Cargando…
Accurate, repeatable, and geometrically precise diffusion-weighted imaging on a 0.35 T magnetic resonance imaging-guided linear accelerator
BACKGROUND AND PURPOSE: Diffusion weighted imaging (DWI) allows for the interrogation of tissue cellularity, which is a surrogate for cellular proliferation. Previous attempts to incorporate DWI into the workflow of a 0.35 T MR-linac (MRL) have lacked quantitative accuracy. In this study, accuracy,...
Autores principales: | , , , , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Elsevier
2023
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10692914/ https://www.ncbi.nlm.nih.gov/pubmed/38045642 http://dx.doi.org/10.1016/j.phro.2023.100505 |
_version_ | 1785153047589027840 |
---|---|
author | Weygand, Joseph Armstrong, Tess Bryant, John Michael Andreozzi, Jacqueline M. Oraiqat, Ibrahim M. Nichols, Steven Liveringhouse, Casey L. Latifi, Kujtim Yamoah, Kosj Costello, James R. Frakes, Jessica M. Moros, Eduardo G. El Naqa, Issam M. Naghavi, Arash O. Rosenberg, Stephen A. Redler, Gage |
author_facet | Weygand, Joseph Armstrong, Tess Bryant, John Michael Andreozzi, Jacqueline M. Oraiqat, Ibrahim M. Nichols, Steven Liveringhouse, Casey L. Latifi, Kujtim Yamoah, Kosj Costello, James R. Frakes, Jessica M. Moros, Eduardo G. El Naqa, Issam M. Naghavi, Arash O. Rosenberg, Stephen A. Redler, Gage |
author_sort | Weygand, Joseph |
collection | PubMed |
description | BACKGROUND AND PURPOSE: Diffusion weighted imaging (DWI) allows for the interrogation of tissue cellularity, which is a surrogate for cellular proliferation. Previous attempts to incorporate DWI into the workflow of a 0.35 T MR-linac (MRL) have lacked quantitative accuracy. In this study, accuracy, repeatability, and geometric precision of apparent diffusion coefficient (ADC) maps produced using an echo planar imaging (EPI)-based DWI protocol on the MRL system is illustrated, and in vivo potential for longitudinal patient imaging is demonstrated. MATERIALS AND METHODS: Accuracy and repeatability were assessed by measuring ADC values in a diffusion phantom at three timepoints and comparing to reference ADC values. System-dependent geometric distortion was quantified by measuring the distance between 93 pairs of phantom features on ADC maps acquired on a 0.35 T MRL and a 3.0 T diagnostic scanner and comparing to spatially precise CT images. Additionally, for five sarcoma patients receiving radiotherapy on the MRL, same-day in vivo ADC maps were acquired on both systems, one of which at multiple timepoints. RESULTS: Phantom ADC quantification was accurate on the 0.35 T MRL with significant discrepancies only seen at high ADC. Average geometric distortions were 0.35 (±0.02) mm and 0.85 (±0.02) mm in the central slice and 0.66 (±0.04) mm and 2.14 (±0.07) mm at 5.4 cm off-center for the MRL and diagnostic system, respectively. In the sarcoma patients, a mean pretreatment ADC of 910x10(-6) (±100x10(-6)) mm(2)/s was measured on the MRL. CONCLUSIONS: The acquisition of accurate, repeatable, and geometrically precise ADC maps is possible at 0.35 T with an EPI approach. |
format | Online Article Text |
id | pubmed-10692914 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2023 |
publisher | Elsevier |
record_format | MEDLINE/PubMed |
spelling | pubmed-106929142023-12-03 Accurate, repeatable, and geometrically precise diffusion-weighted imaging on a 0.35 T magnetic resonance imaging-guided linear accelerator Weygand, Joseph Armstrong, Tess Bryant, John Michael Andreozzi, Jacqueline M. Oraiqat, Ibrahim M. Nichols, Steven Liveringhouse, Casey L. Latifi, Kujtim Yamoah, Kosj Costello, James R. Frakes, Jessica M. Moros, Eduardo G. El Naqa, Issam M. Naghavi, Arash O. Rosenberg, Stephen A. Redler, Gage Phys Imaging Radiat Oncol Original Research Article BACKGROUND AND PURPOSE: Diffusion weighted imaging (DWI) allows for the interrogation of tissue cellularity, which is a surrogate for cellular proliferation. Previous attempts to incorporate DWI into the workflow of a 0.35 T MR-linac (MRL) have lacked quantitative accuracy. In this study, accuracy, repeatability, and geometric precision of apparent diffusion coefficient (ADC) maps produced using an echo planar imaging (EPI)-based DWI protocol on the MRL system is illustrated, and in vivo potential for longitudinal patient imaging is demonstrated. MATERIALS AND METHODS: Accuracy and repeatability were assessed by measuring ADC values in a diffusion phantom at three timepoints and comparing to reference ADC values. System-dependent geometric distortion was quantified by measuring the distance between 93 pairs of phantom features on ADC maps acquired on a 0.35 T MRL and a 3.0 T diagnostic scanner and comparing to spatially precise CT images. Additionally, for five sarcoma patients receiving radiotherapy on the MRL, same-day in vivo ADC maps were acquired on both systems, one of which at multiple timepoints. RESULTS: Phantom ADC quantification was accurate on the 0.35 T MRL with significant discrepancies only seen at high ADC. Average geometric distortions were 0.35 (±0.02) mm and 0.85 (±0.02) mm in the central slice and 0.66 (±0.04) mm and 2.14 (±0.07) mm at 5.4 cm off-center for the MRL and diagnostic system, respectively. In the sarcoma patients, a mean pretreatment ADC of 910x10(-6) (±100x10(-6)) mm(2)/s was measured on the MRL. CONCLUSIONS: The acquisition of accurate, repeatable, and geometrically precise ADC maps is possible at 0.35 T with an EPI approach. Elsevier 2023-11-08 /pmc/articles/PMC10692914/ /pubmed/38045642 http://dx.doi.org/10.1016/j.phro.2023.100505 Text en © 2023 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/). |
spellingShingle | Original Research Article Weygand, Joseph Armstrong, Tess Bryant, John Michael Andreozzi, Jacqueline M. Oraiqat, Ibrahim M. Nichols, Steven Liveringhouse, Casey L. Latifi, Kujtim Yamoah, Kosj Costello, James R. Frakes, Jessica M. Moros, Eduardo G. El Naqa, Issam M. Naghavi, Arash O. Rosenberg, Stephen A. Redler, Gage Accurate, repeatable, and geometrically precise diffusion-weighted imaging on a 0.35 T magnetic resonance imaging-guided linear accelerator |
title | Accurate, repeatable, and geometrically precise diffusion-weighted imaging on a 0.35 T magnetic resonance imaging-guided linear accelerator |
title_full | Accurate, repeatable, and geometrically precise diffusion-weighted imaging on a 0.35 T magnetic resonance imaging-guided linear accelerator |
title_fullStr | Accurate, repeatable, and geometrically precise diffusion-weighted imaging on a 0.35 T magnetic resonance imaging-guided linear accelerator |
title_full_unstemmed | Accurate, repeatable, and geometrically precise diffusion-weighted imaging on a 0.35 T magnetic resonance imaging-guided linear accelerator |
title_short | Accurate, repeatable, and geometrically precise diffusion-weighted imaging on a 0.35 T magnetic resonance imaging-guided linear accelerator |
title_sort | accurate, repeatable, and geometrically precise diffusion-weighted imaging on a 0.35 t magnetic resonance imaging-guided linear accelerator |
topic | Original Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10692914/ https://www.ncbi.nlm.nih.gov/pubmed/38045642 http://dx.doi.org/10.1016/j.phro.2023.100505 |
work_keys_str_mv | AT weygandjoseph accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT armstrongtess accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT bryantjohnmichael accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT andreozzijacquelinem accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT oraiqatibrahimm accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT nicholssteven accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT liveringhousecaseyl accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT latifikujtim accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT yamoahkosj accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT costellojamesr accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT frakesjessicam accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT moroseduardog accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT elnaqaissamm accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT naghaviarasho accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT rosenbergstephena accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator AT redlergage accuraterepeatableandgeometricallyprecisediffusionweightedimagingona035tmagneticresonanceimagingguidedlinearaccelerator |