Skip to main content
Top
Published in: European Radiology 5/2012

01-05-2012 | Computer Applications

Novel whole brain segmentation and volume estimation using quantitative MRI

Authors: J. West, J. B. M. Warntjes, P. Lundberg

Published in: European Radiology | Issue 5/2012

Login to get access

Abstract

Objectives

Brain segmentation and volume estimation of grey matter (GM), white matter (WM) and cerebro-spinal fluid (CSF) are important for many neurological applications. Volumetric changes are observed in multiple sclerosis (MS), Alzheimer’s disease and dementia, and in normal aging. A novel method is presented to segment brain tissue based on quantitative magnetic resonance imaging (qMRI) of the longitudinal relaxation rate R1, the transverse relaxation rate R2 and the proton density, PD.

Methods

Previously reported qMRI values for WM, GM and CSF were used to define tissues and a Bloch simulation performed to investigate R1, R2 and PD for tissue mixtures in the presence of noise. Based on the simulations a lookup grid was constructed to relate tissue partial volume to the R1–R2–PD space. The method was validated in 10 healthy subjects. MRI data were acquired using six resolutions and three geometries.

Results

Repeatability for different resolutions was 3.2% for WM, 3.2% for GM, 1.0% for CSF and 2.2% for total brain volume. Repeatability for different geometries was 8.5% for WM, 9.4% for GM, 2.4% for CSF and 2.4% for total brain volume.

Conclusion

We propose a new robust qMRI-based approach which we demonstrate in a patient with MS.

Key Points

A method for segmenting the brain and estimating tissue volume is presented
This method measures white matter, grey matter, cerebrospinal fluid and remaining tissue
The method calculates tissue fractions in voxel, thus accounting for partial volume
Repeatability was 2.2% for total brain volume with imaging resolution <2.0 mm
Appendix
Available only for authorised users
Literature
1.
go back to reference Rovira A, Leon A (2008) MR in the diagnosis and monitoring of multiple sclerosis: an overview. Eur J Radiol 67:409–414PubMedCrossRef Rovira A, Leon A (2008) MR in the diagnosis and monitoring of multiple sclerosis: an overview. Eur J Radiol 67:409–414PubMedCrossRef
2.
go back to reference Filippi M (2001) In-vivo tissue characterization of multiple sclerosis and other white matter diseases using magnetic resonance based techniques. J Neurol 248:1019–1029PubMedCrossRef Filippi M (2001) In-vivo tissue characterization of multiple sclerosis and other white matter diseases using magnetic resonance based techniques. J Neurol 248:1019–1029PubMedCrossRef
3.
go back to reference Wu Y, Warfield SK, Tan IL et al (2006) Automated segmentation of multiple sclerosis lesion subtypes with multichannel MRI. Neuroimage 32:1205–1215PubMedCrossRef Wu Y, Warfield SK, Tan IL et al (2006) Automated segmentation of multiple sclerosis lesion subtypes with multichannel MRI. Neuroimage 32:1205–1215PubMedCrossRef
4.
go back to reference Simmons A, Westman E, Muehlboeck S et al (2009) MRI measures of Alzheimer’s disease and the AddNeuroMed study. Ann N Y Acad Sci 1180:47–55PubMedCrossRef Simmons A, Westman E, Muehlboeck S et al (2009) MRI measures of Alzheimer’s disease and the AddNeuroMed study. Ann N Y Acad Sci 1180:47–55PubMedCrossRef
5.
go back to reference Jack CR Jr, Slomkowski M, Gracon S et al (2003) MRI as a biomarker of disease progression in a therapeutic trial of milameline for AD. Neurology 60:253–260PubMed Jack CR Jr, Slomkowski M, Gracon S et al (2003) MRI as a biomarker of disease progression in a therapeutic trial of milameline for AD. Neurology 60:253–260PubMed
6.
go back to reference Barnes J, Ourselin S, Fox NC (2009) Clinical application of measurement of hippocampal atrophy in degenerative dementias. Hippocampus 19:510–516PubMedCrossRef Barnes J, Ourselin S, Fox NC (2009) Clinical application of measurement of hippocampal atrophy in degenerative dementias. Hippocampus 19:510–516PubMedCrossRef
7.
go back to reference Guttmann CR, Jolesz FA, Kikinis R et al (1998) White matter changes with normal aging. Neurology 50:972–978PubMed Guttmann CR, Jolesz FA, Kikinis R et al (1998) White matter changes with normal aging. Neurology 50:972–978PubMed
8.
go back to reference Andersen AH, Zhang Z, Avison MJ, Gash DM (2002) Automated segmentation of multispectral brain MR images. J Neurosci Methods 122:13–23PubMedCrossRef Andersen AH, Zhang Z, Avison MJ, Gash DM (2002) Automated segmentation of multispectral brain MR images. J Neurosci Methods 122:13–23PubMedCrossRef
9.
go back to reference Alfano B, Brunetti A, Covelli EM et al (1997) Unsupervised, automated segmentation of the normal brain using a multispectral relaxometric magnetic resonance approach. Magn Reson Med 37:84–93PubMedCrossRef Alfano B, Brunetti A, Covelli EM et al (1997) Unsupervised, automated segmentation of the normal brain using a multispectral relaxometric magnetic resonance approach. Magn Reson Med 37:84–93PubMedCrossRef
10.
go back to reference Jackson EF, Narayana PA, Falconer JC (1994) Reproducibility of nonparametric feature map segmentation for determination of normal human intracranial volumes with MR imaging data. J Magn Reson Imaging 4:692–700PubMedCrossRef Jackson EF, Narayana PA, Falconer JC (1994) Reproducibility of nonparametric feature map segmentation for determination of normal human intracranial volumes with MR imaging data. J Magn Reson Imaging 4:692–700PubMedCrossRef
11.
go back to reference Kikinis R, Shenton ME, Gerig G et al (1992) Routine quantitative analysis of brain and cerebrospinal fluid spaces with MR imaging. J Magn Reson Imaging 2:619–629PubMedCrossRef Kikinis R, Shenton ME, Gerig G et al (1992) Routine quantitative analysis of brain and cerebrospinal fluid spaces with MR imaging. J Magn Reson Imaging 2:619–629PubMedCrossRef
12.
go back to reference Vannier MW, Butterfield RL, Jordan D, Murphy WA, Levitt RG, Gado M (1985) Multispectral analysis of magnetic resonance images. Radiology 154:221–224PubMed Vannier MW, Butterfield RL, Jordan D, Murphy WA, Levitt RG, Gado M (1985) Multispectral analysis of magnetic resonance images. Radiology 154:221–224PubMed
13.
go back to reference Shattuck DW, Sandor-Leahy SR, Schaper KA, Rottenberg DA, Leahy RM (2001) Magnetic resonance image tissue classification using a partial volume model. Neuroimage 13:856–876PubMedCrossRef Shattuck DW, Sandor-Leahy SR, Schaper KA, Rottenberg DA, Leahy RM (2001) Magnetic resonance image tissue classification using a partial volume model. Neuroimage 13:856–876PubMedCrossRef
14.
go back to reference Bonar DC, Schaper KA, Anderson JR, Rottenberg DA, Strother SC (1993) Graphical analysis of MR feature space for measurement of CSF, gray-matter, and white-matter volumes. J Comput Assist Tomogr 17:461–470PubMedCrossRef Bonar DC, Schaper KA, Anderson JR, Rottenberg DA, Strother SC (1993) Graphical analysis of MR feature space for measurement of CSF, gray-matter, and white-matter volumes. J Comput Assist Tomogr 17:461–470PubMedCrossRef
15.
go back to reference Choi HS, Haynor DR, Kim Y (1991) Partial volume tissue classification of multichannel magnetic resonance images-a mixel model. IEEE Trans Med Imaging 10:395–407PubMedCrossRef Choi HS, Haynor DR, Kim Y (1991) Partial volume tissue classification of multichannel magnetic resonance images-a mixel model. IEEE Trans Med Imaging 10:395–407PubMedCrossRef
16.
go back to reference Warntjes JB, Dahlqvist O, Lundberg P (2007) Novel method for rapid, simultaneous T1, T2*, and proton density quantification. Magn Reson Med 57:528–537PubMedCrossRef Warntjes JB, Dahlqvist O, Lundberg P (2007) Novel method for rapid, simultaneous T1, T2*, and proton density quantification. Magn Reson Med 57:528–537PubMedCrossRef
17.
go back to reference Clare S, Jezzard P (2001) Rapid T(1) mapping using multislice echo planar imaging. Magn Reson Med 45:630–634PubMedCrossRef Clare S, Jezzard P (2001) Rapid T(1) mapping using multislice echo planar imaging. Magn Reson Med 45:630–634PubMedCrossRef
18.
go back to reference Deoni SC, Rutt BK, Peters TM (2003) Rapid combined T1 and T2 mapping using gradient recalled acquisition in the steady state. Magn Reson Med 49:515–526PubMedCrossRef Deoni SC, Rutt BK, Peters TM (2003) Rapid combined T1 and T2 mapping using gradient recalled acquisition in the steady state. Magn Reson Med 49:515–526PubMedCrossRef
19.
go back to reference Deoni SC, Peters TM, Rutt BK (2005) High-resolution T1 and T2 mapping of the brain in a clinically acceptable time with DESPOT1 and DESPOT2. Magn Reson Med 53:237–241PubMedCrossRef Deoni SC, Peters TM, Rutt BK (2005) High-resolution T1 and T2 mapping of the brain in a clinically acceptable time with DESPOT1 and DESPOT2. Magn Reson Med 53:237–241PubMedCrossRef
20.
go back to reference Neeb H, Zilles K, Shah NJ (2006) A new method for fast quantitative mapping of absolute water content in vivo. Neuroimage 31:1156–1168PubMedCrossRef Neeb H, Zilles K, Shah NJ (2006) A new method for fast quantitative mapping of absolute water content in vivo. Neuroimage 31:1156–1168PubMedCrossRef
21.
go back to reference Zhu DC, Penn RD (2005) Full-brain T1 mapping through inversion recovery fast spin echo imaging with time-efficient slice ordering. Magn Reson Med 54:725–731PubMedCrossRef Zhu DC, Penn RD (2005) Full-brain T1 mapping through inversion recovery fast spin echo imaging with time-efficient slice ordering. Magn Reson Med 54:725–731PubMedCrossRef
22.
go back to reference Warntjes JB, Leinhard OD, West J, Lundberg P (2008) Rapid magnetic resonance quantification on the brain: optimization for clinical usage. Magn Reson Med 60:320–329PubMedCrossRef Warntjes JB, Leinhard OD, West J, Lundberg P (2008) Rapid magnetic resonance quantification on the brain: optimization for clinical usage. Magn Reson Med 60:320–329PubMedCrossRef
23.
go back to reference Breger RK, Wehrli FW, Charles HC, MacFall JR, Haughton VM (1986) Reproducibility of relaxation and spin-density parameters in phantoms and the human brain measured by MR imaging at 1.5 T. Magn Reson Med 3:649–662PubMedCrossRef Breger RK, Wehrli FW, Charles HC, MacFall JR, Haughton VM (1986) Reproducibility of relaxation and spin-density parameters in phantoms and the human brain measured by MR imaging at 1.5 T. Magn Reson Med 3:649–662PubMedCrossRef
24.
go back to reference Whittall KP, MacKay AL, Graeb DA, Nugent RA, Li DK, Paty DW (1997) In vivo measurement of T2 distributions and water contents in normal human brain. Magn Reson Med 37:34–43PubMedCrossRef Whittall KP, MacKay AL, Graeb DA, Nugent RA, Li DK, Paty DW (1997) In vivo measurement of T2 distributions and water contents in normal human brain. Magn Reson Med 37:34–43PubMedCrossRef
25.
go back to reference Bottomley PA, Hardy CJ, Argersinger RE, Allen-Moore G (1987) A review of 1H nuclear magnetic resonance relaxation in pathology: are T1 and T2 diagnostic? Med Phys 14:1–37PubMedCrossRef Bottomley PA, Hardy CJ, Argersinger RE, Allen-Moore G (1987) A review of 1H nuclear magnetic resonance relaxation in pathology: are T1 and T2 diagnostic? Med Phys 14:1–37PubMedCrossRef
26.
go back to reference Levesque IR, Pike GB (2009) Characterizing healthy and diseased white matter using quantitative magnetization transfer and multicomponent T(2) relaxometry: a unified view via a four-pool model. Magn Reson Med 62:1487–1496PubMedCrossRef Levesque IR, Pike GB (2009) Characterizing healthy and diseased white matter using quantitative magnetization transfer and multicomponent T(2) relaxometry: a unified view via a four-pool model. Magn Reson Med 62:1487–1496PubMedCrossRef
27.
go back to reference Fletcher LM, Barsotti JB, Hornak JP (1993) A multispectral analysis of brain tissues. Magn Reson Med 29:623–630PubMedCrossRef Fletcher LM, Barsotti JB, Hornak JP (1993) A multispectral analysis of brain tissues. Magn Reson Med 29:623–630PubMedCrossRef
28.
go back to reference Alfano B, Brunetti A, Ciarmiello A, Salvatore M (1992) Simultaneous display of multiple MR parameters with “quantitative magnetic color imaging”. J Comput Assist Tomogr 16:634–640PubMedCrossRef Alfano B, Brunetti A, Ciarmiello A, Salvatore M (1992) Simultaneous display of multiple MR parameters with “quantitative magnetic color imaging”. J Comput Assist Tomogr 16:634–640PubMedCrossRef
29.
go back to reference Bottomley PA, Foster TH, Argersinger RE, Pfeifer LM (1984) A review of normal tissue hydrogen NMR relaxation times and relaxation mechanisms from 1–100 MHz: dependence on tissue type, NMR frequency, temperature, species, excision, and age. Med Phys 11:425–448PubMedCrossRef Bottomley PA, Foster TH, Argersinger RE, Pfeifer LM (1984) A review of normal tissue hydrogen NMR relaxation times and relaxation mechanisms from 1–100 MHz: dependence on tissue type, NMR frequency, temperature, species, excision, and age. Med Phys 11:425–448PubMedCrossRef
30.
go back to reference Groeneveld RA, Meeden G (1984) Measuring skewness and kurtosis. The Statistician 33:9CrossRef Groeneveld RA, Meeden G (1984) Measuring skewness and kurtosis. The Statistician 33:9CrossRef
Metadata
Title
Novel whole brain segmentation and volume estimation using quantitative MRI
Authors
J. West
J. B. M. Warntjes
P. Lundberg
Publication date
01-05-2012
Publisher
Springer-Verlag
Published in
European Radiology / Issue 5/2012
Print ISSN: 0938-7994
Electronic ISSN: 1432-1084
DOI
https://doi.org/10.1007/s00330-011-2336-7

Other articles of this Issue 5/2012

European Radiology 5/2012 Go to the issue