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Updated: Mar 8, 2026

Chemogenetic Regulation in Reprogrammed Stem Cell-derived Precursor Cells in Treating Neurodegenerative Diseases
Published on: May 2, 2025
Poly(ADP-ribose) polymerase inhibitors activate the p53 signaling pathway in neural stem/progenitor cells
Akiko Okuda1,2, Suguru Kurokawa1, Masanori Takehashi1
1Laboratory of Pathophysiology and Pharmacotherapeutics, Faculty of Pharmacy, Osaka Ohtani University, 3-11-1 Nishikiori-kita, Tondabayashi, Osaka, 584-8540, Japan.
Background:
Poly(ADP-ribose) polymerase 1 (PARP-1), which catalyzes poly(ADP-ribosyl)ation of proteins by using NAD+ as a substrate, plays a key role in several nuclear events, including DNA repair, replication, and transcription. Recently, PARP-1 was reported to participate in the somatic cell reprogramming process. Previously, we revealed a role for PARP-1 in the induction of neural apoptosis in a cellular model of cerebral ischemia and suggested the possible use of PARP inhibitors as a new therapeutic intervention. In the present study, we examined the effects of PARP inhibitors on neural stem/progenitor cells (NSPCs) of the mouse brain.
Results:
PARP-1 was more abundant and demonstrated higher activity in NSPCs than in mouse embryonic fibroblasts. Treatment with PARP inhibitors suppressed the formation of neurospheres by NSPCs through the suppression of cell cycle progression and the induction of apoptosis. In order to identify the genes responsible for these effects, we investigated gene expression profiles by microarray analyses and found that several genes in the p53 signaling pathway were upregulated, including Cdkn1a, which is critical for cell cycle control, and Fas, Pidd, Pmaip1, and Bbc3, which are principal factors in the apoptosis pathway. Inhibition of poly(ADP-ribosyl)ation increased the levels of p53 protein, but not p53 mRNA, and enhanced the phosphorylation of p53 at Ser18. Experiments with specific inhibitors and also shRNA demonstrated that PARP-1, but not PARP-2, has a role in the regulation of p53. The effects of PARP inhibitors on NSPCs were not observed in Trp53 -/- NSPCs, suggesting a key role for p53 in these events.
Conclusions:
On the basis of the finding that PARP inhibitors facilitated the p53 signaling pathway, we propose that poly(ADP-ribosyl)ation contributes to the proliferation and self-renewal of NSPCs through the suppression of p53 activation.
Insights
Poly(ADP-ribose) polymerase inhibitors suppress neural stem cell proliferation and self-renewal by activating the p53 pathway. This suggests poly(ADP-ribosyl)ation regulates neural stem/progenitor cell (NSPC) function.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Poly(ADP-ribose) polymerase 1 (PARP-1) is crucial for DNA repair, replication, and transcription.
- PARP-1 has been implicated in somatic cell reprogramming and neural apoptosis.
- PARP inhibitors are being explored as potential therapeutic agents.
Purpose of the Study:
- To investigate the effects of PARP inhibitors on mouse neural stem/progenitor cells (NSPCs).
- To elucidate the molecular mechanisms underlying PARP inhibitor-induced changes in NSPCs.
Main Methods:
- Treatment of NSPCs with PARP inhibitors.
- Analysis of neurosphere formation, cell cycle progression, and apoptosis.
- Microarray analysis to assess gene expression profiles.
- Western blotting and shRNA to investigate protein levels and gene function.
- Experiments using Trp53 knockout NSPCs.
Main Results:
- PARP-1 exhibited higher abundance and activity in NSPCs compared to fibroblasts.
- PARP inhibitors reduced neurosphere formation by inhibiting cell cycle progression and inducing apoptosis.
- Upregulation of p53 signaling pathway genes (e.g., Cdkn1a, Fas) was observed.
- PARP inhibition increased p53 protein levels and phosphorylation, mediated by PARP-1.
- The effects of PARP inhibitors were dependent on p53, as demonstrated in Trp53 knockout NSPCs.
Conclusions:
- Poly(ADP-ribosyl)ation suppresses p53 activation, thereby promoting NSPC proliferation and self-renewal.
- PARP-1 plays a critical role in regulating p53 activity in NSPCs.
- PARP inhibitors impact NSPC behavior through the p53 signaling pathway.
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