Dual control of neurogenesis by PC3 through cell cycle inhibition and induction of Math1

Daniela Canzoniere1, Stefano Farioli-Vecchioli, Filippo Conti

  • 1Istituto Neurobiologia e Medicina Molecolare and Istituto Biologia e Patologia Molecolare, Consiglio Nazionale delle Ricerche, 00156 Rome, Italy.

Insights

The gene PC3 (Tis21/BTG2) coordinates neurogenesis by controlling cell cycle arrest and neuronal differentiation. Upregulating PC3 in mice increased neuron production but impaired cerebellar development, highlighting its critical role.

Area of Science:

  • Developmental Neuroscience
  • Cell Cycle Regulation
  • Gene Expression

Background:

  • Cell cycle arrest and neurogenesis are coordinated by cell cycle genes and neural transcription factors.
  • The gene PC3 (Tis21/BTG2) inhibits cell cycle progression at G1 by repressing cyclin D1 transcription.

Purpose of the Study:

  • To investigate the role of PC3 in coordinating cell cycle exit and neurogenesis in mouse models.
  • To elucidate the molecular mechanisms by which PC3 influences neuronal development.

Main Methods:

  • Generated inducible mouse models with upregulated PC3 expression in neuronal precursors.
  • Utilized recombinant adenovirus to express PC3 in vitro.
  • Analyzed gene expression of cyclin D1 and Math1 in PC3 transgenic and Math1 null mice.

Main Results:

  • Upregulation of PC3 led to increased postmitotic neuron production and impaired cerebellar development.
  • PC3 inhibited cyclin D1 expression and increased Math1 expression in cerebellar granule precursors.
  • PC3 induced Math1 expression and stimulated its promoter activity in vitro, acting upstream of Math1.

Conclusions:

  • PC3 coordinates cerebellar granule cell precursor cell cycle exit and neurogenesis onset.
  • This coordination is achieved through the transcriptional control of cyclin D1 and Math1.
  • PC3 plays a critical role in regulating cerebellar development and neuronal differentiation.