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Updated: Aug 8, 2026

Initiating Differentiation in Immortalized Multipotent Otic Progenitor Cells
Published on: January 2, 2016
Sox5 controls cell cycle progression in intermediate progenitor cells during dentate gyrus development
Paula Tirado-Melendro1,2, Lingling Li1, Cristina Medina-Menéndez1
1Instituto Cajal (CSIC), Madrid and Centro de Neurociencias Cajal (CSIC), Alcalá de Henares, Spain.
Sox5 is crucial for neural stem cell (NSC) development in the dentate gyrus (DG). Loss of Sox5 disrupts NSC proliferation and survival, impacting granule neuron (GN) differentiation and DG architecture.
Area of Science:
- Neuroscience
- Developmental Biology
- Genetics
Background:
- The dentate gyrus (DG) exhibits prolonged postnatal development compared to other brain regions.
- Neural stem cells (NSCs) in the DG form a niche for lifelong granule neuron (GN) production.
- The cell cycle regulation of intermediate progenitor cells (IPCs) in the DG is not well understood.
Purpose of the Study:
- To investigate the role of transcription factor Sox5 in the development of Sox5-expressing IPCs within the DG.
- To explore the impact of Sox5 loss on DG neurogenesis and architecture.
Main Methods:
- Conditional knockout mouse models were used to study Sox5 function in IPCs.
- Cell proliferation, cell cycle duration, and differentiation were analyzed.
- DG morphology was assessed in Sox5-deficient and Sox5/Sox6 compound mutant mice.
Main Results:
- Conditional loss of Sox5 in embryonic development caused significant alterations in IPC proliferation and survival.
- Sox5-deficient IPCs showed a shortened S-phase duration during late postnatal and juvenile stages.
- Defects in GN differentiation and subtle DG morphological changes were observed in Sox5-defective mice.
- Combined loss of Sox5 and Sox6 resulted in more severe DG morphological disruptions than Sox5 loss alone.
Conclusions:
- Sox5 plays a critical role in regulating IPC cell cycle progression during postnatal DG development.
- Sox5, potentially in conjunction with Sox6, is essential for proper GN maturation and DG architecture.
- These findings highlight the importance of Sox family transcription factors in the intricate developmental processes of the DG.
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