Regulation of Emx2 expression by antisense transcripts in murine cortico-cerebral precursors

Giulia Spigoni1, Chiara Gedressi, Antonello Mallamaci

  • 1International School for Advanced Studies (SISSA/ISAS), Trieste, Italy.

Plos One
|January 13, 2010
PubMed
Abstract

Insights

Emx2OS, an antisense RNA, regulates the Emx2 gene in the developing central nervous system (CNS). This antisense transcript fine-tunes Emx2 expression through complex mechanisms, potentially offering a novel gene overexpression strategy.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Developmental Biology

Background:

  • Emx2 is a transcription factor crucial for central nervous system (CNS) development, including cerebral cortex patterning.
  • Emx2OS, an antisense transcript associated with Emx2, is found in the adult brain, but its role in CNS development is unknown.

Purpose of the Study:

  • To investigate the expression profile and function of Emx2OS in the developing CNS.
  • To elucidate the regulatory role of Emx2OS on Emx2 gene expression.

Main Methods:

  • Quantitative RT-PCR and in situ hybridization to map Emx2OS expression.
  • Lentiviral gene delivery, RNAi, TetON technology, and morpholino-mediated gene knock-down in CNS precursor cultures.
  • Drug-induced perturbation of gene expression.

Main Results:

  • Emx2OS is expressed in the embryonic CNS, co-localizing with Emx2 in certain structures.
  • Emx2OS mediates post-transcriptional down-regulation of Emx2 in cortical precursors and neurons, potentially via a Dicer-dependent pathway.
  • Emx2OS stimulates ectopic Emx2 expression in rhombo-spinal precursors, and Emx2 knock-out reduces Emx2OS transcription, indicating a reciprocal regulatory loop.

Conclusions:

  • Antisense transcripts like Emx2OS play a role in the developmental regulation of key CNS patterning genes.
  • A reciprocal regulatory loop between Emx2 and Emx2OS sustains Emx2 transcription in the CNS.
  • Emx2 activation by antisense RNA offers a potential method for gene overexpression without genomic modification.

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