indicating the lower fiber content of the immature tissue. The results of this study are the first step in characterizing material properties for comparisons with later developmental stages and with impaired and altered myocardium. The long-term goal is to aid in identifying the biomechanical factors regulating growth and morphogenesis.
    keyword(s): Stress , Strain measurement , Myocardium , Force , Wire , Biological tissues , Transducers , Cardiovascular system , Cycles , Finite element model , Motor drives , Biomechanics , Waves , Shear (Mechanics) , Stress-strain curves , Materials properties AND Fibers ,
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      Passive Stress–Strain Measurements in the Stage-16 and Stage-18 Embryonic Chick Heart

    URI
    https://yetl.yabesh.ir/yetl1/handle/yetl/118281
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    • Journal of Biomechanical Engineering

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    contributor authorC. E. Miller
    contributor authorM. A. Vanni
    contributor authorL. A. Taber
    contributor authorB. B. Keller
    date accessioned2017-05-08T23:52:44Z
    date available2017-05-08T23:52:44Z
    date copyrightNovember, 1997
    date issued1997
    identifier issn0148-0731
    identifier otherJBENDY-25981#445_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/118281
    description abstractThe first stress–strain measurements on embryonic cardiovascular tissue are described here, obtained from cyclic uniaxial loading of the primitive Ventricle. An excised ventricular segment from Hamburger/Hamilton stage-16 or stage-18 chicks (2-1/2 and 3 days of a 21-day incubation period) was mounted longitudinally between two small wires in oxygenated Krebs–Henseleit cardioplegia solution. One wire was attached to an ultrasensitive force transducer and the other to a Huxley micromanipulator controlled by remote motor drive. A real-time video tracking system calculated three myocardial surface strains based on the positions of three surface markers while the heart was deformed in a triangular wave pattern. Force transducer output was filtered, digitally sampled, and stored with strains and time. Results were plotted as strain (longitudinal, circumferential, shear, and principal) versus time, stress versus time, and stress versus longitudinal strain. The stress–strain curves were nonlinear, even at low strain levels. The hysteresis loops were large; mean hysteresis energy as a proportion of total cycle stored strain energy was 36 percent (stage 16) and 41 percent (stage 18). We created a finite element model of the ventricle and fit the model behavior to the experimental behavior to determine parameters for a stage-18 pseudoelastic strain-energy function of exponential form. The calculated exponential parameter is significantly lower than that found in corresponding uniaxial studies of mature myocardium, possibly indicating the lower fiber content of the immature tissue. The results of this study are the first step in characterizing material properties for comparisons with later developmental stages and with impaired and altered myocardium. The long-term goal is to aid in identifying the biomechanical factors regulating growth and morphogenesis.
    publisherThe American Society of Mechanical Engineers (ASME)
    titlePassive Stress–Strain Measurements in the Stage-16 and Stage-18 Embryonic Chick Heart
    typeJournal Paper
    journal volume119
    journal issue4
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.2798292
    journal fristpage445
    journal lastpage451
    identifier eissn1528-8951
    keywordsStress
    keywordsStrain measurement
    keywordsMyocardium
    keywordsForce
    keywordsWire
    keywordsBiological tissues
    keywordsTransducers
    keywordsCardiovascular system
    keywordsCycles
    keywordsFinite element model
    keywordsMotor drives
    keywordsBiomechanics
    keywordsWaves
    keywordsShear (Mechanics)
    keywordsStress-strain curves
    keywordsMaterials properties AND Fibers
    treeJournal of Biomechanical Engineering:;1997:;volume( 119 ):;issue: 004
    contenttypeFulltext
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