Measurement of T1 of the ultrashort T2* components in white matter of the brain at 3T.
Recent research demonstrates that white matter of the brain contains not only long T2 components, but a minority of ultrashort T2* components. Adiabatic inversion recovery prepared dual echo ultrashort echo time (IR-dUTE) sequences can be used to selectively image the ultrashort T2* components in wh...
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doaj-c2c7cb8833c74ebfa8f7800c73591e912020-11-25T02:33:38ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0198e10329610.1371/journal.pone.0103296Measurement of T1 of the ultrashort T2* components in white matter of the brain at 3T.Jiang DuVipul ShethQun HeMichael CarlJun ChenJody Corey-BloomGraeme M BydderRecent research demonstrates that white matter of the brain contains not only long T2 components, but a minority of ultrashort T2* components. Adiabatic inversion recovery prepared dual echo ultrashort echo time (IR-dUTE) sequences can be used to selectively image the ultrashort T2* components in white matter of the brain using a clinical whole body scanner. The T2*s of the ultrashort T2* components can be quantified using mono-exponential decay fitting of the IR-dUTE signal at a series of different TEs. However, accurate T1 measurement of the ultrashort T2* components is technically challenging. Efficient suppression of the signal from the majority of long T2 components is essential for robust T1 measurement. In this paper we describe a novel approach to this problem based on the use of IR-dUTE data acquisitions with different TR and TI combinations to selectively detect the signal recovery of the ultrashort T2* components. Exponential recovery curve fitting provides efficient T1 estimation, with minimized contamination from the majority of long T2 components. A rubber phantom and a piece of bovine cortical bone were used for validation of this approach. Six healthy volunteers were studied. An averaged T2* of 0.32 ± 0.09 ms, and a short mean T1 of 226 ± 46 ms were demonstrated for the healthy volunteers at 3T.http://europepmc.org/articles/PMC4122467?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jiang Du Vipul Sheth Qun He Michael Carl Jun Chen Jody Corey-Bloom Graeme M Bydder |
spellingShingle |
Jiang Du Vipul Sheth Qun He Michael Carl Jun Chen Jody Corey-Bloom Graeme M Bydder Measurement of T1 of the ultrashort T2* components in white matter of the brain at 3T. PLoS ONE |
author_facet |
Jiang Du Vipul Sheth Qun He Michael Carl Jun Chen Jody Corey-Bloom Graeme M Bydder |
author_sort |
Jiang Du |
title |
Measurement of T1 of the ultrashort T2* components in white matter of the brain at 3T. |
title_short |
Measurement of T1 of the ultrashort T2* components in white matter of the brain at 3T. |
title_full |
Measurement of T1 of the ultrashort T2* components in white matter of the brain at 3T. |
title_fullStr |
Measurement of T1 of the ultrashort T2* components in white matter of the brain at 3T. |
title_full_unstemmed |
Measurement of T1 of the ultrashort T2* components in white matter of the brain at 3T. |
title_sort |
measurement of t1 of the ultrashort t2* components in white matter of the brain at 3t. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2014-01-01 |
description |
Recent research demonstrates that white matter of the brain contains not only long T2 components, but a minority of ultrashort T2* components. Adiabatic inversion recovery prepared dual echo ultrashort echo time (IR-dUTE) sequences can be used to selectively image the ultrashort T2* components in white matter of the brain using a clinical whole body scanner. The T2*s of the ultrashort T2* components can be quantified using mono-exponential decay fitting of the IR-dUTE signal at a series of different TEs. However, accurate T1 measurement of the ultrashort T2* components is technically challenging. Efficient suppression of the signal from the majority of long T2 components is essential for robust T1 measurement. In this paper we describe a novel approach to this problem based on the use of IR-dUTE data acquisitions with different TR and TI combinations to selectively detect the signal recovery of the ultrashort T2* components. Exponential recovery curve fitting provides efficient T1 estimation, with minimized contamination from the majority of long T2 components. A rubber phantom and a piece of bovine cortical bone were used for validation of this approach. Six healthy volunteers were studied. An averaged T2* of 0.32 ± 0.09 ms, and a short mean T1 of 226 ± 46 ms were demonstrated for the healthy volunteers at 3T. |
url |
http://europepmc.org/articles/PMC4122467?pdf=render |
work_keys_str_mv |
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