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Sonic Hedgehog Effectively Improves Oct4-Mediated Reprogramming of Astrocytes into Neural Stem Cells

  • Hao Yang
  • , Cuicui Liu
  • , Hong Fan
  • , Bo Chen
  • , Dageng Huang
  • , Lingling Zhang
  • , Qian Zhang
  • , Jing An
  • , Jingjing Zhao
  • , Yi Wang
  • , Dingjun Hao
  • Xi'an Jiaotong University

Research output: Contribution to journalArticlepeer-review

31 Scopus citations

Abstract

Irreversible neuron loss following spinal cord injury (SCI) usually results in persistent neurological dysfunction. The generation of autologous neural stem cells (NSCs) holds great potential for neural replenishment therapies and drug screening in SCI. Our recent studies demonstrated that mature astrocytes from the spinal cord can directly revert back to a pluripotent state under appropriate signals. However, in previous attempts, the reprogramming of astrocytes into induced NSCs (iNSCs) was unstable, inefficient, and frequently accompanied by generation of intermediate precursors. It remained unknown how to further increase the efficiency of astrocyte reprogramming into iNSCs. Here, we show that mature astrocytes could be directly converted into iNSCs by a single transcription factor, Oct4, and that the iNSCs displayed typical neurosphere morphology, authentic NSC gene expression, self-renewal capacity, and multipotency. Strikingly, Oct4-driven reprogramming of astrocytes into iNSCs was potentiated with continuous sonic hedgehog (Shh) stimulation, as demonstrated by a sped-up reprogramming and increased conversion efficiency. Moreover, the iNSC-derived neurons possessed functionality as neurons. Importantly, crosstalk between Sox2/Shh-targeted downstream signals and phosphatidylinositol 3-kinase/cyclin-dependent kinase 2/Smad ubiquitin regulatory factor 2 (PI3K/Cdk2/Smurf2) signaling is likely involved in the mechanisms underlying this cellular event. The highly efficient reprogramming of astrocytes to generate iNSCs will provide an alternative therapeutic approach for SCI using autologous cells. Yang and colleagues show that sonic hedgehog effectively potentiates Oct4-mediated reprogramming of mature astrocytes into neural stem cells (NSCs). The possible molecular mechanism underlying the reprogramming cellular event is characterized via the crosstalk between Sox2/Shh-targeted downstream signals responsible for cell reprogramming toward NSCs and activation of PI3K/Cdk2/Smurf2 signaling.

Original languageEnglish
Pages (from-to)1467-1482
Number of pages16
JournalMolecular Therapy
Volume27
Issue number8
DOIs
StatePublished - 7 Aug 2019

Keywords

  • Oct4
  • astrocyte
  • neural stem cells
  • reprogramming
  • sonic hedgehog

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