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Published on: April 24, 2021
Direct protein-protein interaction between Npas4 and IPAS mutually inhibits their critical roles in neuronal cell
Shuya Kasai1,2, Xianyu Li1, Satoru Torii1,3
1Department of Biomolecular Sciences, Graduate School of Life Sciences, Tohoku University, Aoba-ku, Sendai, 980-8578, Japan.
Abstract:
Inhibitory PAS domain protein (IPAS) is a bifunctional protein that acts as a transcriptional repressor in hypoxia and as a pro-apoptotic protein involved in neuronal cell death. Npas4 (NXF or LE-PAS) is a transcriptional factor that protects nerve cells from endogenous and foreign neurotoxins. Here we show that IPAS and Npas4 antagonize each other through their direct interaction. Coimmunoprecipitation experiments revealed that multiple binding sites on each protein were involved in the interaction. CoCl2 treatment of PC12 cells that induces IPAS repressed the transactivation activity of Npas4, and IPAS siRNA treatment reduced the CoCl2-induced repression. CoCl2-induced apoptosis was suppressed by the addition of KCl that induces Npas4. The protective effect of KCl was attenuated by siRNA-mediated gene silencing of Npas4. Npas4 and IPAS proteins were induced and localized in the cytoplasm of the dopaminergic neurons in the substantia nigra pars compacta after 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) treatment. Npas4-/- mice exhibited greater sensitivity to MPTP in nigral dopaminergic neurons. Together, these results strongly suggest that neuroprotective activity of Npas4 was, at least partly, exerted by inhibiting the pro-apoptotic activity of IPAS through direct interaction.
Insights
Inhibitory PAS domain protein (IPAS) and Npas4 directly interact, with Npas4 protecting neurons by inhibiting IPAS
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Death Research
Background:
- Inhibitory PAS domain protein (IPAS) is a transcriptional repressor and pro-apoptotic factor.
- Npas4 is a neuroprotective transcriptional factor.
Purpose of the Study:
- To investigate the interaction between IPAS and Npas4.
- To elucidate the role of this interaction in neuronal cell death and neuroprotection.
Main Methods:
- Coimmunoprecipitation assays to confirm protein interaction.
- PC12 cell treatments (CoCl2, KCl) and siRNA to study functional effects.
- MPTP treatment in Npas4 knockout mice to assess in vivo neuroprotection.
Main Results:
- IPAS and Npas4 directly interact, with multiple binding sites.
- IPAS represses Npas4 activity under hypoxia-induced conditions.
- Npas4 activation suppresses apoptosis induced by CoCl2.
- Npas4 deficiency increases sensitivity to MPTP neurotoxicity.
- Npas4 and IPAS are co-localized in dopaminergic neurons after MPTP exposure.
Conclusions:
- Npas4 antagonizes IPAS through direct interaction.
- Npas4 exerts neuroprotection, partly by inhibiting the pro-apoptotic function of IPAS.
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