Multiscale models of fibrous interface mechanics
Multiscale models of fibrous interface mechanics
批准号:
10897549
负责人:
Guy M Genin
金额:
$8.56万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2020
资助国家:
美国
项目状态:
未结题
起止时间:
2020-08-01 至 2025-07-31
关键词:
AdhesionsAdhesivesAnimal ModelAutomobile DrivingBiological ModelsBone TissueBotulinum Toxin Type ABrainCharacteristicsCollagenCollagen DiseasesCollagen FiberConnective TissueDiseaseEndowmentEnvironmentFailureFiberFoundationsFrictionHerniaIn VitroInjuryIntra-abdominalKnowledgeLaparotomyLengthLigamentsLocationMachine LearningMechanicsMeniscus structure of jointMesenteryMineralsModelingModificationMusMusculoskeletalNatureNervous SystemOperative Surgical ProceduresPainParalysedPathologicPathologyPatientsPeritonealPhysiologicalPia MaterProcessRotator CuffRunningSkinSlideSourceSpecimenStressStructureSurfaceSystemTechnologyTendinopathyTendon structureTestingTissue SampleTissuesWorkabsorptionbehavior predictionbonebone repaircraniumcrosslinkdesigndisabilityexperimental studyimprovedin vivomathematical modelmechanical behaviormillimetermolecular dynamicsmulti-scale modelingnanonanocrystalnanoscaleolder patientrepairedtreadmill
中文摘要
点击翻译按钮获取中文摘要
英文摘要
PROJECT SUMMARY
Interfaces between tissues either transfer load (requiring toughness) or provide a smooth surface
(requiring low friction). Fibrous interfaces are very effective at transferring load between tissues, e.g.,
at connective tissue-bone interfaces (“entheses”), peritoneal-mesentery interfaces, interfaces
between layers of the vasculature, and the pia mater. These interfaces require toughness to resist
high stresses associated with material mismatches. Surgical repair can lead to smooth interfaces
becoming fibrous, (e.g., following hernia surgery) or to tough interfaces becoming weak (e.g.,
following tendon- and ligament-to-bone repair). In older patients with large rotator cuff repairs, for
example, where the desired attachment is not reformed, up to 94% of surgical repairs fail. These
challenges arise in part because the features that endow fibrous interfaces with toughness are not
known. We therefore propose to develop a comprehensive modeling and experimental approach for
studying the factors underlying the transition from tough to weak in a fibrous interface. Our previous
work motivates the hypothesis that disorder is a key toughening feature of fibrous attachments. We
will focus initially on the example of tendon attaching to bone, in which microscale disorder underlies
the ordered macroscale, graded transition between the two tissues, as a foundation for studying the
general problem of adhesion throughout the body. We predict that disorder enhances energy
absorption by distributing failure processes and energy absorption over larger volumes of tissue. We
propose this as a fundamental mechanism by which fibrous interfaces in the body transfer load
effectively. We will test these ideas through two aims: (1) Identify and model the mechanisms of
fibrous attachment toughening ex vivo. We will model and experimentally validate how disorder
across length scales toughens the tendon-to-bone attachment. Hierarchical molecular dynamics-to-
continuum models, enriched by machine learning, will be validated in vitro, in systems with nanoscale
control of mineral distributions, and ex vivo, in tissue samples of fibrous attachments. (2) Identify and
model the loss of fibrous attachment toughness due to pathologic settings in vivo using murine rotator
cuff tendinopathy models. In both aims, nano- through milli-scale characterization will be performed to
define the mechanisms driving mechanical behavior. We will test the hypothesis that pathology-
induced changes at multiple length scales will predict changes in failure mode. These models and
experiments will test the global hypothesis that energy absorption across hierarchies is a fundamental
toughening mechanism by which fibrous interfaces resist injury level loads. Taken together, we
believe that these new models of fibrous attachment will enable an understanding of how the order
and complexity of fibrous attachments leads to effective attachment of tissues.
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DOI:
10.1016/j.chempr.2023.03.020
发表时间:
2023-04
期刊:
Chem
影响因子:
23.5
作者:
[Bo Ni;D. L. Kaplan;M. Buehler]
通讯作者:
Bo Ni;D. L. Kaplan;M. Buehler
DOI:
10.48550/arxiv.2401.12196
发表时间:
2024-01
期刊:
ArXiv
影响因子:
--
作者:
[Haiqian Yang;Florian Meyer;Shaoxun Huang;Liu Yang;C. Lungu;Monilola A. Olayioye;M. Buehler;Ming Guo]
通讯作者:
Haiqian Yang;Florian Meyer;Shaoxun Huang;Liu Yang;C. Lungu;Monilola A. Olayioye;M. Buehler;Ming Guo
Nonlinear time-dependent mechanical behavior of mammalian collagen fibrils.
哺乳动物胶原纤维的非线性时间依赖性机械行为。
DOI:
10.1016/j.actbio.2022.03.005
发表时间:
2023
期刊:
Acta biomaterialia
影响因子:
9.7
作者:
[Yang,Fan, Das,Debashish, Karunakaran,Kathiresan, Genin,GuyM, Thomopoulos,Stavros, Chasiotis,Ioannis]
通讯作者:
Chasiotis,Ioannis
DOI:
10.1016/j.optlaseng.2021.106869
发表时间:
2022-03
期刊:
Optics and lasers in engineering
影响因子:
4.6
作者:
[Fan Yang;D. Das;I. Chasiotis]
通讯作者:
Fan Yang;D. Das;I. Chasiotis
Mechanics-driven nuclear localization of YAP can be reversed by N-cadherin ligation in mesenchymal stem cells.
间充质干细胞中 N-钙粘蛋白连接可逆转 YAP 的力学驱动核定位
DOI:
10.1038/s41467-021-26454-x
发表时间:
2021-10-28
期刊:
Nature communications
影响因子:
16.6
作者:
[Zhang C, Zhu H, Ren X, Gao B, Cheng B, Liu S, Sha B, Li Z, Zhang Z, Lv Y, Wang H, Guo H, Lu TJ, Xu F, Genin GM, Lin M]
通讯作者:
Lin M
共 14 条
Multiscale models of fibrous interface mechanics
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批准号:10476994
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项目类别:
-
资助金额:$47.54万
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财政年份:2020
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负责人:Guy M Genin
-
依托单位:
Multiscale models of fibrous interface mechanics
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批准号:10037326
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项目类别:
-
资助金额:$54.54万
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财政年份:2020
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负责人:Guy M Genin
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依托单位:
Strain Analysis Software for Open Science
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批准号:10406113
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项目类别:
-
资助金额:$21.01万
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财政年份:2020
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负责人:Guy M Genin
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依托单位:
Multiscale models of fibrous interface mechanics
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批准号:10678848
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项目类别:
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资助金额:$46.73万
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财政年份:2020
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负责人:Guy M Genin
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依托单位:
Multiscale models of fibrous interface mechanics
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批准号:10222575
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项目类别:
-
资助金额:$47.47万
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财政年份:2020
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负责人:Guy M Genin
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依托单位:
Multiscale models of fibrous interface mechanics
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批准号:10601609
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项目类别:
-
资助金额:$10.13万
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财政年份:2020
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负责人:Guy M Genin
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依托单位:
Cross-scale interactions between mineral and collagen for tendon-bone attachment
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批准号:9342878
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项目类别:
-
资助金额:$45.57万
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财政年份:2013
-
负责人:Guy M Genin
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依托单位:
Cross-scale interactions between mineral and collagen for tendon-bone attachment
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批准号:8551256
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项目类别:
-
资助金额:$52.16万
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财政年份:2013
-
负责人:Guy M Genin
-
依托单位:
Cross-scale interactions between mineral and collagen for tendon-bone attachment
-
批准号:8913701
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项目类别:
-
资助金额:$46.65万
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财政年份:2013
-
负责人:Guy M Genin
-
依托单位:
Cross-scale interactions between mineral and collagen for tendon-bone attachment
-
批准号:8723201
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项目类别:
-
资助金额:$46.07万
-
财政年份:2013
-
负责人:Guy M Genin
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依托单位:
Cross-scale interactions between mineral and collagen for tendon-bone attachment
-
批准号:9135399
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项目类别:
-
资助金额:$45.58万
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财政年份:2013
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负责人:Guy M Genin
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依托单位:
Mechanics Characterization of Cellular Force Regulation
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批准号:7236171
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项目类别:
-
资助金额:$13.97万
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财政年份:2006
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负责人:Guy M Genin
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依托单位:
Mechanics Characterization of Cellular Force Regulation
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批准号:7650403
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项目类别:
-
资助金额:$14.07万
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财政年份:2006
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负责人:Guy M Genin
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依托单位:
Mechanics Characterization of Cellular Force Regulation
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批准号:7452255
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项目类别:
-
资助金额:$14.02万
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财政年份:2006
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负责人:Guy M Genin
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依托单位:
Mechanics Characterization of Cellular Force Regulation
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批准号:7025182
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项目类别:
-
资助金额:$14.02万
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财政年份:2006
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负责人:Guy M Genin
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依托单位:
海外基金