4.7 Article

Tlx3 Exerts Direct Control in Specifying Excitatory Over Inhibitory Neurons in the Dorsal Spinal Cord

期刊

出版社

FRONTIERS MEDIA SA
DOI: 10.3389/fcell.2021.642697

关键词

T-cell leukemia homeobox 3; dorsal horn; spinal cord; excitatory neuron; chromatin immunoprecipitation

资金

  1. Norte Portugal Regional Operational Program (NORTE 2020), under the PORTUGAL 2020 Partnership Agreement, through the European Regional Development Fund (FEDER) [Norte-01-0145-FEDER-000008]
  2. FCT - Fundacao para a Ciencia e Tecnologia [PTDC/SAU-OBD/099886/2008, PTDC/NEU-NMC/0315/2012]
  3. Universidade do Porto/Banco Santander Totta (Projetos Pluridisciplinares)
  4. [POCI-01-0145-FEDER-022122]
  5. Fundação para a Ciência e a Tecnologia [PTDC/SAU-OBD/099886/2008, PTDC/NEU-NMC/0315/2012] Funding Source: FCT

向作者/读者索取更多资源

The homeobox gene Tlx3 acts as a selector gene in controlling the development of late-born excitatory neurons in the dorsal spinal cord by specifying glutamatergic transmitter fate. Through genomics and validation experiments, it was found that Tlx3 directly activates genes specific to excitatory neurons and also directly represses genes associated with inhibitory neuronal fate. This study provides insight into the regulatory role of Tlx3 in neural development and reveals its novel function in controlling cell identity.
The spinal cord dorsal horn is a major station for integration and relay of somatosensory information and comprises both excitatory and inhibitory neuronal populations. The homeobox gene Tlx3 acts as a selector gene to control the development of late-born excitatory (dILB) neurons by specifying glutamatergic transmitter fate in dorsal spinal cord. However, since Tlx3 direct transcriptional targets remain largely unknown, it remains to be uncovered how Tlx3 functions to promote excitatory cell fate. Here we combined a genomics approach based on chromatin immunoprecipitation followed by next generation sequencing (ChIP-seq) and expression profiling, with validation experiments in Tlx3 null embryos, to characterize the transcriptional program of Tlx3 in mouse embryonic dorsal spinal cord. We found most dILB neuron specific genes previously identified to be directly activated by Tlx3. Surprisingly, we found Tlx3 also directly represses many genes associated with the alternative inhibitory dILA neuronal fate. In both cases, direct targets include transcription factors and terminal differentiation genes, showing that Tlx3 directly controls cell identity at distinct levels. Our findings provide a molecular frame for the master regulatory role of Tlx3 in developing glutamatergic dILB neurons. In addition, they suggest a novel function for Tlx3 as direct repressor of GABAergic dILA identity, pointing to how generation of the two alternative cell fates being tightly coupled.

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