Multiscale Modeling of Facet CapsuleMechanobiology
Multiscale Modeling of Facet CapsuleMechanobiology
批准号:
10441360
负责人:
VICTOR H BAROCAS
金额:
$65.71万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-07-15 至 2024-07-31
关键词:
AffectArchitectureArthritisAwardBack PainBehaviorBilateralBiological ModelsBiomechanicsCell modelCellsCervicalChronicClinical PathologyCollagenCollagen FiberComplexCytoskeletonDataDependovirusEnvironmentEtiologyExtracellular MatrixFiberFluorescence MicroscopyFormulationGelGenerationsGeometryGrantImageIncidenceInjuryJointsKnowledgeLabelLengthLinkLiquid substanceMechanicsMediatingMethodsMicroscopicModelingMotionNeck PainNeuronsNociceptorsOutcomePainPathologicPathologyPeriodicityPhysiologicalPhysiologyPlayProprioceptionRampRelaxationSchemeShapesSignal TransductionSpinalSpinal GangliaStressStructureTestingTimeTissuesTranslatingVariantVertebral columnWorkanalytical toolbasebioimagingcapsular ligamentclinically relevantconfocal imagingcostdesigndigital imagingexperimental studyextracellularimage processingimprovedin vivoinsightinterstitialjoint loadingmechanotransductionmicroscopic imagingmolecular scalemulti-scale modelingnovelpredicting responsepredictive modelingresponsesecond harmonicsensorsimulationsoft tissuespine bone structuretoolviscoelasticity
中文摘要
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英文摘要
Abstract
Neck and back pain have a tremendous annual incidence and associated costs. The facet capsular ligament
(FCL) encloses the bilateral articulating joints of the spinal vertebrae and is richly innervated to provide
proprioception during spinal motions. The FCL is also innervated by nociceptors and may act as a pain sensor
during abnormal conditions like injury and repeated loading. Although aberrant spinal motions and pathologic
conditions are associated with pain, the relationship between tissue loading and nociceptor activation is unclear
due to the complicated involvement of mechanics and physiology in the FCL across length scales. Accurately
relating spinal motions to neuronal function within the FCL requires multi-scale modeling and experiments to
identify the relevant mechanotransduction mechanisms by which tissue loading mediates neuronal function.
Under this U01 renewal, we will expand our prior work defining how the neuronal response is governed by
the forces from its local environment, which are determined by the complex interaction of macroscopic
loads and the microscopic structure of the FCL. We extend that work by improving our multiscale models of
FCL mechanics at the tissue, collagen fiber network, and neuronal scales. We will use those models to study
the mechanical environment of neurons in the tissue and its collagen matrix and to predict responses under
injury and pathologic conditions. Complementary experiments at the tissue and cell scales will characterize
neuron and matrix structure and architectural descriptions of neurons, as well as define rate effects and the
mechanical interactions between the FCL, collagen fibers, and neurons. We will integrate modeling and
experimental work under coordinated specific aims to define how the organization of fibrillar and non-fibrillar
material in the FCL govern its mechanical response to different loading scenarios, how the micro-scale fiber
motion translates into forces on neurons, and how those forces affect neuronal architecture, signaling and
function. In Aim 1, we will use advanced bioimaging, image-processing, and analytical tools to refine our existing
multiscale model and capture the complex geometry and architecture of the matrix and neurons in the FCL. In
Aim 2, we will define forces on the neurons during loading when its surrounding matrix deforms; Aim 3 includes
adding viscoelasticity and interstitial flow to our model and studying rate effects on both the tissue, matrix and
neurons. Finally, in Aim 4, we will insert our cellular/matrix model (µm-to-nm scale) into a whole-spine model
(mm-µm scale) to link realistic macroscopic loading to neuronal deformation in clinically relevant contexts. By
connecting the tissue and cellular scales, the project will facilitate efforts to include relevant physiological data
on joint mechanics during injury and clinically relevant-spinal conditions with afferent neuronal function, which
will promote understanding of the in vivo responses of the joints during pathologic motions and will not only
enhance our understanding of degeneration, arthritis, and injury in the FCL but also provide insight into other
innervated soft tissues with complex structure and geometry and speculative pain etiology.
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Stretch-induced network reconfiguration of collagen fibres in the human facet capsular ligament.
人体小关节囊韧带中胶原纤维的拉伸诱导网络重构。
DOI:
10.1098/rsif.2015.0883
发表时间:
2016
期刊:
Journal of the Royal Society, Interface
影响因子:
--
作者:
[Zhang,Sijia, Bassett,DanielleS, Winkelstein,BethA]
通讯作者:
Winkelstein,BethA
Collagen organization regulates stretch-initiated pain-related neuronal signals in vitro: Implications for structure-function relationships in innervated ligaments.
胶原组织在体外调节拉伸引发的疼痛相关神经信号:对受神经支配的韧带结构功能关系的影响。
DOI:
10.1002/jor.23657
发表时间:
2018
期刊:
Journal of orthopaedic research : official publication of the Orthopaedic Research Society
影响因子:
--
作者:
[Zhang,Sijia, Singh,Sagar, Winkelstein,BethA]
通讯作者:
Winkelstein,BethA
DOI:
10.1007/s10237-017-0949-8
发表时间:
2018-03
期刊:
Biomechanics and modeling in mechanobiology
影响因子:
3.5
作者:
[Zhang S, Zarei V, Winkelstein BA, Barocas VH]
通讯作者:
Barocas VH
Random Fiber Network Loaded by a Point Force.
由点力加载的随机光纤网络。
DOI:
10.1115/1.4053329
发表时间:
2022
期刊:
Journal of applied mechanics
影响因子:
--
作者:
[Merson,J, Picu,RC]
通讯作者:
Picu,RC
Size Effects in Random Fiber Networks Controlled by the Use of Generalized Boundary Conditions.
通过使用广义边界条件控制的随机光纤网络中的尺寸效应。
DOI:
10.1016/j.ijsolstr.2020.09.033
发表时间:
2020-12-01
期刊:
International journal of solids and structures
影响因子:
3.6
作者:
[Merson J, Picu RC]
通讯作者:
Picu RC
共 14 条
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TRACTOR: A Computational Platform to Explore Matrix-Mediated Mechanical Communication among Cells
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财政年份:2022
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依托单位:
Multidisciplinary training in cardiovascular engineering
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资助金额:$27.88万
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财政年份:2019
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Multiscale Modeling of Facet CapsuleMechanobiology
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海外基金