» Articles » PMID: 18037310

Construction of a 3D Probabilistic Atlas of Human Cortical Structures

Overview
Journal Neuroimage
Specialty Radiology
Date 2007 Nov 27
PMID 18037310
Citations 437
Authors
Affiliations
Soon will be listed here.
Abstract

We describe the construction of a digital brain atlas composed of data from manually delineated MRI data. A total of 56 structures were labeled in MRI of 40 healthy, normal volunteers. This labeling was performed according to a set of protocols developed for this project. Pairs of raters were assigned to each structure and trained on the protocol for that structure. Each rater pair was tested for concordance on 6 of the 40 brains; once they had achieved reliability standards, they divided the task of delineating the remaining 34 brains. The data were then spatially normalized to well-known templates using 3 popular algorithms: AIR5.2.5's nonlinear warp (Woods et al., 1998) paired with the ICBM452 Warp 5 atlas (Rex et al., 2003), FSL's FLIRT (Smith et al., 2004) was paired with its own template, a skull-stripped version of the ICBM152 T1 average; and SPM5's unified segmentation method (Ashburner and Friston, 2005) was paired with its canonical brain, the whole head ICBM152 T1 average. We thus produced 3 variants of our atlas, where each was constructed from 40 representative samples of a data processing stream that one might use for analysis. For each normalization algorithm, the individual structure delineations were then resampled according to the computed transformations. We next computed averages at each voxel location to estimate the probability of that voxel belonging to each of the 56 structures. Each version of the atlas contains, for every voxel, probability densities for each region, thus providing a resource for automated probabilistic labeling of external data types registered into standard spaces; we also computed average intensity images and tissue density maps based on the three methods and target spaces. These atlases will serve as a resource for diverse applications including meta-analysis of functional and structural imaging data and other bioinformatics applications where display of arbitrary labels in probabilistically defined anatomic space will facilitate both knowledge-based development and visualization of findings from multiple disciplines.

Citing Articles

Influence of dehydroepiandrosterone sulphate levels on the slower age-related decline in grey matter in younger women with polycystic ovary syndrome.

Chen M, Chen C, Chang Y, Huang C, Wu W, Ho H Brain Commun. 2025; 7(1):fcaf052.

PMID: 39958263 PMC: 11829216. DOI: 10.1093/braincomms/fcaf052.


A Neural Network Approach to Identify Left-Right Orientation of Anatomical Brain MRI.

Nishimaki K, Iyatomi H, Oishi K Brain Behav. 2025; 15(2):e70299.

PMID: 39924951 PMC: 11808181. DOI: 10.1002/brb3.70299.


A free association semantic task for fNIRS-based perinatal depression assessment.

Chen D, Yang X, Liang Y, Huang C, Zhang S, Li Y Front Neurol. 2025; 15:1491923.

PMID: 39882372 PMC: 11778336. DOI: 10.3389/fneur.2024.1491923.


Gaussianmorph: deformable medical image registration with Gaussian noise constraints.

Zhang R, Hu S, Zhang W, Wang Y, Hu Z, Wang Y Biomed Eng Lett. 2025; 15(1):105-115.

PMID: 39781058 PMC: 11704120. DOI: 10.1007/s13534-024-00428-6.


A survey on deep learning in medical image registration: New technologies, uncertainty, evaluation metrics, and beyond.

Chen J, Liu Y, Wei S, Bian Z, Subramanian S, Carass A Med Image Anal. 2024; 100():103385.

PMID: 39612808 PMC: 11730935. DOI: 10.1016/j.media.2024.103385.


References
1.
Hammers A, Allom R, Koepp M, Free S, Myers R, Lemieux L . Three-dimensional maximum probability atlas of the human brain, with particular reference to the temporal lobe. Hum Brain Mapp. 2003; 19(4):224-47. PMC: 6871794. DOI: 10.1002/hbm.10123. View

2.
Thompson P, Toga A . A surface-based technique for warping three-dimensional images of the brain. IEEE Trans Med Imaging. 1996; 15(4):402-17. DOI: 10.1109/42.511745. View

3.
Kikinis R, Gleason P, Moriarty T, Moore M, Alexander 3rd E, Stieg P . Computer-assisted interactive three-dimensional planning for neurosurgical procedures. Neurosurgery. 1996; 38(4):640-9; discussion 649-51. View

4.
Christensen G, Joshi S, Miller M . Volumetric transformation of brain anatomy. IEEE Trans Med Imaging. 1998; 16(6):864-77. DOI: 10.1109/42.650882. View

5.
Schiemann T, Freudenberg J, Pflesser B, Pommert A, Priesmeyer K, Riemer M . Exploring the Visible Human using the VOXEL-MAN framework. Comput Med Imaging Graph. 2000; 24(3):127-32. DOI: 10.1016/s0895-6111(00)00013-6. View