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Erschienen in: Neuroinformatics 2/2019

05.10.2018 | Original Article

Rhesus Macaque Brain Atlas Regions Aligned to an MRI Template

verfasst von: Jeffrey M. Moirano, Gleb Y. Bezgin, Elizabeth O. Ahlers, Rolf Kötter, Alexander K. Converse

Erschienen in: Neuroinformatics | Ausgabe 2/2019

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Abstract

To aid in the analysis of rhesus macaque brain images, we aligned digitized anatomical regions from the widely used atlas of Paxinos et al. to a published magnetic resonance imaging (MRI) template based on a large number of subjects. Digitally labelled atlas images were aligned to the template in 2D and then in 3D. The resulting grey matter regions appear qualitatively to be well registered to the template. To quantitatively validate the procedure, MR brain images of 20 rhesus macaques were aligned to the template along with regions drawn by hand in striatal and cortical areas in each subject’s MRI. There was good geometric overlap between the hand drawn regions and the template regions. Positron emission tomography (PET) images of the same subjects showing uptake of a dopamine D2 receptor ligand were aligned to the template space, and good agreement was found between tracer binding measures calculated using the hand drawn and template regions. In conclusion, an anatomically defined set of rhesus macaque brain regions has been aligned to an MRI template and has been validated for analysis of PET imaging in a subset of striatal and cortical areas. The entire set of over 200 regions is publicly available at https://​www.​nitrc.​org/​.

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Literatur
Zurück zum Zitat Adluru, N., Zhang, H., Fox, A. S., Shelton, S. E., Ennis, C. M., Bartosic, A. M., Oler, J. A., et al. (2012). A diffusion tensor brain template for rhesus macaques. NeuroImage, 59(1), 306–318.CrossRef Adluru, N., Zhang, H., Fox, A. S., Shelton, S. E., Ennis, C. M., Bartosic, A. M., Oler, J. A., et al. (2012). A diffusion tensor brain template for rhesus macaques. NeuroImage, 59(1), 306–318.CrossRef
Zurück zum Zitat Andreasen, A., Drewes, A. M., Assentoft, J. E., & Larsen, N. E. (1992). Computer-assisted alignment of standard serial sections without use of artificial landmarks. A practical approach to the utilization of incomplete information in 3-D reconstruction of the hippocampal region. Journal of Neuroscience Methods, 45(3), 199–207.CrossRef Andreasen, A., Drewes, A. M., Assentoft, J. E., & Larsen, N. E. (1992). Computer-assisted alignment of standard serial sections without use of artificial landmarks. A practical approach to the utilization of incomplete information in 3-D reconstruction of the hippocampal region. Journal of Neuroscience Methods, 45(3), 199–207.CrossRef
Zurück zum Zitat Avants, B. B., Epstein, C. L., Grossman, M., & Gee, J. C. (2008). Symmetric diffeomorphic image registration with cross-correlation: evaluating automated labeling of elderly and neurodegenerative brain. Medical Image Analysis, 12(1), 26–41.CrossRef Avants, B. B., Epstein, C. L., Grossman, M., & Gee, J. C. (2008). Symmetric diffeomorphic image registration with cross-correlation: evaluating automated labeling of elderly and neurodegenerative brain. Medical Image Analysis, 12(1), 26–41.CrossRef
Zurück zum Zitat Bezgin, G., Reid, A. T., Schubert, D., & Kötter, R. (2009). Matching spatial with ontological brain regions using Java tools for visualization, database access, and integrated data analysis. Neuroinformatics, 7(1), 7–22.CrossRef Bezgin, G., Reid, A. T., Schubert, D., & Kötter, R. (2009). Matching spatial with ontological brain regions using Java tools for visualization, database access, and integrated data analysis. Neuroinformatics, 7(1), 7–22.CrossRef
Zurück zum Zitat Ceritoglu, C., Wang, L., Selemon, L. D., Csernansky, J. G., Miller, M. I., & Tilak Ratnanather, J. (2010). Large deformation diffeomorphic metric mapping registration of reconstructed 3D histological section images and in vivo MR images. Frontiers in Human Neuroscience, 4, 43.PubMedPubMedCentral Ceritoglu, C., Wang, L., Selemon, L. D., Csernansky, J. G., Miller, M. I., & Tilak Ratnanather, J. (2010). Large deformation diffeomorphic metric mapping registration of reconstructed 3D histological section images and in vivo MR images. Frontiers in Human Neuroscience, 4, 43.PubMedPubMedCentral
Zurück zum Zitat Chakravarty, Mallar, M., Bertrand, G., Hodge, C. P., Sadikot, A. F., & Louis Collins, D. (2006). The creation of a brain atlas for image guided neurosurgery using serial histological data. NeuroImage, 30(2), 359–376.CrossRef Chakravarty, Mallar, M., Bertrand, G., Hodge, C. P., Sadikot, A. F., & Louis Collins, D. (2006). The creation of a brain atlas for image guided neurosurgery using serial histological data. NeuroImage, 30(2), 359–376.CrossRef
Zurück zum Zitat Chakravarty, Mallar, M., Frey, S., Collins, D. L. (2008). Digital atlas of the Rhesus Monkey brain in stereotaxic coordinates. In The rhesus monkey brain in stereotaxic coordinates, 2nd ed. Elsevier. Chakravarty, Mallar, M., Frey, S., Collins, D. L. (2008). Digital atlas of the Rhesus Monkey brain in stereotaxic coordinates. In The rhesus monkey brain in stereotaxic coordinates, 2nd ed. Elsevier.
Zurück zum Zitat Cohen, F. S., Yang, Z., Huang, Z., & Nissanov, J. (1998). Automatic matching of homologous histological sections. IEEE Transactions on Biomedical Engineering, 45(5), 642–649.CrossRef Cohen, F. S., Yang, Z., Huang, Z., & Nissanov, J. (1998). Automatic matching of homologous histological sections. IEEE Transactions on Biomedical Engineering, 45(5), 642–649.CrossRef
Zurück zum Zitat Dauguet, J., Delzescaux, T., Condé, F., Mangin, J.-F., Ayache, N., Hantraye, P., & Frouin, V. (2007). Three-dimensional reconstruction of stained histological slices and 3D non-linear registration with in-vivo MRI for whole baboon brain. Journal of Neuroscience Methods, 164(1), 191–204.CrossRef Dauguet, J., Delzescaux, T., Condé, F., Mangin, J.-F., Ayache, N., Hantraye, P., & Frouin, V. (2007). Three-dimensional reconstruction of stained histological slices and 3D non-linear registration with in-vivo MRI for whole baboon brain. Journal of Neuroscience Methods, 164(1), 191–204.CrossRef
Zurück zum Zitat Dice, L. R. (1945). Measures of the amount of ecologic association between species. Ecology, 26(3), 297–302.CrossRef Dice, L. R. (1945). Measures of the amount of ecologic association between species. Ecology, 26(3), 297–302.CrossRef
Zurück zum Zitat Ganser, K. A., Dickhaus, H., Metzner, R., & Wirtz, C. R. (2004). A deformable digital brain atlas system according to Talairach and Tournoux. Medical Image Analysis, 8(1), 3–22.CrossRef Ganser, K. A., Dickhaus, H., Metzner, R., & Wirtz, C. R. (2004). A deformable digital brain atlas system according to Talairach and Tournoux. Medical Image Analysis, 8(1), 3–22.CrossRef
Zurück zum Zitat Goldszal, A. F., Tretiak, O. J., Hand, P. J., Bhasin, S., & McEachron, D. L. (1995). Three-dimensional reconstruction of activated columns from 2-[14C]deoxy-D-glucose data. NeuroImage, 2(1), 9–20.CrossRef Goldszal, A. F., Tretiak, O. J., Hand, P. J., Bhasin, S., & McEachron, D. L. (1995). Three-dimensional reconstruction of activated columns from 2-[14C]deoxy-D-glucose data. NeuroImage, 2(1), 9–20.CrossRef
Zurück zum Zitat Hibbard, L. S., & Hawkins, R. A. (1988). Objective image alignment for three-dimensional reconstruction of digital autoradiograms. Journal of Neuroscience Methods, 26(1), 55–74.CrossRef Hibbard, L. S., & Hawkins, R. A. (1988). Objective image alignment for three-dimensional reconstruction of digital autoradiograms. Journal of Neuroscience Methods, 26(1), 55–74.CrossRef
Zurück zum Zitat Hopkins, W.D., Misiura, M., Pope, S.M., & Latash, E. M. (2015). Behavioral and brain asymmetries in primates: A preliminary evaluation of two evolutionary hypotheses.” In Miller, MB, Kingstone, A (eds.) Year in Cognitive Neuroscience 1359:65–83. Annals of the New York Academy of Sciences. https://doi.org/10.1111/nyas.12936. Hopkins, W.D., Misiura, M., Pope, S.M., & Latash, E. M. (2015). Behavioral and brain asymmetries in primates: A preliminary evaluation of two evolutionary hypotheses.” In Miller, MB, Kingstone, A (eds.) Year in Cognitive Neuroscience 1359:65–83. Annals of the New York Academy of Sciences. https://​doi.​org/​10.​1111/​nyas.​12936.
Zurück zum Zitat Jenkinson, M., & Smith, S. (2001). A global optimisation method for robust affine registration of brain images. Medical Image Analysis, 5(2), 143–156.CrossRef Jenkinson, M., & Smith, S. (2001). A global optimisation method for robust affine registration of brain images. Medical Image Analysis, 5(2), 143–156.CrossRef
Zurück zum Zitat Jenkinson, M., Bannister, P., Brady, M., & Smith, S. (2002). Improved optimization for the robust and accurate linear registration and motion correction of brain images. NeuroImage, 17(2), 825–841.CrossRef Jenkinson, M., Bannister, P., Brady, M., & Smith, S. (2002). Improved optimization for the robust and accurate linear registration and motion correction of brain images. NeuroImage, 17(2), 825–841.CrossRef
Zurück zum Zitat Kim, B., Boes, J. L., Frey, K. A., & Meyer, C. R. (1997). Mutual information for automated unwarping of rat brain autoradiographs. NeuroImage, 5(1), 31–40.CrossRef Kim, B., Boes, J. L., Frey, K. A., & Meyer, C. R. (1997). Mutual information for automated unwarping of rat brain autoradiographs. NeuroImage, 5(1), 31–40.CrossRef
Zurück zum Zitat Klein, A., Andersson, J., Ardekani, B. A., Ashburner, J., Avants, B., Chiang, M.-C., Christensen, G. E., et al. (2009). Evaluation of 14 nonlinear deformation algorithms applied to human brain MRI registration. NeuroImage, 46(3), 786–802.CrossRef Klein, A., Andersson, J., Ardekani, B. A., Ashburner, J., Avants, B., Chiang, M.-C., Christensen, G. E., et al. (2009). Evaluation of 14 nonlinear deformation algorithms applied to human brain MRI registration. NeuroImage, 46(3), 786–802.CrossRef
Zurück zum Zitat Logan, J., Fowler, J. S., Volkow, N. D., Wang, G. J., Ding, Y. S., & Alexoff, D. L. (1996). Distribution volume ratios without blood sampling from graphical analysis of PET data. Journal of Cerebral Blood Flow and Metabolism, 16(5), 834–840.CrossRef Logan, J., Fowler, J. S., Volkow, N. D., Wang, G. J., Ding, Y. S., & Alexoff, D. L. (1996). Distribution volume ratios without blood sampling from graphical analysis of PET data. Journal of Cerebral Blood Flow and Metabolism, 16(5), 834–840.CrossRef
Zurück zum Zitat Logothetis, N. K., Pauls, J., Augath, M., Trinath, T., & Oeltermann, A. (2001). Neurophysiological investigation of the basis of the FMRI signal. Nature, 412(6843), 150–157.CrossRef Logothetis, N. K., Pauls, J., Augath, M., Trinath, T., & Oeltermann, A. (2001). Neurophysiological investigation of the basis of the FMRI signal. Nature, 412(6843), 150–157.CrossRef
Zurück zum Zitat MacKenzie-Graham, A., Lee, E.-F., Dinov, I. D., Bota, M., Shattuck, D. W., Ruffins, S., Yuan, H., et al. (2004). A multimodal, multidimensional atlas of the C57BL/6J mouse brain. Journal of Anatomy, 204(2), 93–102.CrossRef MacKenzie-Graham, A., Lee, E.-F., Dinov, I. D., Bota, M., Shattuck, D. W., Ruffins, S., Yuan, H., et al. (2004). A multimodal, multidimensional atlas of the C57BL/6J mouse brain. Journal of Anatomy, 204(2), 93–102.CrossRef
Zurück zum Zitat Malandain, G., Bardinet, E., Nelissen, K., & Vanduffel, W. (2004). Fusion of autoradiographs with an MR volume using 2-D and 3-D linear transformations. NeuroImage, 23(1), 111–127.CrossRef Malandain, G., Bardinet, E., Nelissen, K., & Vanduffel, W. (2004). Fusion of autoradiographs with an MR volume using 2-D and 3-D linear transformations. NeuroImage, 23(1), 111–127.CrossRef
Zurück zum Zitat Mega, M. S., Chen, S. S., Thompson, P. M., Woods, R. P., Karaca, T. J., Tiwari, A., Vinters, H. V., Small, G. W., & Toga, A. W. (1997). Mapping histology to metabolism: Coregistration of stained whole-brain sections to Premortem PET in alzheimer’s disease. NeuroImage, 5(2), 147–153.CrossRef Mega, M. S., Chen, S. S., Thompson, P. M., Woods, R. P., Karaca, T. J., Tiwari, A., Vinters, H. V., Small, G. W., & Toga, A. W. (1997). Mapping histology to metabolism: Coregistration of stained whole-brain sections to Premortem PET in alzheimer’s disease. NeuroImage, 5(2), 147–153.CrossRef
Zurück zum Zitat Paxinos, G., Huang, X.-F., & Toga, A. W. (2000). The rhesus monkey brain in stereotaxic coordinates. Cambridge: Academic Press. Paxinos, G., Huang, X.-F., & Toga, A. W. (2000). The rhesus monkey brain in stereotaxic coordinates. Cambridge: Academic Press.
Zurück zum Zitat Paxinos, G., Huang, X.-F., Petrides, M., & Toga, A. W. (2009). The rhesus monkey brain in stereotaxic coordinates (2nd ed.). Cambridge: Academic Press. Paxinos, G., Huang, X.-F., Petrides, M., & Toga, A. W. (2009). The rhesus monkey brain in stereotaxic coordinates (2nd ed.). Cambridge: Academic Press.
Zurück zum Zitat Rohlfing, T., Kroenke, C. D., Sullivan, E.V., Dubach, M. F., Bowden, D. M, Grant, K. A., & Pfefferbaum, A.. (2012). The INIA19 template and NeuroMaps atlas for primate brain image parcellation and spatial normalization. Front Neuroinform 6. https://doi.org/10.3389/fninf.2012.00027. Rohlfing, T., Kroenke, C. D., Sullivan, E.V., Dubach, M. F., Bowden, D. M, Grant, K. A., & Pfefferbaum, A.. (2012). The INIA19 template and NeuroMaps atlas for primate brain image parcellation and spatial normalization. Front Neuroinform 6. https://​doi.​org/​10.​3389/​fninf.​2012.​00027.
Zurück zum Zitat Rubins, D. J., Melega, W. P., Lacan, G., Way, B., Plenevaux, A., Luxen, A., & Cherry, S. R. (2003). Development and evaluation of an automated atlas-based image analysis method for MicroPET studies of the rat brain. NeuroImage, 20(4), 2100–2118.CrossRef Rubins, D. J., Melega, W. P., Lacan, G., Way, B., Plenevaux, A., Luxen, A., & Cherry, S. R. (2003). Development and evaluation of an automated atlas-based image analysis method for MicroPET studies of the rat brain. NeuroImage, 20(4), 2100–2118.CrossRef
Zurück zum Zitat Saleem, K. S., & Logothetis, N. K. (2006). A combined MRI and histology atlas of the rhesus monkey brain. Amsterdam: Academic Press. Saleem, K. S., & Logothetis, N. K. (2006). A combined MRI and histology atlas of the rhesus monkey brain. Amsterdam: Academic Press.
Zurück zum Zitat Stephan, K. E., Kamper, L., Bozkurt, A., Burns, G. A., Young, M. P., & Kötter, R. (2001). Advanced database methodology for the collation of connectivity data on the macaque brain (CoCoMac). Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences, 356(1412), 1159–1186.CrossRef Stephan, K. E., Kamper, L., Bozkurt, A., Burns, G. A., Young, M. P., & Kötter, R. (2001). Advanced database methodology for the collation of connectivity data on the macaque brain (CoCoMac). Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences, 356(1412), 1159–1186.CrossRef
Zurück zum Zitat Streicher, J., Weninger, W. J., & Müller, G. B. (1997). External marker-based automatic Congruencing: a new method of 3D reconstruction from serial sections. The Anatomical Record, 248(4), 583–602.CrossRef Streicher, J., Weninger, W. J., & Müller, G. B. (1997). External marker-based automatic Congruencing: a new method of 3D reconstruction from serial sections. The Anatomical Record, 248(4), 583–602.CrossRef
Zurück zum Zitat Studholme, C., Drapaca, C., Iordanova, B., & Cardenas, V. (2006). Deformation-based mapping of volume change from serial brain MRI in the presence of local tissue contrast change. IEEE Transactions on Medical Imaging, 25(5), 626–639.CrossRef Studholme, C., Drapaca, C., Iordanova, B., & Cardenas, V. (2006). Deformation-based mapping of volume change from serial brain MRI in the presence of local tissue contrast change. IEEE Transactions on Medical Imaging, 25(5), 626–639.CrossRef
Zurück zum Zitat Tai, Y. C., Chatziioannou, A., Siegel, S., Young, J., Newport, D., Goble, R. N., Nutt, R. E., & Cherry, S. R. (2001). Performance evaluation of the MicroPET P4: A PET system dedicated to animal imaging. Physics in Medicine and Biology, 46(7), 1845–1862.CrossRef Tai, Y. C., Chatziioannou, A., Siegel, S., Young, J., Newport, D., Goble, R. N., Nutt, R. E., & Cherry, S. R. (2001). Performance evaluation of the MicroPET P4: A PET system dedicated to animal imaging. Physics in Medicine and Biology, 46(7), 1845–1862.CrossRef
Zurück zum Zitat Thompson, P. M., Woods, R. P., Mega, M. S., & Toga, A. W. (2000). Mathematical/computational challenges in creating deformable and probabilistic atlases of the human brain. Human Brain Mapping, 9(2), 81–92.CrossRef Thompson, P. M., Woods, R. P., Mega, M. S., & Toga, A. W. (2000). Mathematical/computational challenges in creating deformable and probabilistic atlases of the human brain. Human Brain Mapping, 9(2), 81–92.CrossRef
Zurück zum Zitat Tzourio-Mazoyer, N., Landeau, B., Papathanassiou, D., Crivello, F., Etard, O., Delcroix, N., Mazoyer, B., & Joliot, M. (2002). Automated anatomical labeling of activations in SPM using a macroscopic anatomical Parcellation of the MNI MRI single-subject brain. NeuroImage, 15(1), 273–289. https://doi.org/10.1006/nimg.2001.0978.CrossRef Tzourio-Mazoyer, N., Landeau, B., Papathanassiou, D., Crivello, F., Etard, O., Delcroix, N., Mazoyer, B., & Joliot, M. (2002). Automated anatomical labeling of activations in SPM using a macroscopic anatomical Parcellation of the MNI MRI single-subject brain. NeuroImage, 15(1), 273–289. https://​doi.​org/​10.​1006/​nimg.​2001.​0978.CrossRef
Zurück zum Zitat Yushkevich, P. A., Avants, B. B., Ng, L., Hawrylycz, M., Burstein, P. D., Zhang, H., & Gee, J. C. (2006). 3D Mouse brain reconstruction from histology using a coarse-to-fine approach. In Pluim, J. P. W., Likar, B., & Gerritsen, F. A. (eds) Biomedical Image Registration, Proceedings, 4057:230–37. Lecture Notes in Computer Science. Yushkevich, P. A., Avants, B. B., Ng, L., Hawrylycz, M., Burstein, P. D., Zhang, H., & Gee, J. C. (2006). 3D Mouse brain reconstruction from histology using a coarse-to-fine approach. In Pluim, J. P. W., Likar, B., & Gerritsen, F. A. (eds) Biomedical Image Registration, Proceedings, 4057:230–37. Lecture Notes in Computer Science.
Zurück zum Zitat Zijdenbos, A. P., Dawant, B. M., Margolin, R. A., & Palmer, A. C. (1994). Morphometric analysis of white matter lesions in MR images: Method and validation. IEEE Transactions on Medical Imaging, 13(4), 716–724.CrossRef Zijdenbos, A. P., Dawant, B. M., Margolin, R. A., & Palmer, A. C. (1994). Morphometric analysis of white matter lesions in MR images: Method and validation. IEEE Transactions on Medical Imaging, 13(4), 716–724.CrossRef
Metadaten
Titel
Rhesus Macaque Brain Atlas Regions Aligned to an MRI Template
verfasst von
Jeffrey M. Moirano
Gleb Y. Bezgin
Elizabeth O. Ahlers
Rolf Kötter
Alexander K. Converse
Publikationsdatum
05.10.2018
Verlag
Springer US
Erschienen in
Neuroinformatics / Ausgabe 2/2019
Print ISSN: 1539-2791
Elektronische ISSN: 1559-0089
DOI
https://doi.org/10.1007/s12021-018-9400-2

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