The DLX/Notch axis is necessary for spatiotemporal regulation of neural cell fate
Abstract
Neuronal-glial cell fate switch during forebrain development is highly regulated. DLX transcription factors are necessary for promoting GABAergic interneuron differentiation and migration but the mechanisms for concomitant repression of glial fate in neural progenitors remain elusive. Here, the DLX2 regulatory network dynamic in the developing ventral telencephalon is characterised using a multi-omic approach at single-cell resolution, including single-cell whole genome spatial transcriptomics. We identify a secondary proliferative zone in the ventral subventricular zone and spatiotemporal-context dependent Notch pathway repression by DLX2 in maintaining progenitor populations and facilitating neural differentiation. We find that DLX2 controls cell fate determination by directly repressing Notch signalling genes as well as glial fate-promoting transcription factors, thereby inhibiting early adoption of oligodendroglial differentiation during neurogenesis. Here, we show that temporal cell fate switch is mediated by DLX2 via a multilayer gene regulatory network, redefining current understanding of neuronal-glial cell specification mechanisms in the developing telencephalon. Neural stem cells adopt one of three major cell fates during embryonic development. Here, DLX2 is shown to suppress glial fate through direct transcriptional regulation, uncovering distinct mechanisms that are essential for neuronal specification
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Authors: Ryan Leung, Michael See, Ankita George, Patrick Barry, Kyle A. France, Natalie Charitakis, Mirana Ramialison, Maree C. Faux, David D. Eisenstat
Institutions: University of Alberta, The University of Melbourne, Royal Children's Hospital, Australian Regenerative Medicine Institute, University of Alberta Hospital, Murdoch Children's Research Institute, Melbourne Health