An Improved Postprocessing Method to Mitigate the Macroscopic Cross-Slice B0 Field Effect on R2 Measurements in the Mouse Brain at 7T

The MR transverse relaxation rate, R2*, has been widely used to detect iron and myelin content in tissue. However, it is also sensitive to macroscopic B0 inhomogeneities. One approach to correct for the B0 effect is to fit gradient-echo signals with the three-parameter model, a sinc function-weighte...

Full description

Saved in:
Bibliographic Details
Published inTomography (Ann Arbor) Vol. 10; no. 7; pp. 1074 - 1088
Main Authors Lee, Chu-Yu, Thedens, Daniel R., Lullmann, Olivia, Steinbach, Emily J., Tamplin, Michelle R., Petronek, Michael S., Grumbach, Isabella M., Allen, Bryan G., Harshman, Lyndsay A., Magnotta, Vincent A.
Format Journal Article
LanguageEnglish
Published 11.07.2024
Online AccessGet full text
ISSN2379-139X
2379-139X
DOI10.3390/tomography10070081

Cover

Abstract The MR transverse relaxation rate, R2*, has been widely used to detect iron and myelin content in tissue. However, it is also sensitive to macroscopic B0 inhomogeneities. One approach to correct for the B0 effect is to fit gradient-echo signals with the three-parameter model, a sinc function-weighted monoexponential decay. However, such three-parameter models are subject to increased noise sensitivity. To address this issue, this study presents a two-stage fitting procedure based on the three-parameter model to mitigate the B0 effect and reduce the noise sensitivity of R2* measurement in the mouse brain at 7T. MRI scans were performed on eight healthy mice. The gradient-echo signals were fitted with the two-stage fitting procedure to generate R2corr_t*. The signals were also fitted with the monoexponential and three-parameter models to generate R2nocorr* and R2corr*, respectively. Regions of interest (ROIs), including the corpus callosum, internal capsule, somatosensory cortex, caudo-putamen, thalamus, and lateral ventricle, were selected to evaluate the within-ROI mean and standard deviation (SD) of the R2* measurements. The results showed that the Akaike information criterion of the monoexponential model was significantly reduced by using the three-parameter model in the selected ROIs (p = 0.0039–0.0078). However, the within-ROI SD of R2corr* using the three-parameter model was significantly higher than that of the R2nocorr* in the internal capsule, caudo-putamen, and thalamus regions (p = 0.0039), a consequence partially due to the increased noise sensitivity of the three-parameter model. With the two-stage fitting procedure, the within-ROI SD of R2corr* was significantly reduced by 7.7–30.2% in all ROIs, except for the somatosensory cortex region with a fast in-plane variation of the B0 gradient field (p = 0.0039–0.0078). These results support the utilization of the two-stage fitting procedure to mitigate the B0 effect and reduce noise sensitivity for R2* measurement in the mouse brain.
AbstractList The MR transverse relaxation rate, R2*, has been widely used to detect iron and myelin content in tissue. However, it is also sensitive to macroscopic B0 inhomogeneities. One approach to correct for the B0 effect is to fit gradient-echo signals with the three-parameter model, a sinc function-weighted monoexponential decay. However, such three-parameter models are subject to increased noise sensitivity. To address this issue, this study presents a two-stage fitting procedure based on the three-parameter model to mitigate the B0 effect and reduce the noise sensitivity of R2* measurement in the mouse brain at 7T. MRI scans were performed on eight healthy mice. The gradient-echo signals were fitted with the two-stage fitting procedure to generate R2corr_t*. The signals were also fitted with the monoexponential and three-parameter models to generate R2nocorr* and R2corr*, respectively. Regions of interest (ROIs), including the corpus callosum, internal capsule, somatosensory cortex, caudo-putamen, thalamus, and lateral ventricle, were selected to evaluate the within-ROI mean and standard deviation (SD) of the R2* measurements. The results showed that the Akaike information criterion of the monoexponential model was significantly reduced by using the three-parameter model in the selected ROIs (p = 0.0039–0.0078). However, the within-ROI SD of R2corr* using the three-parameter model was significantly higher than that of the R2nocorr* in the internal capsule, caudo-putamen, and thalamus regions (p = 0.0039), a consequence partially due to the increased noise sensitivity of the three-parameter model. With the two-stage fitting procedure, the within-ROI SD of R2corr* was significantly reduced by 7.7–30.2% in all ROIs, except for the somatosensory cortex region with a fast in-plane variation of the B0 gradient field (p = 0.0039–0.0078). These results support the utilization of the two-stage fitting procedure to mitigate the B0 effect and reduce noise sensitivity for R2* measurement in the mouse brain.
The MR transverse relaxation rate, R2*, has been widely used to detect iron and myelin content in tissue. However, it is also sensitive to macroscopic B0 inhomogeneities. One approach to correct for the B0 effect is to fit gradient-echo signals with the three-parameter model, a sinc function-weighted monoexponential decay. However, such three-parameter models are subject to increased noise sensitivity. To address this issue, this study presents a two-stage fitting procedure based on the three-parameter model to mitigate the B0 effect and reduce the noise sensitivity of R2* measurement in the mouse brain at 7T. MRI scans were performed on eight healthy mice. The gradient-echo signals were fitted with the two-stage fitting procedure to generate R2corr_t*. The signals were also fitted with the monoexponential and three-parameter models to generate R2nocorr* and R2corr*, respectively. Regions of interest (ROIs), including the corpus callosum, internal capsule, somatosensory cortex, caudo-putamen, thalamus, and lateral ventricle, were selected to evaluate the within-ROI mean and standard deviation (SD) of the R2* measurements. The results showed that the Akaike information criterion of the monoexponential model was significantly reduced by using the three-parameter model in the selected ROIs (p = 0.0039-0.0078). However, the within-ROI SD of R2corr* using the three-parameter model was significantly higher than that of the R2nocorr* in the internal capsule, caudo-putamen, and thalamus regions (p = 0.0039), a consequence partially due to the increased noise sensitivity of the three-parameter model. With the two-stage fitting procedure, the within-ROI SD of R2corr* was significantly reduced by 7.7-30.2% in all ROIs, except for the somatosensory cortex region with a fast in-plane variation of the B0 gradient field (p = 0.0039-0.0078). These results support the utilization of the two-stage fitting procedure to mitigate the B0 effect and reduce noise sensitivity for R2* measurement in the mouse brain.The MR transverse relaxation rate, R2*, has been widely used to detect iron and myelin content in tissue. However, it is also sensitive to macroscopic B0 inhomogeneities. One approach to correct for the B0 effect is to fit gradient-echo signals with the three-parameter model, a sinc function-weighted monoexponential decay. However, such three-parameter models are subject to increased noise sensitivity. To address this issue, this study presents a two-stage fitting procedure based on the three-parameter model to mitigate the B0 effect and reduce the noise sensitivity of R2* measurement in the mouse brain at 7T. MRI scans were performed on eight healthy mice. The gradient-echo signals were fitted with the two-stage fitting procedure to generate R2corr_t*. The signals were also fitted with the monoexponential and three-parameter models to generate R2nocorr* and R2corr*, respectively. Regions of interest (ROIs), including the corpus callosum, internal capsule, somatosensory cortex, caudo-putamen, thalamus, and lateral ventricle, were selected to evaluate the within-ROI mean and standard deviation (SD) of the R2* measurements. The results showed that the Akaike information criterion of the monoexponential model was significantly reduced by using the three-parameter model in the selected ROIs (p = 0.0039-0.0078). However, the within-ROI SD of R2corr* using the three-parameter model was significantly higher than that of the R2nocorr* in the internal capsule, caudo-putamen, and thalamus regions (p = 0.0039), a consequence partially due to the increased noise sensitivity of the three-parameter model. With the two-stage fitting procedure, the within-ROI SD of R2corr* was significantly reduced by 7.7-30.2% in all ROIs, except for the somatosensory cortex region with a fast in-plane variation of the B0 gradient field (p = 0.0039-0.0078). These results support the utilization of the two-stage fitting procedure to mitigate the B0 effect and reduce noise sensitivity for R2* measurement in the mouse brain.
Author Petronek, Michael S.
Allen, Bryan G.
Lee, Chu-Yu
Magnotta, Vincent A.
Thedens, Daniel R.
Tamplin, Michelle R.
Grumbach, Isabella M.
Steinbach, Emily J.
Harshman, Lyndsay A.
Lullmann, Olivia
Author_xml – sequence: 1
  givenname: Chu-Yu
  surname: Lee
  fullname: Lee, Chu-Yu
– sequence: 2
  givenname: Daniel R.
  surname: Thedens
  fullname: Thedens, Daniel R.
– sequence: 3
  givenname: Olivia
  surname: Lullmann
  fullname: Lullmann, Olivia
– sequence: 4
  givenname: Emily J.
  surname: Steinbach
  fullname: Steinbach, Emily J.
– sequence: 5
  givenname: Michelle R.
  orcidid: 0000-0003-3816-883X
  surname: Tamplin
  fullname: Tamplin, Michelle R.
– sequence: 6
  givenname: Michael S.
  surname: Petronek
  fullname: Petronek, Michael S.
– sequence: 7
  givenname: Isabella M.
  surname: Grumbach
  fullname: Grumbach, Isabella M.
– sequence: 8
  givenname: Bryan G.
  surname: Allen
  fullname: Allen, Bryan G.
– sequence: 9
  givenname: Lyndsay A.
  surname: Harshman
  fullname: Harshman, Lyndsay A.
– sequence: 10
  givenname: Vincent A.
  orcidid: 0000-0001-8639-5354
  surname: Magnotta
  fullname: Magnotta, Vincent A.
BookMark eNplkEFLAzEQhYNUsNb-AU85elmdbJpN91hLq4UWRSt4W7LZSRvZ3dRNKvQH-L9NqQdBGJhv4PGY9y5Jr3UtEnLN4JbzHO6Ca9ymU7vtgQFIgDE7I_2UyzxhPH_v_eELMvT-AwBSSOPIPvmetHTR7Dr3hRV9dj5E1Oi9bTd0hWHrKhocXdlgNyogDVukK6U757XbWU2nkXzyWluN9B7o3GJd0ZkxqAN1LX1Jo4ny-w4bbIOntj05uL2P-k7FWwUq11fk3Kja4_B3D8jbfLaePibLp4fFdLJMdCpFSHKTCc5EKUegsDS5MKKEsipBapXmmRQm55k2FWQjNCjKKmOMqRKFAZMZwfmA3Jx8Y8rPPfpQNNZrrGvVYvyp4DAeSTlmIxml6Ul6DOs7NMWus43qDgWD4lh78b92_gOygntw
Cites_doi 10.1137/S1064827595289108
10.1002/mrm.23306
10.1007/s12021-014-9258-x
10.1111/j.2517-6161.1995.tb02031.x
10.1016/j.neuroimage.2009.01.018
10.1002/mrm.1910060412
10.1002/mrm.10148
10.1002/nbm.3546
10.1002/nbm.4092
10.1371/journal.pone.0193839
10.1016/j.neuroimage.2021.118371
10.1016/j.clinimag.2013.02.001
10.1016/j.mri.2019.05.022
10.1002/jmri.1880070203
10.1002/mrm.28919
10.1002/mrm.1910390310
10.1002/1522-2594(200009)44:3<358::AID-MRM3>3.0.CO;2-I
10.1109/TMI.2022.3228075
10.1016/j.neuroimage.2011.08.019
10.1002/mrm.1910320309
10.1038/nature05453
10.1016/j.neuroimage.2020.117216
10.1016/j.neuroimage.2010.09.025
10.1002/mrm.1910230120
10.1002/mrm.28468
10.1016/j.neuroimage.2011.10.076
10.1016/j.neuroimage.2012.09.055
10.1016/j.mri.2007.02.014
10.1002/mrm.20435
10.1007/978-1-4612-1694-0_15
10.1002/mrm.22316
10.1002/mrm.10291
10.1148/radiology.170.2.2911669
10.1002/nbm.4481
ContentType Journal Article
DBID AAYXX
CITATION
7X8
DOI 10.3390/tomography10070081
DatabaseName CrossRef
MEDLINE - Academic
DatabaseTitle CrossRef
MEDLINE - Academic
DatabaseTitleList CrossRef
MEDLINE - Academic
DeliveryMethod fulltext_linktorsrc
Discipline Medicine
EISSN 2379-139X
EndPage 1088
ExternalDocumentID 10_3390_tomography10070081
GroupedDBID 53G
AAYXX
AFZYC
ALMA_UNASSIGNED_HOLDINGS
CITATION
EMOBN
GROUPED_DOAJ
HYE
IAO
IGS
ITC
MODMG
M~E
OK1
PGMZT
RPM
7X8
ID FETCH-LOGICAL-c275t-9f65315b740aebf95f5b0bdb07ca29675f936cfd064efe5bd6111abe5f0f6f533
ISSN 2379-139X
IngestDate Fri Jul 11 09:41:58 EDT 2025
Tue Jul 01 01:51:05 EDT 2025
IsDoiOpenAccess false
IsOpenAccess true
IsPeerReviewed true
IsScholarly true
Issue 7
Language English
License https://creativecommons.org/licenses/by/4.0
LinkModel OpenURL
MergedId FETCHMERGED-LOGICAL-c275t-9f65315b740aebf95f5b0bdb07ca29675f936cfd064efe5bd6111abe5f0f6f533
Notes ObjectType-Article-1
SourceType-Scholarly Journals-1
ObjectType-Feature-2
content type line 23
ORCID 0000-0001-8639-5354
0000-0003-3816-883X
OpenAccessLink https://doi.org/10.3390/tomography10070081
PQID 3084778147
PQPubID 23479
PageCount 15
ParticipantIDs proquest_miscellaneous_3084778147
crossref_primary_10_3390_tomography10070081
ProviderPackageCode CITATION
AAYXX
PublicationCentury 2000
PublicationDate 20240711
PublicationDateYYYYMMDD 2024-07-11
PublicationDate_xml – month: 07
  year: 2024
  text: 20240711
  day: 11
PublicationDecade 2020
PublicationTitle Tomography (Ann Arbor)
PublicationYear 2024
References Haacke (ref_12) 1989; 170
Volz (ref_22) 2009; 45
Tan (ref_35) 2023; 42
Frahm (ref_14) 1988; 6
Ordidge (ref_25) 1994; 32
Shin (ref_2) 2021; 240
Soellradl (ref_23) 2021; 85
Dahnke (ref_20) 2005; 53
Cho (ref_26) 1992; 23
Yang (ref_15) 1998; 39
Bakker (ref_31) 2015; 13
Peters (ref_19) 2007; 25
Wehrli (ref_17) 2000; 44
Yang (ref_16) 2010; 63
An (ref_18) 2002; 47
Hernando (ref_21) 2012; 68
Branch (ref_27) 1999; 21
Lee (ref_11) 2012; 59
Benjamini (ref_33) 1995; 57
Avants (ref_32) 2011; 54
Lein (ref_30) 2007; 445
Wild (ref_24) 2002; 48
Antharam (ref_4) 2012; 59
ref_3
Reichenbach (ref_13) 1997; 7
Wang (ref_10) 2020; 222
ref_29
ref_28
ref_9
Yatmark (ref_8) 2019; 61
Dong (ref_34) 2021; 86
Rossi (ref_5) 2013; 37
ref_7
Deistung (ref_1) 2013; 65
ref_6
References_xml – ident: ref_28
– volume: 21
  start-page: 1
  year: 1999
  ident: ref_27
  article-title: A Subspace, Interior, and Conjugate Gradient Method for Large-Scale Bound-Constrained Minimization Problems
  publication-title: SIAM J. Sci. Comput.
  doi: 10.1137/S1064827595289108
– volume: 68
  start-page: 830
  year: 2012
  ident: ref_21
  article-title: R*(2) mapping in the presence of macroscopic B₀ field variations
  publication-title: Magn. Reson. Med.
  doi: 10.1002/mrm.23306
– volume: 13
  start-page: 353
  year: 2015
  ident: ref_31
  article-title: The Scalable Brain Atlas: Instant Web-Based Access to Public Brain Atlases and Related Content
  publication-title: Neuroinformatics
  doi: 10.1007/s12021-014-9258-x
– volume: 57
  start-page: 289
  year: 1995
  ident: ref_33
  article-title: Controlling the False Discovery Rate: A Practical and Powerful Approach to Multiple Testing
  publication-title: J. R. Stat. Soc. Ser. B Methodol.
  doi: 10.1111/j.2517-6161.1995.tb02031.x
– volume: 45
  start-page: 1135
  year: 2009
  ident: ref_22
  article-title: Reduction of susceptibility-induced signal losses in multi-gradient-echo images: Application to improved visualization of the subthalamic nucleus
  publication-title: Neuroimage
  doi: 10.1016/j.neuroimage.2009.01.018
– volume: 6
  start-page: 474
  year: 1988
  ident: ref_14
  article-title: Direct FLASH MR imaging of magnetic field inhomogeneities by gradient compensation
  publication-title: Magn. Reson. Med.
  doi: 10.1002/mrm.1910060412
– volume: 47
  start-page: 958
  year: 2002
  ident: ref_18
  article-title: Cerebral oxygen extraction fraction and cerebral venous blood volume measurements using MRI: Effects of magnetic field variation
  publication-title: Magn. Reson. Med.
  doi: 10.1002/mrm.10148
– ident: ref_3
  doi: 10.1002/nbm.3546
– ident: ref_6
  doi: 10.1002/nbm.4092
– ident: ref_7
  doi: 10.1371/journal.pone.0193839
– volume: 240
  start-page: 118371
  year: 2021
  ident: ref_2
  article-title: χ-separation: Magnetic susceptibility source separation toward iron and myelin mapping in the brain
  publication-title: Neuroimage
  doi: 10.1016/j.neuroimage.2021.118371
– volume: 37
  start-page: 631
  year: 2013
  ident: ref_5
  article-title: Clinical MRI for iron detection in Parkinson’s disease
  publication-title: Clin. Imaging
  doi: 10.1016/j.clinimag.2013.02.001
– volume: 61
  start-page: 267
  year: 2019
  ident: ref_8
  article-title: MRI imaging and histopathological study of brain iron overload of β-thalassemic mice
  publication-title: Magn. Reson. Imaging
  doi: 10.1016/j.mri.2019.05.022
– volume: 7
  start-page: 266
  year: 1997
  ident: ref_13
  article-title: Theory and application of static field inhomogeneity effects in gradient-echo imaging
  publication-title: J. Magn. Reson. Imaging
  doi: 10.1002/jmri.1880070203
– volume: 86
  start-page: 3034
  year: 2021
  ident: ref_34
  article-title: Regularized joint water-fat separation with B(0) map estimation in image space for 2D-navigated interleaved EPI based diffusion MRI
  publication-title: Magn. Reson. Med.
  doi: 10.1002/mrm.28919
– volume: 39
  start-page: 402
  year: 1998
  ident: ref_15
  article-title: Removal of local field gradient artifacts in T2*-weighted images at high fields by gradient-echo slice excitation profile imaging
  publication-title: Magn. Reson. Med.
  doi: 10.1002/mrm.1910390310
– volume: 44
  start-page: 358
  year: 2000
  ident: ref_17
  article-title: Postprocessing technique to correct for background gradients in image-based R*(2) measurements
  publication-title: Magn. Reson. Med.
  doi: 10.1002/1522-2594(200009)44:3<358::AID-MRM3>3.0.CO;2-I
– volume: 42
  start-page: 1374
  year: 2023
  ident: ref_35
  article-title: Free-Breathing Liver Fat, R₂* and B₀ Field Mapping Using Multi-Echo Radial FLASH and Regularized Model-Based Reconstruction
  publication-title: IEEE Trans. Med. Imaging
  doi: 10.1109/TMI.2022.3228075
– volume: 59
  start-page: 1249
  year: 2012
  ident: ref_4
  article-title: High field magnetic resonance microscopy of the human hippocampus in Alzheimer’s disease: Quantitative imaging and correlation with iron
  publication-title: Neuroimage
  doi: 10.1016/j.neuroimage.2011.08.019
– volume: 32
  start-page: 335
  year: 1994
  ident: ref_25
  article-title: Assessment of relative brain iron concentrations using T2-weighted and T2*-weighted MRI at 3 Tesla
  publication-title: Magn. Reson. Med.
  doi: 10.1002/mrm.1910320309
– volume: 445
  start-page: 168
  year: 2007
  ident: ref_30
  article-title: Genome-wide atlas of gene expression in the adult mouse brain
  publication-title: Nature
  doi: 10.1038/nature05453
– volume: 222
  start-page: 117216
  year: 2020
  ident: ref_10
  article-title: Methods for quantitative susceptibility and R2* mapping in whole post-mortem brains at 7T applied to amyotrophic lateral sclerosis
  publication-title: Neuroimage
  doi: 10.1016/j.neuroimage.2020.117216
– volume: 54
  start-page: 2033
  year: 2011
  ident: ref_32
  article-title: A reproducible evaluation of ANTs similarity metric performance in brain image registration
  publication-title: Neuroimage
  doi: 10.1016/j.neuroimage.2010.09.025
– volume: 23
  start-page: 193
  year: 1992
  ident: ref_26
  article-title: Reduction of susceptibility artifact in gradient-echo imaging
  publication-title: Magn. Reson. Med.
  doi: 10.1002/mrm.1910230120
– volume: 85
  start-page: 818
  year: 2021
  ident: ref_23
  article-title: Adaptive slice-specific z-shimming for 2D spoiled gradient-echo sequences
  publication-title: Magn. Reson. Med.
  doi: 10.1002/mrm.28468
– volume: 59
  start-page: 3967
  year: 2012
  ident: ref_11
  article-title: The contribution of myelin to magnetic susceptibility-weighted contrasts in high-field MRI of the brain
  publication-title: Neuroimage
  doi: 10.1016/j.neuroimage.2011.10.076
– volume: 65
  start-page: 299
  year: 2013
  ident: ref_1
  article-title: Toward in vivo histology: A comparison of quantitative susceptibility mapping (QSM) with magnitude-, phase-, and R2*-imaging at ultra-high magnetic field strength
  publication-title: Neuroimage
  doi: 10.1016/j.neuroimage.2012.09.055
– volume: 25
  start-page: 748
  year: 2007
  ident: ref_19
  article-title: T2* measurements in human brain at 1.5, 3 and 7 T
  publication-title: Magn. Reson. Imaging
  doi: 10.1016/j.mri.2007.02.014
– volume: 53
  start-page: 1202
  year: 2005
  ident: ref_20
  article-title: Limits of detection of SPIO at 3.0 T using T2 relaxometry
  publication-title: Magn. Reson. Med.
  doi: 10.1002/mrm.20435
– ident: ref_29
  doi: 10.1007/978-1-4612-1694-0_15
– volume: 63
  start-page: 1258
  year: 2010
  ident: ref_16
  article-title: Postprocessing correction for distortions in T2* decay caused by quadratic cross-slice B0 inhomogeneity
  publication-title: Magn. Reson. Med.
  doi: 10.1002/mrm.22316
– volume: 48
  start-page: 867
  year: 2002
  ident: ref_24
  article-title: Multiple gradient echo sequence optimized for rapid, single-scan mapping of R(2)(*) at high B0
  publication-title: Magn. Reson. Med.
  doi: 10.1002/mrm.10291
– volume: 170
  start-page: 457
  year: 1989
  ident: ref_12
  article-title: Reduction of T2* dephasing in gradient field-echo imaging
  publication-title: Radiology
  doi: 10.1148/radiology.170.2.2911669
– ident: ref_9
  doi: 10.1002/nbm.4481
SSID ssj0002022027
Score 2.2688744
Snippet The MR transverse relaxation rate, R2*, has been widely used to detect iron and myelin content in tissue. However, it is also sensitive to macroscopic B0...
SourceID proquest
crossref
SourceType Aggregation Database
Index Database
StartPage 1074
Title An Improved Postprocessing Method to Mitigate the Macroscopic Cross-Slice B0 Field Effect on R2 Measurements in the Mouse Brain at 7T
URI https://www.proquest.com/docview/3084778147
Volume 10
hasFullText 1
inHoldings 1
isFullTextHit
isPrint
link http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwnV1Na9tAEF3cFEovpZ80_WILvQm5a62kjY6OSQgBteAo4J7E7npFHRLJxFIPvfev9Xd1ZleS5SSFpmCELdBgaR4zb0Zvdwj5BEWHDqU58DXUE34Ycu4fqFD5SseRgXRudIGFYvolPjkPTxfRYjT6PVAtNbUa6593riv5H6_COfArrpK9h2d7o3ACvoN_4QgehuM_-Rg7erYpAKwRp-6uneofq__UToZGZpmu7DYaxlLMVGJa1NV6pb0ZJkj_7BJChXfIvGPUsnntbsaAiXkARvoG4qYTRKZVs0FJgYTfsvZENqS3WXXVboGNzHValt70WmFDoG83tMKf2ffG_9ZsVSkGwt9mu-Tdm4_7C6BGvmonOX-9XP1Y9XnkDAd1KulmWR3ZPs3peNjFCEJsj7ZR1ga7gIvEBza6cHnpjnNdtGYDVIpB6EVl6SCNT5gbF3gzRXCeoKay7p8HykSQGG0TYicCuJEne_Ui1E1oJb9t4wF5GAjh5AJtaX9hX_YG2GOycw7bW3Lrt9DM59tmdjnSLkWwvCd7Sp60BQudOvQ9IyNTPieP0laS8YL8mpa0AyHdBSF1IKR1RTsQUoAQHYCQDkBIDxm1IKQOhLQq6TygQxDSVeksIAipBSGVNRXZS3J-fJTNTvx2tgcEBRHVflLEEP0jJUImjSqSqIgUU0vFhJZBAlVskfBYF0tgzKYwkVrGkJSlMlHBiriAGuUV2Sur0rwmlE9Cwxl8giVEGRFLxjRcxQX813Ay0fvE655mvnZbuOR_d-E--dg98BwiLb4-k6WBu8o5AyaHO8SJN_ey-JY83iL-HdmrrxvzHphsrT5YmPwBKBChcg
linkProvider Directory of Open Access Journals
openUrl ctx_ver=Z39.88-2004&ctx_enc=info%3Aofi%2Fenc%3AUTF-8&rfr_id=info%3Asid%2Fsummon.serialssolutions.com&rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&rft.genre=article&rft.atitle=An+Improved+Postprocessing+Method+to+Mitigate+the+Macroscopic+Cross-Slice+B0+Field+Effect+on+R2+Measurements+in+the+Mouse+Brain+at+7T&rft.jtitle=Tomography+%28Ann+Arbor%29&rft.au=Lee%2C+Chu-Yu&rft.au=Thedens%2C+Daniel+R.&rft.au=Lullmann%2C+Olivia&rft.au=Steinbach%2C+Emily+J.&rft.date=2024-07-11&rft.issn=2379-139X&rft.eissn=2379-139X&rft.volume=10&rft.issue=7&rft.spage=1074&rft.epage=1088&rft_id=info:doi/10.3390%2Ftomography10070081&rft.externalDBID=n%2Fa&rft.externalDocID=10_3390_tomography10070081
thumbnail_l http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/lc.gif&issn=2379-139X&client=summon
thumbnail_m http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/mc.gif&issn=2379-139X&client=summon
thumbnail_s http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/sc.gif&issn=2379-139X&client=summon