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The Drosophila homologue of CTIP1 (Bcl11a) and CTIP2 (Bcl11b) regulates neural stem cell temporal patterning. | LitMetric

The Drosophila homologue of CTIP1 (Bcl11a) and CTIP2 (Bcl11b) regulates neural stem cell temporal patterning.

Development

The Gurdon Institute and Department of Physiology, Development and Neuroscience, University of Cambridge, Tennis Court Road, Cambridge CB2 1QN, UK.

Published: September 2022

AI Article Synopsis

  • Neural stem cells (NSCs) in the developing nervous system use temporal patterning to differentiate into various neuronal subtypes, with specific transcription factors guiding this process.
  • A newly identified transcription factor named Chronophage (or 'time-eater') plays a crucial role in the transition from the Pdm to the Castor temporal windows, similar to mammalian CTIP1 and CTIP2.
  • Chronophage not only promotes the shift to generating Castor-associated neurons but also represses earlier neuronal types, showcasing its importance in regulating NSC development and neuron specification.

Article Abstract

In the developing nervous system, neural stem cells (NSCs) use temporal patterning to generate a wide variety of different neuronal subtypes. In Drosophila, the temporal transcription factors, Hunchback, Kruppel, Pdm and Castor, are sequentially expressed by NSCs to regulate temporal identity during neurogenesis. Here, we identify a new temporal transcription factor that regulates the transition from the Pdm to Castor temporal windows. This factor, which we call Chronophage (or 'time-eater'), is homologous to mammalian CTIP1 (Bcl11a) and CTIP2 (Bcl11b). We show that Chronophage binds upstream of the castor gene and regulates its expression. Consistent with Chronophage promoting a temporal switch, chronophage mutants generate an excess of Pdm-specified neurons and are delayed in generating neurons associated with the Castor temporal window. In addition to promoting the Pdm to Castor transition, Chronophage also represses the production of neurons generated during the earlier Hunchback and Kruppel temporal windows. Genetic interactions with Hunchback and Kruppel indicate that Chronophage regulates NSC competence to generate Hunchback- and Kruppel-specified neurons. Taken together, our results suggest that Chronophage has a conserved role in temporal patterning and neuronal subtype specification.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9482335PMC
http://dx.doi.org/10.1242/dev.200677DOI Listing

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