| Literature DB >> 29917012 |
Stephanie Tullo1,2, Gabriel A Devenyi2,3, Raihaan Patel2,4, Min Tae M Park2,5, D Louis Collins4,6, M Mallar Chakravarty2,3,4.
Abstract
Previous work from our group demonstrated the use of multiple input atlases to a modified multi-atlas framework (MAGeT-Brain) to improve subject-based segmentation accuracy. Currently, segmentation of the striatum, globus pallidus and thalamus are generated from a single high-resolution and -contrast MRI atlas derived from annotated serial histological sections. Here, we warp this atlas to five high-resolution MRI templates to create five de novo atlases. The overall goal of this work is to use these newly warped atlases as input to MAGeT-Brain in an effort to consolidate and improve the workflow presented in previous manuscripts from our group, allowing for simultaneous multi-structure segmentation. The work presented details the methodology used for the creation of the atlases using a technique previously proposed, where atlas labels are modified to mimic the intensity and contrast profile of MRI to facilitate atlas-to-template nonlinear transformation estimation. Dice's Kappa metric was used to demonstrate high quality registration and segmentation accuracy of the atlases. The final atlases are available at https://github.com/CobraLab/atlases/tree/master/5-atlas-subcortical.Entities:
Mesh:
Year: 2018 PMID: 29917012 PMCID: PMC6007088 DOI: 10.1038/sdata.2018.107
Source DB: PubMed Journal: Sci Data ISSN: 2052-4463 Impact factor: 6.444
Figure 1Outline of the workflow of the atlas-to-template customization.
Atlas of the striatum, globus pallidus, and thalamus derived from a histologically-derived atlas (Chakravarty et al., 2006) was warped to each of the five high-resolution T1-weighted MRI reference brain scans using linear registration, pseudo MRI creation, and nonlinear registration.
ANIMAL parameters used for atlas-to-template transformation.
| Step | Step Size (mm) | Sublattice diameter | Sublattice |
|---|---|---|---|
| 1 | 4 | 8 | 6 |
| 2 | 2 | 6 | 6 |
| 3 | 1 | 6 | 3 |
Figure 2Three dimensional reconstruction of high-resolution striatum, globus pallidus and thalamus atlases.
The five subcortical atlases were averaged to obtain a model atlas in which was used to derive surface representations of the striatum, globus pallidus and thalamus. (a) presents a superior view, (b) presents an inferior view, (c) presents a posterior view and (d) presents an anterior view of the bilateral striatum, globus pallidus and thalamus.
Average Dice’s Kappa scores across all atlases: reliability analysis of the segmentation accuracy of the atlas-to-template warping technique.
| Left hemisphere | Right hemisphere | Average | |
|---|---|---|---|
| Striatum | 0.885 | 0.882 | 0.884 |
| Globus Pallidus | 0.836 | 0.829 | 0.833 |
| Thalamus | 0.903 | 0.899 | 0.901 |
Dice’s Kappa scores for each MRI template: reliability analysis of the segmentation accuracy of the atlas-to-template warping technique.
| Left hemisphere | Right hemisphere | Average | |
|---|---|---|---|
| Striatum | 0.899 | 0.886 | 0.893 |
| Globus Pallidus | 0.846 | 0.838 | 0.842 |
| Thalamus | 0.916 | 0.899 | 0.907 |
| Striatum | 0.887 | 0.89 | 0.888 |
| Globus Pallidus | 0.833 | 0.828 | 0.83 |
| Thalamus | 0.904 | 0.903 | 0.903 |
| Striatum | 0.879 | 0.878 | 0.878 |
| Globus Pallidus | 0.809 | 0.819 | 0.814 |
| Thalamus | 0.895 | 0.892 | 0.893 |
| Striatum | 0.884 | 0.882 | 0.883 |
| Globus Pallidus | 0.843 | 0.827 | 0.835 |
| Thalamus | 0.906 | 0.904 | 0.905 |
| Striatum | 0.879 | 0.874 | 0.876 |
| Globus Pallidus | 0.851 | 0.831 | 0.841 |
| Thalamus | 0.895 | 0.897 | 0.896 |
Figure 3Final Atlas.
One of the five subcortical atlases, which will be used as input for MAGeT-Brain, is shown above detailing the three subcortical structures of interest (the striatum, globus pallidus and thalamus) on both hemisphere.