4.6 Article

The bHLH Transcription Factor NeuroD Governs Photoreceptor Genesis and Regeneration Through Delta-Notch Signaling

期刊

INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE
卷 56, 期 12, 页码 7496-7515

出版社

ASSOC RESEARCH VISION OPHTHALMOLOGY INC
DOI: 10.1167/iovs.15-17616

关键词

photoreceptor development; photoreceptor regeneration; rods; cones; cell cycle

资金

  1. NCRR NIH HHS [P40 RR01] Funding Source: Medline
  2. NEI NIH HHS [F31 EY020106, R01 EY007060, T32 EY013934, EY020106, F32 EY023129, R01 EY017753, EY017753, P30 EY007003, R01 EY07060] Funding Source: Medline
  3. PHS HHS [P30RY004068, P30EYO7003] Funding Source: Medline

向作者/读者索取更多资源

PURPOSE. Photoreceptor genesis in the retina requires precise regulation of progenitor cell competence, cell cycle exit, and differentiation, although information around the mechanisms that govern these events currently is lacking. In zebrafish, the basic helix-loop-helix (bHLH) transcription factor NeuroD governs photoreceptor genesis, but the signaling pathways through which NeuroD functions are unknown. The purpose of this study was to identify these pathways, and during photoreceptor genesis, Notch signaling was investigated as the putative mediator of NeuroD function. METHODS. In embryos, genetic mosaic analysis was used to determine if NeuroD functions is cell-or non-cell-autonomous. Morpholino-induced NeuroD knockdown, CRISPR/Cas9 mutation, and pharmacologic and transgenic approaches were used, followed by in situ hybridization, immunocytochemistry, and quantitative RT-PCR (qRT-PCR), to identify mechanisms through which NeuroD functions. In adults, following photoreceptor ablation and NeuroD knockdown, similar methods as above were used to identify NeuroD function during photoreceptor regeneration. RESULTS. In embryos, NeuroD function is non-cell-autonomous, NeuroD knockdown increases Notch pathway gene expression, Notch inhibition rescues the NeuroD knock-down- induced deficiency in cell cycle exit but not photoreceptor maturation, and Notch activation and CRISPR/Cas9 mutation of neurod recapitulate NeuroD knockdown. In adults, NeuroD knockdown prevents cell cycle exit and photoreceptor regeneration and increases Notch pathway gene expression, and Notch inhibition rescues this phenotype. CONCLUSIONS. These data demonstrate that during embryonic development, NeuroD governs photoreceptor genesis via non-cell-autonomous mechanisms and that, during photoreceptor development and regeneration, Notch signaling is a mechanistic link between NeuroD and cell cycle exit. In contrast, during embryonic development, NeuroD governs photoreceptor maturation via mechanisms that are independent of Notch signaling.

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