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Single cell RNA-seq analysis reveals temporally-regulated and quiescence-regulated gene expression in Drosophila larval neuroblasts.
Dillon, Noah; Cocanougher, Ben; Sood, Chhavi; Yuan, Xin; Kohn, Andrea B; Moroz, Leonid L; Siegrist, Sarah E; Zlatic, Marta; Doe, Chris Q.
Affiliation
  • Dillon N; Institute of Neuroscience, Howard Hughes Medical Institute, University of Oregon, OR, 97403, Eugene, USA.
  • Cocanougher B; Department of Zoology, University of Cambridge, Cambridge, UK.
  • Sood C; Department of Biology, University of Virginia, VA, 22904, Charlottesville, USA.
  • Yuan X; Department of Biology, University of Virginia, VA, 22904, Charlottesville, USA.
  • Kohn AB; Whitney Laboratory for Marine Biosciences, University of Florida, FL, 32080, St. Augustine, USA.
  • Moroz LL; Whitney Laboratory for Marine Biosciences, University of Florida, FL, 32080, St. Augustine, USA.
  • Siegrist SE; Department of Biology, University of Virginia, VA, 22904, Charlottesville, USA.
  • Zlatic M; MRC Laboratory of Molecular Biology, Dept of Zoology, University of Cambridge, Cambridge, UK.
  • Doe CQ; Janelia Research Campus, VA, Ashburn, USA.
Neural Dev ; 17(1): 7, 2022 08 24.
Article in En | MEDLINE | ID: mdl-36002894
ABSTRACT
The mechanisms that generate neural diversity during development remains largely unknown. Here, we use scRNA-seq methodology to discover new features of the Drosophila larval CNS across several key developmental timepoints. We identify multiple progenitor subtypes - both stem cell-like neuroblasts and intermediate progenitors - that change gene expression across larval development, and report on new candidate markers for each class of progenitors. We identify a pool of quiescent neuroblasts in newly hatched larvae and show that they are transcriptionally primed to respond to the insulin signaling pathway to exit from quiescence, including relevant pathway components in the adjacent glial signaling cell type. We identify candidate "temporal transcription factors" (TTFs) that are expressed at different times in progenitor lineages. Our work identifies many cell type specific genes that are candidates for functional roles, and generates new insight into the differentiation trajectory of larval neurons.
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Full text: 1 Database: MEDLINE Main subject: Drosophila Proteins / Neural Stem Cells Type of study: Prognostic_studies Limits: Animals Language: En Year: 2022 Type: Article

Full text: 1 Database: MEDLINE Main subject: Drosophila Proteins / Neural Stem Cells Type of study: Prognostic_studies Limits: Animals Language: En Year: 2022 Type: Article