Evidence that Dmrta2 acts as a transcriptional repressor of Pax6 in murine cortical progenitors and identification of a mutation crucial for DNA recognition associated with microcephaly in human
Shen, X.; Anirudhan, J.; Fatima, A.; Szemes, T.; Keruzore, M.; Plant, E.; Sabate San Jose, A.; Kricha, S.; Delhaye, L. P.; Mian, B. A.; Khalid, L. B.; Ali, F.; Zahra, H.; Ali, A.; Toft, M.; Dieu, M.; Van Lint, C.; Achouri, Y.; Renard, P.; Iqbal, Z.; Bellefroid, E. J.
Show abstract
Dmrta2 (also designated Dmrt5) is a transcriptional regulator expressed in cortical progenitors in a caudomedialhigh/rostrolaterallow gradient with important roles at different steps of cortical development. Dmrta2 has been suggested to act in cortex development mainly by differential suppression of Pax6 and other homeobox transcription factors such as the ventral telencephalic regulator Gsx2, which remains to be fully demonstrated. Here we have addressed the epistatic relation between Pax6 and Dmrta2 by comparing phenotypes in mutant embryos or embryos overexpressing both genes in various allelic combinations. We showed that Dmrta2 cooperates with Pax6 in the maintenance of cortical identity in dorsal telencephalic progenitors and that it acts as a transcriptional repressor of Pax6 to control cortical patterning. Mechanistically, we show that in P19 cells, Dmrta2 can act as a DNA-binding dependent repressor on the Pax6 E60 enhancer and that a point mutation that affects its DNA binding properties leads to agenesis of the corpus callosum, pachygyria, and the absence of the cingulate gyrus. Finally, we provide evidence that Dmrta2 binds to the Zfp423 zinc finger protein and that it enhances its ability to recruit the NurD repressor complex. Together, our results highlight the importance and conserved function of Dmrta2 in cortical development and provide novel insights into its mechanism of action. SIGNIFICANCE STATEMENTCorticogenesis is controlled by an array of transcription factors that coordinate neural progenitor self-renewal and differentiation to generate correct cortical cell number and diversity. However, how this complex array of transcription factors works in concert to regulate this delicate process remains largely unknown. Here we provide important insights into the mechanism of action of Dmrta2 by demonstrating that it cooperates with the transcription factor Pax6 to define the pallium-subpallium boundary and that it acts by repressing it, likely via the recruitment of Zfp423 and the NurD repressor complex, to control cortical patterning. Our data also reveal that a point mutation that affects its DNA binding causes cortical abnormalities in human, further highlighting its importance in cortex development.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- PRC1 Sustains the Memory of Neuronal Fate Independent of PRC2 Function 97%
- Defects in translation-dependent quality control pathways lead to convergent molecular and neurodevelopmental pathology 97%
- Establishment of Developmental Gene Silencing by Ordered Polycomb Complex Recruitment in Early Zebrafish Embryos 96%
Similar papers in this journal
- A highly conserved neuronal microexon in DAAM1 controls actin dynamics, RHOA/ROCK signaling, and memory formation 97%
- General and cell-type-specific aspects of the motor neuron maturation transcriptional program 96%
- Cell-type-specific chromatin occupancy by the pioneer factor Zelda drives key developmental transitions in Drosophila 96%
Similar papers in this journal
Similar papers in this journal
- A PRDM16-CtBP1/2 Complex Interacts with HDAC1/2 to Regulate Transcriptional Programs of Neurogenesis and Guide Cortical Neuron Migration 98%
- Dynamics of activating and repressive histone modifications in Drosophila neural stem cell lineages and brain tumors 96%
- Seven-up acts in neuroblasts to specify adult central complex neuron identity and initiate neuroblast decommissioning 96%
Similar papers in this journal
- Genetic removal of p70 S6K1 corrects coding sequence length-dependent alterations in mRNA translation in fragile X syndrome mice 96%
- Loss of the E3 ubiquitin ligases UBR-5 or HECD-1 restores Caenorhabditis elegans development in the absence of SWI/SNF function 95%
- Wnt signaling recruits KIF2A to the spindle to ensure chromosome congression and alignment during mitosis 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.