Control of G2 phase duration by CDC25B modulates the switch from direct to indirect neurogenesis in the neocortex
Roussat, M.; Jungas, T.; Audouard, C.; Medevielle, F.; Davy, A.; Pituello, F.; Bel-Vialar, S.
Show abstract
During development, cortical neurons are produced in a temporally regulated sequence from apical progenitors, directly, or indirectly through the production of intermediate basal progenitors. The balance between these major progenitors types is determinant for the production of the proper number and types of neurons and it is thus important to decipher the cellular and molecular cues controlling this equilibrium. Here we address the role of a cell cycle regulator, the CDC25B phosphatase, in this process. We show that deleting CDC25B in apical progenitors leads to a transient increase of the production of TBR1+ neurons at the expense of TBR2+ basal progenitors in mouse neocortex. This phenotype is associated with lengthening of the G2 phase of the cell cycle, the total cell cycle length being unaffected. Using in utero electroporation and cortical slice cultures, we demonstrate that the defect in TBR2+ basal progenitor production requires interaction with CDK1 and is due to the G2 phase lengthening in CDC25B mutants. Altogether, this study identifies a new role for CDC25B and the length of the G2 phase in direct versus indirect neurogenesis at early stages of the cortical development.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Her9 controls the stemness properties of the hindbrain boundary cells 96%
- Sox9 and Nfi transcription factors regulate the timing of neurogenesis and ependymal maturation in dopamine progenitors 96%
- Transcriptional regulation of MGE progenitor proliferation by PRDM16 controls cortical GABAergic interneuron production 96%
Similar papers in this journal
- The ciliary kinesin KIF7 controls the development of the cerebral cortex by acting differentially on SHH-signaling in dorsal and ventral forebrain 97%
- Extracellular matrix-inducing Sox9 orchestrates basal progenitor proliferation and gliogenesis in developing neocortex 97%
- Lmx1a is a master regulator of the cortical hem. 96%
Similar papers in this journal
Similar papers in this journal
- YAP/TAZ Maintain the Proliferative Capacity and Structural Organization of Radial Glial Cells During Brain Development 97%
- Temporal cell fate determination in the spinal cord is mediated by the duration of Notch signalling 96%
- Gsx2 Regulates Oligodendrocyte Precursor Formation in the Zebrafish Spinal Cord 95%
Similar papers in this journal
- A Highly Conserved Shh Enhancer Coordinates Hypothalamic and Craniofacial Development 96%
- Hindbrain rhombomere centers harbor a heterogenous population of dividing progenitors which rely on Notch-signaling 96%
- Trunk neural crest migratory position and asymmetric division predict terminal differentiation 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.