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dc.contributor.authorMijailovic, Aleksandar S
dc.contributor.authorGalarza, Sualyneth
dc.contributor.authorRaayai-Ardakani, Shabnam
dc.contributor.authorBirch, Nathan P
dc.contributor.authorSchiffman, Jessica D
dc.contributor.authorCrosby, Alfred J
dc.contributor.authorCohen, Tal
dc.contributor.authorPeyton, Shelly R
dc.contributor.authorVan Vliet, Krystyn J
dc.date.accessioned2021-10-07T15:05:46Z
dc.date.available2021-10-07T15:05:46Z
dc.date.issued2021
dc.date.submitted2020-07
dc.identifier.issn1751-6161
dc.identifier.urihttps://hdl.handle.net/1721.1/132774
dc.description.abstract© 2020 Changes in the elastic properties of brain tissue have been correlated with injury, cancers, and neurodegenerative diseases. However, discrepancies in the reported elastic moduli of brain tissue are persistent, and spatial inhomogeneities complicate the interpretation of macroscale measurements such as rheology. Here we introduce needle induced cavitation rheology (NICR) and volume-controlled cavity expansion (VCCE) as facile methods to measure the apparent Young's modulus E of minimally manipulated brain tissue, at specific tissue locations and with sub-millimeter spatial resolution. For different porcine brain regions and sections analyzed by NICR, we found E to be 3.7 ± 0.7 kPa and 4.8 ± 1.0 kPa for gray matter, and white matter, respectively. For different porcine brain regions and sections analyzed by VCCE, we found E was 0.76 ± 0.02 kPa for gray matter and 0.92 ± 0.01 kPa for white matter. Measurements from VCCE were more similar to those obtained from macroscale shear rheology (0.75 ± 0.06 kPa) and from instrumented microindentation of white matter (0.97 ± 0.40 kPa) and gray matter (0.86 ± 0.20 kPa). We attributed the higher stiffness reported from NICR to that method's assumption of a cavitation instability due to a neo-Hookean constitutive response, which does not capture the strain-stiffening behavior of brain tissue under large strains, and therefore did not provide appropriate measurements. We demonstrate via both analytical modeling of a spherical cavity and finite element modeling of a needle geometry, that this strain stiffening may prevent a cavitation instability. VCCE measurements take this stiffening behavior into account by employing an incompressible one-term Ogden model to find the nonlinear elastic properties of the tissue. Overall, VCCE afforded rapid and facile measurement of nonlinear mechanical properties of intact, healthy mammalian brain tissue, enabling quantitative comparison among brain tissue regions and also between species. Finally, accurate estimation of elastic properties for this strain stiffening tissue requires methods that include appropriate constitutive models of the brain tissue response, which here are represented by inclusion of the Ogden model in VCCE.en_US
dc.language.isoen
dc.publisherElsevier BVen_US
dc.relation.isversionof10.1016/J.JMBBM.2020.104168en_US
dc.rightsCreative Commons Attribution-NonCommercial-NoDerivs Licenseen_US
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/en_US
dc.sourceMIT web domainen_US
dc.titleLocalized characterization of brain tissue mechanical properties by needle induced cavitation rheology and volume controlled cavity expansionen_US
dc.typeArticleen_US
dc.identifier.citationAleksandar S. Mijailovic, Sualyneth Galarza, Shabnam Raayai-Ardakani, Nathan P. Birch, Jessica D. Schiffman, Alfred J. Crosby, Tal Cohen, Shelly R. Peyton, Krystyn J. Van Vliet, Localized characterization of brain tissue mechanical properties by needle induced cavitation rheology and volume controlled cavity expansion, Journal of the Mechanical Behavior of Biomedical Materials, Volume 114, 2021en_US
dc.contributor.departmentMassachusetts Institute of Technology. Department of Mechanical Engineering
dc.contributor.departmentMassachusetts Institute of Technology. Department of Civil and Environmental Engineering
dc.contributor.departmentMassachusetts Institute of Technology. Department of Materials Science and Engineering
dc.contributor.departmentMassachusetts Institute of Technology. Department of Biological Engineering
dc.relation.journalJournal of the Mechanical Behavior of Biomedical Materialsen_US
dc.eprint.versionAuthor's final manuscripten_US
dc.type.urihttp://purl.org/eprint/type/JournalArticleen_US
eprint.statushttp://purl.org/eprint/status/PeerRevieweden_US
dc.date.updated2021-10-06T15:15:21Z
dspace.orderedauthorsMijailovic, AS; Galarza, S; Raayai-Ardakani, S; Birch, NP; Schiffman, JD; Crosby, AJ; Cohen, T; Peyton, SR; Van Vliet, KJen_US
dspace.date.submission2021-10-06T15:15:23Z
mit.journal.volume114en_US
mit.licensePUBLISHER_CC
mit.metadata.statusAuthority Work Neededen_US


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