Cargando…
A 48-channel receive array coil for mesoscopic diffusion-weighted MRI of ex vivo human brain on the 3 T connectome scanner
In vivo diffusion-weighted magnetic resonance imaging is limited in signal-to-noise-ratio (SNR) and acquisition time, which constrains spatial resolution to the macroscale regime. Ex vivo imaging, which allows for arbitrarily long scan times, is critical for exploring human brain structure in the me...
Autores principales: | , , , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
2021
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8439104/ https://www.ncbi.nlm.nih.gov/pubmed/34118399 http://dx.doi.org/10.1016/j.neuroimage.2021.118256 |
_version_ | 1783752473730613248 |
---|---|
author | Scholz, Alina Etzel, Robin May, Markus W. Mahmutovic, Mirsad Tian, Qiyuan Ramos-Llordén, Gabriel Maffei, Chiara Bilgiç, Berkin Witzel, Thomas Stockmann, Jason P. Mekkaoui, Choukri Wald, Lawrence L. Huang, Susie Yi Yendiki, Anastasia Keil, Boris |
author_facet | Scholz, Alina Etzel, Robin May, Markus W. Mahmutovic, Mirsad Tian, Qiyuan Ramos-Llordén, Gabriel Maffei, Chiara Bilgiç, Berkin Witzel, Thomas Stockmann, Jason P. Mekkaoui, Choukri Wald, Lawrence L. Huang, Susie Yi Yendiki, Anastasia Keil, Boris |
author_sort | Scholz, Alina |
collection | PubMed |
description | In vivo diffusion-weighted magnetic resonance imaging is limited in signal-to-noise-ratio (SNR) and acquisition time, which constrains spatial resolution to the macroscale regime. Ex vivo imaging, which allows for arbitrarily long scan times, is critical for exploring human brain structure in the mesoscale regime without loss of SNR. Standard head array coils designed for patients are sub-optimal for imaging ex vivo whole brain specimens. The goal of this work was to design and construct a 48-channel ex vivo whole brain array coil for high-resolution and high b-value diffusion-weighted imaging on a 3T Connectome scanner. The coil was validated with bench measurements and characterized by imaging metrics on an agar brain phantom and an ex vivo human brain sample. The two-segment coil former was constructed for a close fit to a whole human brain, with small receive elements distributed over the entire brain. Imaging tests including SNR and G-factor maps were compared to a 64-channel head coil designed for in vivo use. There was a 2.9-fold increase in SNR in the peripheral cortex and a 1.3-fold gain in the center when compared to the 64-channel head coil. The 48-channel ex vivo whole brain coil also decreases noise amplification in highly parallel imaging, allowing acceleration factors of approximately one unit higher for a given noise amplification level. The acquired diffusion-weighted images in a whole ex vivo brain specimen demonstrate the applicability and advantage of the developed coil for high-resolution and high b-value diffusion-weighted ex vivo brain MRI studies. |
format | Online Article Text |
id | pubmed-8439104 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2021 |
record_format | MEDLINE/PubMed |
spelling | pubmed-84391042021-09-14 A 48-channel receive array coil for mesoscopic diffusion-weighted MRI of ex vivo human brain on the 3 T connectome scanner Scholz, Alina Etzel, Robin May, Markus W. Mahmutovic, Mirsad Tian, Qiyuan Ramos-Llordén, Gabriel Maffei, Chiara Bilgiç, Berkin Witzel, Thomas Stockmann, Jason P. Mekkaoui, Choukri Wald, Lawrence L. Huang, Susie Yi Yendiki, Anastasia Keil, Boris Neuroimage Article In vivo diffusion-weighted magnetic resonance imaging is limited in signal-to-noise-ratio (SNR) and acquisition time, which constrains spatial resolution to the macroscale regime. Ex vivo imaging, which allows for arbitrarily long scan times, is critical for exploring human brain structure in the mesoscale regime without loss of SNR. Standard head array coils designed for patients are sub-optimal for imaging ex vivo whole brain specimens. The goal of this work was to design and construct a 48-channel ex vivo whole brain array coil for high-resolution and high b-value diffusion-weighted imaging on a 3T Connectome scanner. The coil was validated with bench measurements and characterized by imaging metrics on an agar brain phantom and an ex vivo human brain sample. The two-segment coil former was constructed for a close fit to a whole human brain, with small receive elements distributed over the entire brain. Imaging tests including SNR and G-factor maps were compared to a 64-channel head coil designed for in vivo use. There was a 2.9-fold increase in SNR in the peripheral cortex and a 1.3-fold gain in the center when compared to the 64-channel head coil. The 48-channel ex vivo whole brain coil also decreases noise amplification in highly parallel imaging, allowing acceleration factors of approximately one unit higher for a given noise amplification level. The acquired diffusion-weighted images in a whole ex vivo brain specimen demonstrate the applicability and advantage of the developed coil for high-resolution and high b-value diffusion-weighted ex vivo brain MRI studies. 2021-06-09 2021-09 /pmc/articles/PMC8439104/ /pubmed/34118399 http://dx.doi.org/10.1016/j.neuroimage.2021.118256 Text en https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ) |
spellingShingle | Article Scholz, Alina Etzel, Robin May, Markus W. Mahmutovic, Mirsad Tian, Qiyuan Ramos-Llordén, Gabriel Maffei, Chiara Bilgiç, Berkin Witzel, Thomas Stockmann, Jason P. Mekkaoui, Choukri Wald, Lawrence L. Huang, Susie Yi Yendiki, Anastasia Keil, Boris A 48-channel receive array coil for mesoscopic diffusion-weighted MRI of ex vivo human brain on the 3 T connectome scanner |
title | A 48-channel receive array coil for mesoscopic diffusion-weighted MRI of ex vivo human brain on the 3 T connectome scanner |
title_full | A 48-channel receive array coil for mesoscopic diffusion-weighted MRI of ex vivo human brain on the 3 T connectome scanner |
title_fullStr | A 48-channel receive array coil for mesoscopic diffusion-weighted MRI of ex vivo human brain on the 3 T connectome scanner |
title_full_unstemmed | A 48-channel receive array coil for mesoscopic diffusion-weighted MRI of ex vivo human brain on the 3 T connectome scanner |
title_short | A 48-channel receive array coil for mesoscopic diffusion-weighted MRI of ex vivo human brain on the 3 T connectome scanner |
title_sort | 48-channel receive array coil for mesoscopic diffusion-weighted mri of ex vivo human brain on the 3 t connectome scanner |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8439104/ https://www.ncbi.nlm.nih.gov/pubmed/34118399 http://dx.doi.org/10.1016/j.neuroimage.2021.118256 |
work_keys_str_mv | AT scholzalina a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT etzelrobin a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT maymarkusw a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT mahmutovicmirsad a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT tianqiyuan a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT ramosllordengabriel a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT maffeichiara a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT bilgicberkin a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT witzelthomas a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT stockmannjasonp a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT mekkaouichoukri a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT waldlawrencel a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT huangsusieyi a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT yendikianastasia a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT keilboris a48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT scholzalina 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT etzelrobin 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT maymarkusw 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT mahmutovicmirsad 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT tianqiyuan 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT ramosllordengabriel 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT maffeichiara 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT bilgicberkin 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT witzelthomas 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT stockmannjasonp 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT mekkaouichoukri 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT waldlawrencel 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT huangsusieyi 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT yendikianastasia 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner AT keilboris 48channelreceivearraycoilformesoscopicdiffusionweightedmriofexvivohumanbrainonthe3tconnectomescanner |