Publication:
Impact of spill-in counts from off-target regions on [18F]Flortaucipir PET quantification.

dc.contributor.authorLópez-González, Francisco J
dc.contributor.authorCostoya-Sánchez, Alejandro
dc.contributor.authorParedes-Pacheco, José
dc.contributor.authorMoscoso, Alexis
dc.contributor.authorSilva-Rodríguez, Jesús
dc.contributor.authorAguiar, Pablo
dc.contributor.authorAlzheimer’s Disease Neuroimaging Initiative
dc.date.accessioned2023-05-03T15:11:53Z
dc.date.available2023-05-03T15:11:53Z
dc.date.issued2022-06-24
dc.description.abstract[18F]Flortaucipir (FTP) PET quantification is usually hindered by spill-in counts from off-target binding (OFF) regions. The present work aims to provide an in-depth analysis of the impact of OFF in FTP PET quantification, as well as to identify optimal partial volume correction (PVC) strategies to minimize this problem. 309 amyloid-beta (Aβ) negative cognitively normal subjects were included in the study. Additionally, 510 realistic FTP images with different levels of OFF were generated using Monte Carlo simulation (MC). Images were corrected for PVC using both a simple two-compartment and a multi-region method including OFF regions. FTP standardized uptake value ratio (SUVR) was quantified in Braak Areas (BA), the hippocampus (which was not included in Braak I/II) and different OFF regions (caudate, putamen, pallidum, thalamus, choroid plexus (ChPlex), cerebellar white matter (cerebWM), hemispheric white matter (hemisWM) and cerebrospinal fluid (CSF)) using the lower portion of the cerebellum as a reference region. The correlations between OFF and cortical SUVRs were studied both in real and in simulated PET images, with and without PVC. In-vivo, we found correlations between all OFF and target regions, especially strong for the hemisWM (slope>0.63, R2>0.4). All the correlations were attenuated but remained significant after applying PVC, except for the ChPlex. In MC simulations, the hemisWM and CSF were the main contributors to PVE in all BA (slopes 0.15-0.26 and 0.13-0.21 respectively). The hemisWM (slope=0.2), as well as the ChPlex (slope=0.02), influenced SUVRs in the hippocampus. The CerebWM was negatively correlated with all target regions (slope0.63, R2>0.4). All the correlations were attenuated but remained significant after applying PVC, except for the ChPlex. In MC simulations, the hemisWM and CSF were the main contributors to PVE in all BA (slopes 0.15-0.26 and 0.13-0.21 respectively). The hemisWM (slope=0.2), as well as the ChPlex (slope=0.02), influenced SUVRs in the hippocampus. The CerebWM was negatively correlated with all target regions (slope0.4). All the correlations were attenuated but remained significant after applying PVC, except for the ChPlex. In MC simulations, the hemisWM and CSF were the main contributors to PVE in all BA (slopes 0.15-0.26 and 0.13-0.21 respectively). The hemisWM (slope=0.2), as well as the ChPlex (slope=0.02), influenced SUVRs in the hippocampus. The CerebWM was negatively correlated with all target regions (slope0.8). While no other correlations between OFF and target regions were found, hemisWM was correlated with all OFF regions but the cerebWM (slopes 0.06-0.33). HemisWM correlations attenuated (slopes HemisWM is the main driver of spill-in effects in FTP PET, affecting both target regions and the rest of OFF regions. PVC successfully reduces PVE, even when using a simple two-compartment method. Despite PVC, non-zero correlations were still observed between target and OFF regions in vivo, which suggests the existence of biological or tracer-related contributions to these correlations.
dc.identifier.doi10.1016/j.neuroimage.2022.119396
dc.identifier.essn1095-9572
dc.identifier.pmid35753593
dc.identifier.unpaywallURLhttps://doi.org/10.1016/j.neuroimage.2022.119396
dc.identifier.urihttp://hdl.handle.net/10668/22423
dc.journal.titleNeuroImage
dc.journal.titleabbreviationNeuroimage
dc.language.isoen
dc.organizationHospital Universitario Virgen del Rocío
dc.organizationInstituto de Biomedicina de Sevilla-IBIS
dc.page.number119396
dc.pubmedtypeJournal Article
dc.pubmedtypeResearch Support, N.I.H., Extramural
dc.pubmedtypeResearch Support, Non-U.S. Gov't
dc.pubmedtypeResearch Support, U.S. Gov't, Non-P.H.S.
dc.rightsAttribution-NonCommercial-NoDerivatives 4.0 International
dc.rights.accessRightsopen access
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/
dc.subjectMonte Carlo
dc.subjectOff-target binding
dc.subjectPVE
dc.subjectSUVR
dc.subjectTau PET
dc.subject.meshHumans
dc.subject.meshAlzheimer Disease
dc.subject.meshAmyloid beta-Peptides
dc.subject.meshCarbolines
dc.subject.meshPositron-Emission Tomography
dc.subject.meshtau Proteins
dc.titleImpact of spill-in counts from off-target regions on [18F]Flortaucipir PET quantification.
dc.typeresearch article
dc.type.hasVersionVoR
dc.volume.number259
dspace.entity.typePublication

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