Literature DB >> 21429984

The pipsqueak-domain proteins Distal antenna and Distal antenna-related restrict Hunchback neuroblast expression and early-born neuronal identity.

Minoree Kohwi1, Laurel S Hiebert, Chris Q Doe.   

Abstract

A fundamental question in brain development is how precursor cells generate a diverse group of neural progeny in an ordered manner. Drosophila neuroblasts sequentially express the transcription factors Hunchback (Hb), Krüppel (Kr), Pdm1/Pdm2 (Pdm) and Castor (Cas). Hb is necessary and sufficient to specify early-born temporal identity and, thus, Hb downregulation is essential for specification of later-born progeny. Here, we show that distal antenna (dan) and distal antenna-related (danr), encoding pipsqueak motif DNA-binding domain protein family members, are detected in all neuroblasts during the Hb-to-Cas expression window. Dan and Danr are required for timely downregulation of Hb in neuroblasts and for limiting the number of early-born neurons. Dan and Danr function independently of Seven-up (Svp), an orphan nuclear receptor known to repress Hb expression in neuroblasts, because Dan, Danr and Svp do not regulate each other and dan danr svp triple mutants have increased early-born neurons compared with either dan danr or svp mutants. Interestingly, misexpression of Hb can induce Dan and Svp expression in neuroblasts, suggesting that Hb might activate a negative feedback loop to limit its own expression. We conclude that Dan/Danr and Svp act in parallel pathways to limit Hb expression and allow neuroblasts to transition from making early-born neurons to late-born neurons at the proper time.

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Year:  2011        PMID: 21429984      PMCID: PMC3074449          DOI: 10.1242/dev.061499

Source DB:  PubMed          Journal:  Development        ISSN: 0950-1991            Impact factor:   6.868


  29 in total

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8.  Distal antenna and distal antenna related encode nuclear proteins containing pipsqueak motifs involved in antenna development in Drosophila.

Authors:  B Starling Emerald; Jennifer Curtiss; Marek Mlodzik; Stephen M Cohen
Journal:  Development       Date:  2003-03       Impact factor: 6.868

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Authors:  C Q Doe
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  11 in total

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6.  Developmentally regulated subnuclear genome reorganization restricts neural progenitor competence in Drosophila.

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Review 7.  Temporal patterning of neural progenitors in Drosophila.

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8.  Temporal identity transition from Purkinje cell progenitors to GABAergic interneuron progenitors in the cerebellum.

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Review 9.  Transcriptional selectors, masters, and combinatorial codes: regulatory principles of neural subtype specification.

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