Related Experiment Video
Updated: Aug 25, 2026

Assaying Circuit Specific Regulation of Adult Hippocampal Neural Precursor Cells
Published on: July 24, 2019
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.
Abstract:
Growing evidence indicates that cell cycle arrest and neurogenesis are highly coordinated and interactive processes, governed by cell cycle genes and neural transcription factors. The gene PC3 (Tis21/BTG2) is expressed in the neuroblast throughout the neural tube and inhibits cell cycle progression at the G1 checkpoint by repressing cyclin D1 transcription. We generated inducible mouse models in which the expression of PC3 was upregulated in neuronal precursors of the neural tube and of the cerebellum. These mice exhibited a marked increase in the production of postmitotic neurons and impairment of cerebellar development. Cerebellar granule precursors of PC3 transgenic mice displayed inhibition of cyclin D1 expression and a strong increase in the expression of Math1, a transcription factor required for their differentiation. Furthermore, PC3, encoded by a recombinant adenovirus, also induced Math1 in postmitotic granule cells in vitro and stimulated the Math1 promoter activity. In contrast, PC3 expression was unaffected in the cerebellar primordium of Math1 null mice, suggesting that PC3 acts upstream to Math1. As a whole, our data suggest that cell cycle exit of cerebellar granule cell precursors and the onset of cerebellar neurogenesis are coordinated by PC3 through transcriptional control of cyclin D1 and Math1, respectively.
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.

