Literature DB >> 33060132

Transcriptional regulation of MGE progenitor proliferation by PRDM16 controls cortical GABAergic interneuron production.

Miguel Turrero García1, José-Manuel Baizabal1, Diana N Tran1, Rui Peixoto2, Wengang Wang2, Yajun Xie1, Manal A Adam1, Lauren A English3, Christopher M Reid1, Salvador I Brito1, Matthew A Booker4, Michael Y Tolstorukov4, Corey C Harwell5.   

Abstract

The mammalian cortex is populated by neurons derived from neural progenitors located throughout the embryonic telencephalon. Excitatory neurons are derived from the dorsal telencephalon, whereas inhibitory interneurons are generated in its ventral portion. The transcriptional regulator PRDM16 is expressed by radial glia, neural progenitors present in both regions; however, its mechanisms of action are still not fully understood. It is unclear whether PRDM16 plays a similar role in neurogenesis in both dorsal and ventral progenitor lineages and, if so, whether it regulates common or unique networks of genes. Here, we show that Prdm16 expression in mouse medial ganglionic eminence (MGE) progenitors is required for maintaining their proliferative capacity and for the production of proper numbers of forebrain GABAergic interneurons. PRDM16 binds to cis-regulatory elements and represses the expression of region-specific neuronal differentiation genes, thereby controlling the timing of neuronal maturation. PRDM16 regulates convergent developmental gene expression programs in the cortex and MGE, which utilize both common and region-specific sets of genes to control the proliferative capacity of neural progenitors, ensuring the generation of correct numbers of cortical neurons.
© 2020. Published by The Company of Biologists Ltd.

Entities:  

Keywords:  CNS development; Cortical interneurons; Medial ganglionic eminence; Neural progenitors; Prdm16

Mesh:

Substances:

Year:  2020        PMID: 33060132      PMCID: PMC7687860          DOI: 10.1242/dev.187526

Source DB:  PubMed          Journal:  Development        ISSN: 0950-1991            Impact factor:   6.862


  79 in total

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