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dc.contributor.authorHodneland, Erlend
dc.contributor.authorHanson, Erik Andreas
dc.contributor.authorSævareid, Ove
dc.contributor.authorNævdal, Geir
dc.contributor.authorLundervold, Arvid
dc.contributor.authorSolteszova, Veronika
dc.contributor.authorZanna, Antonella
dc.contributor.authorDeistung, Andreas
dc.contributor.authorReichenbach, Jürgen
dc.contributor.authorNordbotten, Jan Martin
dc.date.accessioned2020-04-17T06:35:16Z
dc.date.available2020-04-17T06:35:16Z
dc.date.issued2019-06-25
dc.PublishedHodneland E, Hanson, Sævareid, Nævdal, Lundervold, Solteszova, Zanna, Deistung, Reichenbach, Nordbotten. A new framework for assessing subject-specific whole brain circulation and perfusion using MRI-based measurements and a multi-scale continuous flow model. PLoS Computational Biology. 2019;15:e1007073(6):1-31eng
dc.identifier.issn1553-7358en_US
dc.identifier.issn1553-734Xen_US
dc.identifier.urihttps://hdl.handle.net/1956/21901
dc.description.abstractA large variety of severe medical conditions involve alterations in microvascular circulation. Hence, measurements or simulation of circulation and perfusion has considerable clinical value and can be used for diagnostics, evaluation of treatment efficacy, and for surgical planning. However, the accuracy of traditional tracer kinetic one-compartment models is limited due to scale dependency. As a remedy, we propose a scale invariant mathematical framework for simulating whole brain perfusion. The suggested framework is based on a segmentation of anatomical geometry down to imaging voxel resolution. Large vessels in the arterial and venous network are identified from time-of-flight (ToF) and quantitative susceptibility mapping (QSM). Macro-scale flow in the large-vessel-network is accurately modelled using the Hagen-Poiseuille equation, whereas capillary flow is treated as two-compartment porous media flow. Macro-scale flow is coupled with micro-scale flow by a spatially distributing support function in the terminal endings. Perfusion is defined as the transition of fluid from the arterial to the venous compartment. We demonstrate a whole brain simulation of tracer propagation on a realistic geometric model of the human brain, where the model comprises distinct areas of grey and white matter, as well as large vessels in the arterial and venous vascular network. Our proposed framework is an accurate and viable alternative to traditional compartment models, with high relevance for simulation of brain perfusion and also for restoration of field parameters in clinical brain perfusion applications.en_US
dc.language.isoengeng
dc.publisherPLoSen_US
dc.rightsAttribution CC BYeng
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/eng
dc.titleA new framework for assessing subject-specific whole brain circulation and perfusion using MRI-based measurements and a multi-scale continuous flow modelen_US
dc.typePeer reviewed
dc.typeJournal article
dc.date.updated2020-01-28T10:15:30Z
dc.description.versionpublishedVersionen_US
dc.rights.holderCopyright 2019 Hodneland et al.en_US
dc.identifier.doihttps://doi.org/10.1371/journal.pcbi.1007073
dc.identifier.cristin1709753
dc.source.journalPLoS Computational Biology
dc.relation.projectNorges forskningsråd: 262203


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