TY - JOUR
T1 - Genetic Labeling of Nuclei-Specific Thalamocortical Neurons Reveals Putative Sensory-Modality Specific Genes
AU - Gezelius, Henrik
AU - Moreno-Juan, Verónica
AU - Mezzera, Cecilia
AU - Thakurela, Sudhir
AU - Rodríguez-Malmierca, Luis Miguel
AU - Pistolic, Jelena
AU - Benes, Vladimir
AU - Tiwari, Vijay K
AU - López-Bendito, Guillermina
PY - 2017/11
Y1 - 2017/11
N2 - The thalamus is a central brain structure with topographically ordered long-range axonal projections that convey sensory information to the cortex via distinct nuclei. Although there is an increasing knowledge about genes important for thalamocortical (TC) development, the identification of genetic landmarks of the distinct thalamic nuclei during the embryonic development has not been addressed systematically. Indeed, a more comprehensive understanding of how the axons from the individual nuclei find their way and connect to their corresponding cortical area is called for. Here, we used a genetic dual labeling strategy in mice to purify distinct principal sensory thalamic neurons. Subsequent genome-wide transcriptome profiling revealed genes specifically expressed in each nucleus during embryonic development. Analysis of regulatory regions of the identified genes revealed key transcription factors and networks that likely underlie the specification of individual sensory-modality TC connections. Finally, the importance of correct axon targeting for the specific sensory-modality population transcriptome was evidenced in a Sema6A mutant, in which visual TC axons are derailed at embryonic life. In sum, our data determined the developmental transcriptional profile of the TC neurons that will eventually support sensory processing.
AB - The thalamus is a central brain structure with topographically ordered long-range axonal projections that convey sensory information to the cortex via distinct nuclei. Although there is an increasing knowledge about genes important for thalamocortical (TC) development, the identification of genetic landmarks of the distinct thalamic nuclei during the embryonic development has not been addressed systematically. Indeed, a more comprehensive understanding of how the axons from the individual nuclei find their way and connect to their corresponding cortical area is called for. Here, we used a genetic dual labeling strategy in mice to purify distinct principal sensory thalamic neurons. Subsequent genome-wide transcriptome profiling revealed genes specifically expressed in each nucleus during embryonic development. Analysis of regulatory regions of the identified genes revealed key transcription factors and networks that likely underlie the specification of individual sensory-modality TC connections. Finally, the importance of correct axon targeting for the specific sensory-modality population transcriptome was evidenced in a Sema6A mutant, in which visual TC axons are derailed at embryonic life. In sum, our data determined the developmental transcriptional profile of the TC neurons that will eventually support sensory processing.
KW - Animals
KW - Axons/metabolism
KW - Cerebral Cortex/cytology
KW - Female
KW - Gene Expression Profiling
KW - Gene Expression Regulation, Developmental
KW - Homeodomain Proteins/genetics
KW - Immunohistochemistry
KW - In Situ Hybridization
KW - Male
KW - Mice, Transgenic
KW - Mutation
KW - Neural Pathways/cytology
KW - Semaphorins/deficiency
KW - Sensory Receptor Cells/cytology
KW - Thalamic Nuclei/cytology
KW - Transcriptome
U2 - 10.1093/cercor/bhw290
DO - 10.1093/cercor/bhw290
M3 - Journal article
C2 - 27655933
SN - 1047-3211
VL - 27
SP - 5054
EP - 5069
JO - Cerebral Cortex
JF - Cerebral Cortex
IS - 11
ER -