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Expression of Mammalian BM88/CEND1 in Drosophila Affects Nervous System Development by Interfering with Precursor Cell Formation 被引量:1

Expression of Mammalian BM88/CEND1 in Drosophila Affects Nervous System Development by Interfering with Precursor Cell Formation
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摘要 We used Drosophila melanogaster as an experimental model to express mouse and pig BM88/CEND1(cell cycle exit and neuronal differentiation 1) in order to investigate its potential functional effects on Drosophila neurogenesis. BM88/CEND1 is a neuron-specific protein whose function is implicated in triggering cells to exit from the cell cycle and differentiate towards a neuronal phenotype. Transgenic flies expressing either mouse or pig BM88/CEND1 in the nervous system had severe neuronal phenotypes with variable expressivity at various stages of embryonic development. In early embryonic stage 10,BM88/CEND1 expression led to an increase in the neuralspecific antigenicity of neuroectoderm at the expense of precursor cells [neuroblasts(Nbs) and ganglion mother cells(GMCs)] including the defective formation and differentiation of the MP2 precursors, whereas at later stages(12–15), protein accumulation induced gross morphological defects primarily in the CNS accompanied by a reduction of Nb and GMC markers. Furthermore, the neuronal precursor cells of embryos expressing BM88/CEND1 failed to carry out proper cell-cycle progression as revealed by the disorganized expression patterns of specific cell-cycle markers. BM88/CEND1 accumulation in the Drosophila eye affected normal eye disc development by disrupting the ommatidia. Finally, we demonstrated that expression of BM88/CEND1 modified/reduced the levels of activated MAP kinase indicating a functional effect of BM88/CEND1 on the MAPK signaling pathway. Our findings suggest that the expression of mammalian BM88/CEND1 in Drosophila exerts specific functional effects associated with neuronal precursor cell formation during embryonic neurogenesis and proper eye disc development.This study also validates the use of Drosophila as a powerful model system in which to investigate gene function and the underlying molecular mechanisms. We used Drosophila melanogaster as an experimental model to express mouse and pig BM88/CEND1(cell cycle exit and neuronal differentiation 1) in order to investigate its potential functional effects on Drosophila neurogenesis. BM88/CEND1 is a neuron-specific protein whose function is implicated in triggering cells to exit from the cell cycle and differentiate towards a neuronal phenotype. Transgenic flies expressing either mouse or pig BM88/CEND1 in the nervous system had severe neuronal phenotypes with variable expressivity at various stages of embryonic development. In early embryonic stage 10,BM88/CEND1 expression led to an increase in the neuralspecific antigenicity of neuroectoderm at the expense of precursor cells [neuroblasts(Nbs) and ganglion mother cells(GMCs)] including the defective formation and differentiation of the MP2 precursors, whereas at later stages(12–15), protein accumulation induced gross morphological defects primarily in the CNS accompanied by a reduction of Nb and GMC markers. Furthermore, the neuronal precursor cells of embryos expressing BM88/CEND1 failed to carry out proper cell-cycle progression as revealed by the disorganized expression patterns of specific cell-cycle markers. BM88/CEND1 accumulation in the Drosophila eye affected normal eye disc development by disrupting the ommatidia. Finally, we demonstrated that expression of BM88/CEND1 modified/reduced the levels of activated MAP kinase indicating a functional effect of BM88/CEND1 on the MAPK signaling pathway. Our findings suggest that the expression of mammalian BM88/CEND1 in Drosophila exerts specific functional effects associated with neuronal precursor cell formation during embryonic neurogenesis and proper eye disc development.This study also validates the use of Drosophila as a powerful model system in which to investigate gene function and the underlying molecular mechanisms.
出处 《Neuroscience Bulletin》 SCIE CAS CSCD 2019年第6期979-995,共17页 神经科学通报(英文版)
基金 supported by the General Secretariat of Research and Technology-EPAN (Competitiveness and Entepreneurship) Program
关键词 DROSOPHILA NEUROGENESIS BM88/CEND1 Nervous system Protein function Drosophila Neurogenesis BM88/CEND1 Nervous system Protein function
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  • 1Schepers A, Clevers H. Wnt signaling, stem cells, and cancer of the gastrointestinal tract. Cold Spring Harb Perspect Biol 2012; 4:a007989.
  • 2Dubreuil RR. Copper cells and stomach acid secretion in the Drosophila midgut. Int J Biochem Cell Biol 2004; 36:745- 752.
  • 3Strand M, Micchelli CA. Quiescent gastric stem cells maintain the aduk Drosophila stomach. Proc Natl Acad Sci USA 2011; 108:17696-17701.
  • 4Takashima S, Hartenstein V. Genetic control of intestinal stem cell specification and development: a comparative view. Stern Cell Rev 2012; 8:597-608.
  • 5Ohlstein B, Spradling A. The adult Drosophila posterior midgut is maintained by pluripotent stem cells. Nature 2006; 439:470-474.
  • 6Micchelli CA, Perrimon N. Evidence that stem cells reside in the adult Drosophila midgut epithelium. Nature 2006; 439:475-479.
  • 7Ohlstein B, Spradling A. Multipotent Drosophila intestinal stem cells specify daughter cell fates by differential notch signaling. Science 2007; 315:988-992.
  • 8Jiang H, Grenley MO, Bravo MJ, Blumhagen RZ, Edgar BA. EGFR/Ras/MAPK signaling mediates adult midgut epithelial homeostasis and regeneration in Drosophila. Cell Stem Cell 2011; 8:84-95.
  • 9Xu N, Wang SQ, Tan D, Gao Y, Lin G, Xi R. EGFR, Wingless and JAK/STAT signaling cooperatively maintain Drosophila intestinal stem cells. Dev Bio12011; 354:31-43.
  • 10Biteau B, Jasper H. EGF signaling regulates the proliferation of intestinal stem cells in Drosophila. Development 2011; 138:1045-1055.

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