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Updated: Feb 5, 2026

Heat-Induced Antigen Retrieval: An Effective Method to Detect and Identify Progenitor Cell Types during Adult Hippocampal Neurogenesis
Published on: August 30, 2013
Effects of p21 on adult hippocampal neuronal development after irradiation
Yu-Qing Li1, Chong Shun Wong1,2
11Sunnybrook Health Sciences Centre, University of Toronto, Toronto, ON Canada.
Abstract:
Inhibition of hippocampal neurogenesis is implicated in neurocognitive impairment after cranial irradiation. We recently demonstrated that disruption of neuronal development after DNA damage was regulated by p53. The cyclin-dependent kinase inhibitor 1 or p21, a downstream effector p53, mediates cell cycle arrest in response to DNA damage. There is evidence that p21 negatively regulates proliferation of neural progenitors (NPCs). Here we characterized the effects of p21 on disruption of neuronal development in the hippocampal dentate gyrus after irradiation. We irradiated young adult mice wild type (+/+) or knockout (-/-) of the Cdkn1a (p21) gene, and used different bromodeoxyuridine (BrdU) paradigms for cell fate mapping. The acute apoptotic response of NPCs in the subgranular zone of the dentate gyrus was independent of p21 after irradiation. In nonirradiated mice, p21 knockout resulted in an increase in neuroblast proliferation and neurogenesis. At 9 weeks after 5Gy, NPCs in the subgranular zone demonstrated increased p21 expression. Loss of newborn type-1 cells and disruption of hippocampal neurogenesis was evident at 9 weeks after irradiation, and these effects were independent of p21 genotype status. Within the developmental milestones of NPCs, irradiation resulted in loss of early intermediate NPCs (type-2a cells) in wild-type mice, whereas the principal effect of irradiation with p21 loss was culling of proliferating late intermediate (type-2b cells) and neuroblasts. These results suggest that p21 exerts differential effects on cell fate of NPCs after irradiation. p21 may serve to protect proliferating late NPCs but does not alter the ultimate inhibition of new neuron production after DNA damage.
Insights
The protein p21 influences neural progenitor cell fate after irradiation, potentially protecting late-stage cells but not preventing overall neurogenesis inhibition in the hippocampus.
Area of Science:
- Neuroscience
- Cell Biology
- Radiation Biology
Background:
- Cranial irradiation impairs hippocampal neurogenesis, contributing to cognitive deficits.
- p53-regulated p21 (cyclin-dependent kinase inhibitor 1) mediates DNA damage response and cell cycle arrest.
- p21 is known to inhibit neural progenitor cell proliferation.
Purpose of the Study:
- To investigate the specific role of p21 in the disruption of neuronal development in the hippocampal dentate gyrus following irradiation.
- To elucidate how p21 affects the cell fate of neural progenitor cells (NPCs) after DNA damage induced by radiation.
Main Methods:
- Irradiation of wild-type and p21 knockout mice.
- Utilized bromodeoxyuridine (BrdU) cell fate mapping techniques.
- Analyzed NPC apoptosis, proliferation, and differentiation at various time points post-irradiation.
Main Results:
- Acute NPC apoptosis post-irradiation was p21-independent.
- p21 knockout increased neuroblast proliferation and neurogenesis in non-irradiated mice.
- Irradiation at 9 weeks led to loss of newborn cells and disrupted neurogenesis, irrespective of p21 status.
- Irradiation caused loss of early intermediate NPCs (type-2a) in wild-type mice.
- In p21 knockout mice, irradiation primarily affected late intermediate NPCs (type-2b) and neuroblasts.
Conclusions:
- p21 exhibits differential effects on NPC cell fate after irradiation.
- p21 may protect proliferating late-stage NPCs but does not prevent the overall inhibition of neurogenesis post-irradiation.
- These findings highlight p21's complex role in the response of the hippocampus to radiation-induced DNA damage.
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