LIF-dependent primitive neural stem cells derived from mouse ES cells represent a reversible stage of neural commitment

Stem Cell Res. 2013 Nov;11(3):1091-102. doi: 10.1016/j.scr.2013.07.007. Epub 2013 Aug 2.

Abstract

Primitive neural stem cells (NSCs) define an early stage of neural induction, thus provide a model to understand the mechanism that controls initial neural commitment. In this study, we investigated primitive NSCs derived from mouse embryonic stem cells (ESCs). By genome-wide transcriptional profiling, we revealed their unique signature and depicted the molecular changes underlying critical cell fate transitions during early neural induction at a global level. Together with qRT-PCR analysis, our data illustrated that primitive NSCs retained expression of key pluripotency genes Oct4 and Nanog, while exhibiting repression of other pluripotency-related genes Zscan4, Foxp1 and Dusp9 and up-regulation of neural markers Sox1 and Hes1. The early differentiation feature in primitive NSCs was also supported by their intermediate characters on cell cycle profiles. Moreover, re-plating primitive NSCs back to ESC culture condition could reverse them back to ESC stage, as shown by reversible regulation of marker genes, cell cycle profile changes and enhanced embryoid body formation. In addition, our microarray analysis also identified genes differentially expressed in primitive NSCs, and loss-of-function analysis demonstrated that Hes1 and Ccdc141 play important function at this stage, opening up an opportunity to further understand the regulation of early neural commitment.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Basic Helix-Loop-Helix Transcription Factors / genetics
  • Basic Helix-Loop-Helix Transcription Factors / metabolism
  • Cell Differentiation*
  • Cells, Cultured
  • Down-Regulation
  • Dual-Specificity Phosphatases / genetics
  • Dual-Specificity Phosphatases / metabolism
  • Embryoid Bodies / cytology
  • Embryoid Bodies / metabolism
  • Embryonic Stem Cells / cytology*
  • Embryonic Stem Cells / metabolism
  • Forkhead Transcription Factors / genetics
  • Forkhead Transcription Factors / metabolism
  • Gene Expression Profiling
  • Homeodomain Proteins / genetics
  • Homeodomain Proteins / metabolism
  • Leukemia Inhibitory Factor / metabolism*
  • Leukemia Inhibitory Factor / pharmacology
  • Mice
  • Nanog Homeobox Protein
  • Nerve Tissue Proteins / genetics
  • Nerve Tissue Proteins / metabolism
  • Neural Stem Cells / cytology*
  • Neural Stem Cells / drug effects
  • Neural Stem Cells / metabolism
  • Octamer Transcription Factor-3 / genetics
  • Octamer Transcription Factor-3 / metabolism
  • Repressor Proteins / genetics
  • Repressor Proteins / metabolism
  • Transcription Factor HES-1
  • Transcription Factors / genetics
  • Transcription Factors / metabolism
  • Up-Regulation

Substances

  • Basic Helix-Loop-Helix Transcription Factors
  • CCDC141 protein, mouse
  • Forkhead Transcription Factors
  • Foxp1 protein, mouse
  • Hes1 protein, mouse
  • Homeodomain Proteins
  • Leukemia Inhibitory Factor
  • Nanog Homeobox Protein
  • Nanog protein, mouse
  • Nerve Tissue Proteins
  • Octamer Transcription Factor-3
  • Pou5f1 protein, mouse
  • Repressor Proteins
  • Transcription Factor HES-1
  • Transcription Factors
  • Zscan4d protein, mouse
  • Dual-Specificity Phosphatases
  • Dusp9 protein, mouse