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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.
Background:
Emx2 encodes for a transcription factor expressed in the embryonic intermediate mesoderm and central nervous system (CNS). It is implicated in several aspects of cerebral cortex development, including morphogenetic field specification, arealization, precursor proliferation and lamination. Four Emx2-associated antisense transcripts have been found in the urogenital system; one of them, Emx2OS, has been also detected in the adult brain. Until now, however, nothing is known about expression and function of Emx2OS in the developing CNS.
Methodology/Principal Findings:
By quantitative RT-PCR and in situ hybridization, we reconstructed the Emx2OS expression profile in the embryonic CNS, paying special attention to the developing cerebral cortex. Emx2OS was observed in a number of CNS structures expressing also Emx2. Within the cortex, Emx2OS was detectable in periventricular precursors, expressing the sense transcript, and peaked in newly born post-mitotic neurons not expressing such transcript. By integrating lentiviral gene delivery, RNAi, TetON technology, morpholino-mediated gene knock-down, drug-induced perturbation of gene expression, and quantitative RT-PCR, we addressed possible roles of Ex2 antisense RNA in Emx2 regulation, in primary CNS precursor cultures. We found that, in both cortical precursors and their neuronal progenies, Emx2 antisense RNA contributes to post-transcriptional down-regulation of its sense partner, possibly by a Dicer-promoted mechanism. The same RNA, when delivered to rhombo-spinal precursors, stimulates ectopic expression of Emx2, whereas Emx2 knock-out dramatically impairs Emx2OS transcription. This suggests that, within the developing CNS, a reciprocal Emx2/Emx2OS regulatory loop may normally sustain transcription at the Emx2 locus.
Conclusions/Significance:
This study shows that antisense transcripts may contribute to developmental regulation of a key transcription factor gene implicated in CNS patterning, possibly by complex and multilevel mechanisms. The activation of Emx2 by a short antisense transcript may be a prototype of a method for overexpressing single specific genes, without introducing additional copies of them into the genome.
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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