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Vessel architecture imaging using multiband gradient-echo/spin-echo EPI

OBJECTIVES: To apply the MB (multiband) excitation and blipped-CAIPI (blipped-controlled aliasing in parallel imaging) techniques in a spin and gradient-echo (SAGE) EPI sequence to improve the slice coverage for vessel architecture imaging (VAI). MATERIALS AND METHODS: Both MB excitation and blipped...

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Autores principales: Zhang, Ke, Yun, Seong Dae, Triphan, Simon M. F., Sturm, Volker J., Buschle, Lukas R., Hahn, Artur, Heiland, Sabine, Bendszus, Martin, Schlemmer, Heinz-Peter, Shah, N. Jon, Ziener, Christian H., Kurz, Felix T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6688807/
https://www.ncbi.nlm.nih.gov/pubmed/31398234
http://dx.doi.org/10.1371/journal.pone.0220939
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author Zhang, Ke
Yun, Seong Dae
Triphan, Simon M. F.
Sturm, Volker J.
Buschle, Lukas R.
Hahn, Artur
Heiland, Sabine
Bendszus, Martin
Schlemmer, Heinz-Peter
Shah, N. Jon
Ziener, Christian H.
Kurz, Felix T.
author_facet Zhang, Ke
Yun, Seong Dae
Triphan, Simon M. F.
Sturm, Volker J.
Buschle, Lukas R.
Hahn, Artur
Heiland, Sabine
Bendszus, Martin
Schlemmer, Heinz-Peter
Shah, N. Jon
Ziener, Christian H.
Kurz, Felix T.
author_sort Zhang, Ke
collection PubMed
description OBJECTIVES: To apply the MB (multiband) excitation and blipped-CAIPI (blipped-controlled aliasing in parallel imaging) techniques in a spin and gradient-echo (SAGE) EPI sequence to improve the slice coverage for vessel architecture imaging (VAI). MATERIALS AND METHODS: Both MB excitation and blipped-CAIPI with in-plane parallel imaging were incorporated into a gradient-echo (GE)/spin-echo (SE) EPI sequence for simultaneous tracking of the dynamic MR signal changes in both GE and SE contrasts after the injection of contrast agent. MB and singleband (SB) excitation were compared using a 20-channel head coil at 3 Tesla, and high-resolution MB VAI could be performed in 32 glioma patients. RESULTS: Whole-brain covered high resolution VAI can be achieved after applying multiband excitation with a factor of 2 and in-plane parallel imaging with a factor of 3. The quality of the images resulting from MB acceleration was comparable to those from the SB method: images were reconstructed without any loss of spatial resolution or severe distortions. In addition, MB and SB signal-to-noise ratios (SNR) were similar. A relative low g-factor induced from the MB acceleration method was achieved after using a blipped-CAIPI technique (1.35 for GE and 1.33 for SE imaging). Performing quantitative VAI, we found that, among all VAI parametric maps, microvessel type indicator (MTI), distance map (I) and vascular-induced bolus peak-time shift (VIPS) were highly correlated. Likewise, VAI parametric maps of slope, slope length and short axis were highly correlated. CONCLUSIONS: Multiband accelerated SAGE successfully doubles the number of readout slices in the same measurement time when compared to conventional readout sequences. The corresponding VAI parametric maps provide insights into the complexity and heterogeneity of vascular changes in glioma.
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spelling pubmed-66888072019-08-15 Vessel architecture imaging using multiband gradient-echo/spin-echo EPI Zhang, Ke Yun, Seong Dae Triphan, Simon M. F. Sturm, Volker J. Buschle, Lukas R. Hahn, Artur Heiland, Sabine Bendszus, Martin Schlemmer, Heinz-Peter Shah, N. Jon Ziener, Christian H. Kurz, Felix T. PLoS One Research Article OBJECTIVES: To apply the MB (multiband) excitation and blipped-CAIPI (blipped-controlled aliasing in parallel imaging) techniques in a spin and gradient-echo (SAGE) EPI sequence to improve the slice coverage for vessel architecture imaging (VAI). MATERIALS AND METHODS: Both MB excitation and blipped-CAIPI with in-plane parallel imaging were incorporated into a gradient-echo (GE)/spin-echo (SE) EPI sequence for simultaneous tracking of the dynamic MR signal changes in both GE and SE contrasts after the injection of contrast agent. MB and singleband (SB) excitation were compared using a 20-channel head coil at 3 Tesla, and high-resolution MB VAI could be performed in 32 glioma patients. RESULTS: Whole-brain covered high resolution VAI can be achieved after applying multiband excitation with a factor of 2 and in-plane parallel imaging with a factor of 3. The quality of the images resulting from MB acceleration was comparable to those from the SB method: images were reconstructed without any loss of spatial resolution or severe distortions. In addition, MB and SB signal-to-noise ratios (SNR) were similar. A relative low g-factor induced from the MB acceleration method was achieved after using a blipped-CAIPI technique (1.35 for GE and 1.33 for SE imaging). Performing quantitative VAI, we found that, among all VAI parametric maps, microvessel type indicator (MTI), distance map (I) and vascular-induced bolus peak-time shift (VIPS) were highly correlated. Likewise, VAI parametric maps of slope, slope length and short axis were highly correlated. CONCLUSIONS: Multiband accelerated SAGE successfully doubles the number of readout slices in the same measurement time when compared to conventional readout sequences. The corresponding VAI parametric maps provide insights into the complexity and heterogeneity of vascular changes in glioma. Public Library of Science 2019-08-09 /pmc/articles/PMC6688807/ /pubmed/31398234 http://dx.doi.org/10.1371/journal.pone.0220939 Text en © 2019 Zhang et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Zhang, Ke
Yun, Seong Dae
Triphan, Simon M. F.
Sturm, Volker J.
Buschle, Lukas R.
Hahn, Artur
Heiland, Sabine
Bendszus, Martin
Schlemmer, Heinz-Peter
Shah, N. Jon
Ziener, Christian H.
Kurz, Felix T.
Vessel architecture imaging using multiband gradient-echo/spin-echo EPI
title Vessel architecture imaging using multiband gradient-echo/spin-echo EPI
title_full Vessel architecture imaging using multiband gradient-echo/spin-echo EPI
title_fullStr Vessel architecture imaging using multiband gradient-echo/spin-echo EPI
title_full_unstemmed Vessel architecture imaging using multiband gradient-echo/spin-echo EPI
title_short Vessel architecture imaging using multiband gradient-echo/spin-echo EPI
title_sort vessel architecture imaging using multiband gradient-echo/spin-echo epi
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6688807/
https://www.ncbi.nlm.nih.gov/pubmed/31398234
http://dx.doi.org/10.1371/journal.pone.0220939
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