A regularized full reference tissue model for PET neuroreceptor mapping

Research output: Contribution to journalJournal articleResearchpeer-review

Standard

A regularized full reference tissue model for PET neuroreceptor mapping. / Mandeville, Joseph B; Sander, Christin Y M; Wey, Hsiao-Ying; Hooker, Jacob M; Hansen, Hanne D; Svarer, Claus; Knudsen, Gitte M; Rosen, Bruce R.

In: NeuroImage, Vol. 139, 2016, p. 405-414.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Mandeville, JB, Sander, CYM, Wey, H-Y, Hooker, JM, Hansen, HD, Svarer, C, Knudsen, GM & Rosen, BR 2016, 'A regularized full reference tissue model for PET neuroreceptor mapping', NeuroImage, vol. 139, pp. 405-414. https://doi.org/10.1016/j.neuroimage.2016.06.044

APA

Mandeville, J. B., Sander, C. Y. M., Wey, H-Y., Hooker, J. M., Hansen, H. D., Svarer, C., Knudsen, G. M., & Rosen, B. R. (2016). A regularized full reference tissue model for PET neuroreceptor mapping. NeuroImage, 139, 405-414. https://doi.org/10.1016/j.neuroimage.2016.06.044

Vancouver

Mandeville JB, Sander CYM, Wey H-Y, Hooker JM, Hansen HD, Svarer C et al. A regularized full reference tissue model for PET neuroreceptor mapping. NeuroImage. 2016;139:405-414. https://doi.org/10.1016/j.neuroimage.2016.06.044

Author

Mandeville, Joseph B ; Sander, Christin Y M ; Wey, Hsiao-Ying ; Hooker, Jacob M ; Hansen, Hanne D ; Svarer, Claus ; Knudsen, Gitte M ; Rosen, Bruce R. / A regularized full reference tissue model for PET neuroreceptor mapping. In: NeuroImage. 2016 ; Vol. 139. pp. 405-414.

Bibtex

@article{c9efa82b11d6413db9dda514505938e6,
title = "A regularized full reference tissue model for PET neuroreceptor mapping",
abstract = "The full reference tissue model (FRTM) is a PET analysis framework that includes both free and specifically bound compartments within tissues, together with rate constants defining association and dissociation from the specifically bound compartment. The simplified reference tissue model (SRTM) assumes instantaneous exchange between tissue compartments, and this {"}1-tissue{"} approximation reduces the number of parameters and enables more robust mapping of non-displaceable binding potentials. Simulations based upon FRTM have shown that SRTM exhibits biases that are spatially dependent, because biases depend upon binding potentials. In this work, we describe a regularized model (rFRTM) that employs a global estimate of the dissociation rate constant from the specifically bound compartment (k4). The model provides an internal calibration for optimizing k4 through the reference-region outflow rate k2', a model parameter that should be a global constant but varies regionally in SRTM. Estimates of k4 by rFRTM are presented for four PET radioligands. We show that SRTM introduces bias in parameter estimates by assuming an infinite value for k4, and that rFRTM ameliorates bias with an appropriate choice of k4. Theoretical considerations and simulations demonstrate that rFRTM reduces bias in non-displaceable binding potentials. A two-parameter reduction of the model (rFRTM2) provides robust mapping at a voxel-wise level. With a structure similar to SRTM, the model is easily implemented and can be applied as a PET reference region analysis that reduces parameter bias without substantially altering parameter variance.",
keywords = "Journal Article",
author = "Mandeville, {Joseph B} and Sander, {Christin Y M} and Hsiao-Ying Wey and Hooker, {Jacob M} and Hansen, {Hanne D} and Claus Svarer and Knudsen, {Gitte M} and Rosen, {Bruce R}",
note = "Copyright {\textcopyright} 2016 Elsevier Inc. All rights reserved.",
year = "2016",
doi = "10.1016/j.neuroimage.2016.06.044",
language = "English",
volume = "139",
pages = "405--414",
journal = "NeuroImage",
issn = "1053-8119",
publisher = "Elsevier",

}

RIS

TY - JOUR

T1 - A regularized full reference tissue model for PET neuroreceptor mapping

AU - Mandeville, Joseph B

AU - Sander, Christin Y M

AU - Wey, Hsiao-Ying

AU - Hooker, Jacob M

AU - Hansen, Hanne D

AU - Svarer, Claus

AU - Knudsen, Gitte M

AU - Rosen, Bruce R

N1 - Copyright © 2016 Elsevier Inc. All rights reserved.

PY - 2016

Y1 - 2016

N2 - The full reference tissue model (FRTM) is a PET analysis framework that includes both free and specifically bound compartments within tissues, together with rate constants defining association and dissociation from the specifically bound compartment. The simplified reference tissue model (SRTM) assumes instantaneous exchange between tissue compartments, and this "1-tissue" approximation reduces the number of parameters and enables more robust mapping of non-displaceable binding potentials. Simulations based upon FRTM have shown that SRTM exhibits biases that are spatially dependent, because biases depend upon binding potentials. In this work, we describe a regularized model (rFRTM) that employs a global estimate of the dissociation rate constant from the specifically bound compartment (k4). The model provides an internal calibration for optimizing k4 through the reference-region outflow rate k2', a model parameter that should be a global constant but varies regionally in SRTM. Estimates of k4 by rFRTM are presented for four PET radioligands. We show that SRTM introduces bias in parameter estimates by assuming an infinite value for k4, and that rFRTM ameliorates bias with an appropriate choice of k4. Theoretical considerations and simulations demonstrate that rFRTM reduces bias in non-displaceable binding potentials. A two-parameter reduction of the model (rFRTM2) provides robust mapping at a voxel-wise level. With a structure similar to SRTM, the model is easily implemented and can be applied as a PET reference region analysis that reduces parameter bias without substantially altering parameter variance.

AB - The full reference tissue model (FRTM) is a PET analysis framework that includes both free and specifically bound compartments within tissues, together with rate constants defining association and dissociation from the specifically bound compartment. The simplified reference tissue model (SRTM) assumes instantaneous exchange between tissue compartments, and this "1-tissue" approximation reduces the number of parameters and enables more robust mapping of non-displaceable binding potentials. Simulations based upon FRTM have shown that SRTM exhibits biases that are spatially dependent, because biases depend upon binding potentials. In this work, we describe a regularized model (rFRTM) that employs a global estimate of the dissociation rate constant from the specifically bound compartment (k4). The model provides an internal calibration for optimizing k4 through the reference-region outflow rate k2', a model parameter that should be a global constant but varies regionally in SRTM. Estimates of k4 by rFRTM are presented for four PET radioligands. We show that SRTM introduces bias in parameter estimates by assuming an infinite value for k4, and that rFRTM ameliorates bias with an appropriate choice of k4. Theoretical considerations and simulations demonstrate that rFRTM reduces bias in non-displaceable binding potentials. A two-parameter reduction of the model (rFRTM2) provides robust mapping at a voxel-wise level. With a structure similar to SRTM, the model is easily implemented and can be applied as a PET reference region analysis that reduces parameter bias without substantially altering parameter variance.

KW - Journal Article

U2 - 10.1016/j.neuroimage.2016.06.044

DO - 10.1016/j.neuroimage.2016.06.044

M3 - Journal article

C2 - 27364474

VL - 139

SP - 405

EP - 414

JO - NeuroImage

JF - NeuroImage

SN - 1053-8119

ER -

ID: 177096552