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Magnetic Resonance Relaxometry for Tumor Cell Density Imaging for Glioma: An Exploratory Study via (11)C-Methionine PET and Its Validation via Stereotactic Tissue Sampling

SIMPLE SUMMARY: To test the hypothesis that quantitative magnetic resonance relaxometry reflects glioma tumor load within tissue and that it can be an imaging surrogate for visualizing non-contrast-enhancing tumors, we investigated the correlation between T1- and T2-weighted relaxation times, appare...

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Autores principales: Kinoshita, Manabu, Uchikoshi, Masato, Tateishi, Souichiro, Miyazaki, Shohei, Sakai, Mio, Ozaki, Tomohiko, Asai, Katsunori, Fujita, Yuya, Matsuhashi, Takahiro, Kanemura, Yonehiro, Shimosegawa, Eku, Hatazawa, Jun, Nakatsuka, Shin-ichi, Kishima, Haruhiko, Nakanishi, Katsuyuki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8393497/
https://www.ncbi.nlm.nih.gov/pubmed/34439221
http://dx.doi.org/10.3390/cancers13164067
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author Kinoshita, Manabu
Uchikoshi, Masato
Tateishi, Souichiro
Miyazaki, Shohei
Sakai, Mio
Ozaki, Tomohiko
Asai, Katsunori
Fujita, Yuya
Matsuhashi, Takahiro
Kanemura, Yonehiro
Shimosegawa, Eku
Hatazawa, Jun
Nakatsuka, Shin-ichi
Kishima, Haruhiko
Nakanishi, Katsuyuki
author_facet Kinoshita, Manabu
Uchikoshi, Masato
Tateishi, Souichiro
Miyazaki, Shohei
Sakai, Mio
Ozaki, Tomohiko
Asai, Katsunori
Fujita, Yuya
Matsuhashi, Takahiro
Kanemura, Yonehiro
Shimosegawa, Eku
Hatazawa, Jun
Nakatsuka, Shin-ichi
Kishima, Haruhiko
Nakanishi, Katsuyuki
author_sort Kinoshita, Manabu
collection PubMed
description SIMPLE SUMMARY: To test the hypothesis that quantitative magnetic resonance relaxometry reflects glioma tumor load within tissue and that it can be an imaging surrogate for visualizing non-contrast-enhancing tumors, we investigated the correlation between T1- and T2-weighted relaxation times, apparent diffusion coefficient (ADC) on magnetic resonance imaging, and (11)C-methionine (MET) on positron emission tomography (PET). Moreover, we compared T1- and T2-relaxation times and ADC with tumor cell density (TCD) findings obtained via stereotactic image-guided tissue sampling. A T1-relaxation time of >1850 ms but <3200 ms or a T2-relaxation time of >115 ms but <225 ms under 3 T indicated high MET uptake. The stereotactic tissue sampling findings confirmed that the T1-relaxation time of 1850–3200 ms significantly indicated higher TCD while the T2-relaxation time and ADC did not significantly correlate with the stereotactic tissue sampling findings. However, synthetically synthesized tumor load images from the T1- and T2-relaxation maps were able to visualize MET uptake presented on PET. ABSTRACT: One of the most crucial yet challenging issues for glioma patient care is visualizing non-contrast-enhancing tumor regions. In this study, to test the hypothesis that quantitative magnetic resonance relaxometry reflects glioma tumor load within tissue and that it can be an imaging surrogate for visualizing non-contrast-enhancing tumors, we investigated the correlation between T1- and T2-weighted relaxation times, apparent diffusion coefficient (ADC) on magnetic resonance imaging, and (11)C-methionine (MET) on positron emission tomography (PET). Moreover, we compared the T1- and T2-relaxation times and ADC with tumor cell density (TCD) findings obtained via stereotactic image-guided tissue sampling. Regions that presented a T1-relaxation time of >1850 ms but <3200 ms or a T2-relaxation time of >115 ms but <225 ms under 3 T indicated a high MET uptake. In addition, the stereotactic tissue sampling findings confirmed that the T1-relaxation time of 1850–3200 ms significantly indicated a higher TCD (p = 0.04). However, ADC was unable to show a significant correlation with MET uptake or with TCD. Finally, synthetically synthesized tumor load images from the T1- and T2-relaxation maps were able to visualize MET uptake presented on PET.
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spelling pubmed-83934972021-08-28 Magnetic Resonance Relaxometry for Tumor Cell Density Imaging for Glioma: An Exploratory Study via (11)C-Methionine PET and Its Validation via Stereotactic Tissue Sampling Kinoshita, Manabu Uchikoshi, Masato Tateishi, Souichiro Miyazaki, Shohei Sakai, Mio Ozaki, Tomohiko Asai, Katsunori Fujita, Yuya Matsuhashi, Takahiro Kanemura, Yonehiro Shimosegawa, Eku Hatazawa, Jun Nakatsuka, Shin-ichi Kishima, Haruhiko Nakanishi, Katsuyuki Cancers (Basel) Article SIMPLE SUMMARY: To test the hypothesis that quantitative magnetic resonance relaxometry reflects glioma tumor load within tissue and that it can be an imaging surrogate for visualizing non-contrast-enhancing tumors, we investigated the correlation between T1- and T2-weighted relaxation times, apparent diffusion coefficient (ADC) on magnetic resonance imaging, and (11)C-methionine (MET) on positron emission tomography (PET). Moreover, we compared T1- and T2-relaxation times and ADC with tumor cell density (TCD) findings obtained via stereotactic image-guided tissue sampling. A T1-relaxation time of >1850 ms but <3200 ms or a T2-relaxation time of >115 ms but <225 ms under 3 T indicated high MET uptake. The stereotactic tissue sampling findings confirmed that the T1-relaxation time of 1850–3200 ms significantly indicated higher TCD while the T2-relaxation time and ADC did not significantly correlate with the stereotactic tissue sampling findings. However, synthetically synthesized tumor load images from the T1- and T2-relaxation maps were able to visualize MET uptake presented on PET. ABSTRACT: One of the most crucial yet challenging issues for glioma patient care is visualizing non-contrast-enhancing tumor regions. In this study, to test the hypothesis that quantitative magnetic resonance relaxometry reflects glioma tumor load within tissue and that it can be an imaging surrogate for visualizing non-contrast-enhancing tumors, we investigated the correlation between T1- and T2-weighted relaxation times, apparent diffusion coefficient (ADC) on magnetic resonance imaging, and (11)C-methionine (MET) on positron emission tomography (PET). Moreover, we compared the T1- and T2-relaxation times and ADC with tumor cell density (TCD) findings obtained via stereotactic image-guided tissue sampling. Regions that presented a T1-relaxation time of >1850 ms but <3200 ms or a T2-relaxation time of >115 ms but <225 ms under 3 T indicated a high MET uptake. In addition, the stereotactic tissue sampling findings confirmed that the T1-relaxation time of 1850–3200 ms significantly indicated a higher TCD (p = 0.04). However, ADC was unable to show a significant correlation with MET uptake or with TCD. Finally, synthetically synthesized tumor load images from the T1- and T2-relaxation maps were able to visualize MET uptake presented on PET. MDPI 2021-08-12 /pmc/articles/PMC8393497/ /pubmed/34439221 http://dx.doi.org/10.3390/cancers13164067 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kinoshita, Manabu
Uchikoshi, Masato
Tateishi, Souichiro
Miyazaki, Shohei
Sakai, Mio
Ozaki, Tomohiko
Asai, Katsunori
Fujita, Yuya
Matsuhashi, Takahiro
Kanemura, Yonehiro
Shimosegawa, Eku
Hatazawa, Jun
Nakatsuka, Shin-ichi
Kishima, Haruhiko
Nakanishi, Katsuyuki
Magnetic Resonance Relaxometry for Tumor Cell Density Imaging for Glioma: An Exploratory Study via (11)C-Methionine PET and Its Validation via Stereotactic Tissue Sampling
title Magnetic Resonance Relaxometry for Tumor Cell Density Imaging for Glioma: An Exploratory Study via (11)C-Methionine PET and Its Validation via Stereotactic Tissue Sampling
title_full Magnetic Resonance Relaxometry for Tumor Cell Density Imaging for Glioma: An Exploratory Study via (11)C-Methionine PET and Its Validation via Stereotactic Tissue Sampling
title_fullStr Magnetic Resonance Relaxometry for Tumor Cell Density Imaging for Glioma: An Exploratory Study via (11)C-Methionine PET and Its Validation via Stereotactic Tissue Sampling
title_full_unstemmed Magnetic Resonance Relaxometry for Tumor Cell Density Imaging for Glioma: An Exploratory Study via (11)C-Methionine PET and Its Validation via Stereotactic Tissue Sampling
title_short Magnetic Resonance Relaxometry for Tumor Cell Density Imaging for Glioma: An Exploratory Study via (11)C-Methionine PET and Its Validation via Stereotactic Tissue Sampling
title_sort magnetic resonance relaxometry for tumor cell density imaging for glioma: an exploratory study via (11)c-methionine pet and its validation via stereotactic tissue sampling
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8393497/
https://www.ncbi.nlm.nih.gov/pubmed/34439221
http://dx.doi.org/10.3390/cancers13164067
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