Inhibition of the P2X7-PANX1 complex suppresses spreading depolarization and neuroinflammation
Shih-Pin Chen1,2,3, Tao Qin1, Jessica L Seidel1
1Neurovascular Research Lab, Department of Radiology, Massachusetts General Hospital, Harvard Medical School, Charlestown, MA, USA.
Abstract:
Spreading depolarization is a wave of neuronal and glial depolarization. Within minutes after spreading depolarization, the neuronal hemichannel pannexin 1 (PANX1) opens and forms a pore complex with the ligand-gated cation channel P2X7, allowing the release of excitatory neurotransmitters to sustain spreading depolarization and activate neuroinflammation. Here, we explore the hypothesis that the P2X7-PANX1 pore complex is a critical determinant of spreading depolarization susceptibility with important consequences for neuroinflammation and trigeminovascular activation. We found that genetic loss of function or ablation of the P2x7 gene inhibits spreading depolarization. Moreover, pharmacological suppression of the P2X7-PANX1 pore complex inhibits spreading depolarization in mice carrying the human familial hemiplegic migraine type 1 R192Q missense mutation as well as in wild-type mice and rats. Pore inhibitors elevate the electrical threshold for spreading depolarization, and reduce spreading depolarization frequency and amplitude. Pore inhibitors also suppress downstream consequences of spreading depolarization such as upregulation of interleukin-1 beta, inducible nitric oxide synthase and cyclooxygenase-2 in the cortex after spreading depolarization. In addition, they inhibit surrogates for trigeminovascular activation, including expression of calcitonin gene-related peptide in the trigeminal ganglion and c-Fos in the trigeminal nucleus caudalis. Our results are consistent with the hypothesis that the P2X7-PANX1 pore complex is a critical determinant of spreading depolarization susceptibility and its downstream consequences, of potential relevance to its signature disorders such as migraine.
Insights
The P2X7-PANX1 pore complex critically influences spreading depolarization, a key factor in neuroinflammation and trigeminovascular activation. Inhibiting this complex reduces spreading depolarization and its harmful downstream effects, offering potential migraine therapies.
Area of Science:
- Neuroscience
- Cellular Biology
- Pathophysiology
Background:
- Spreading depolarization (SD) involves neuronal and glial depolarization.
- The pannexin 1 (PANX1) hemichannel and P2X7 receptor form a pore complex during SD.
- This complex releases neurotransmitters, sustaining SD and activating neuroinflammation.
Purpose of the Study:
- To test if the P2X7-PANX1 pore complex determines susceptibility to spreading depolarization.
- To investigate the complex's role in neuroinflammation and trigeminovascular activation.
Main Methods:
- Genetic knockout of P2X7.
- Pharmacological inhibition of the P2X7-PANX1 pore complex.
- Electrophysiological recordings of spreading depolarization.
- Analysis of inflammatory markers (IL-1β, iNOS, COX-2) and trigeminovascular activation markers (CGRP, c-Fos).
Main Results:
- Genetic P2X7 loss-of-function inhibited spreading depolarization.
- Pore inhibitors elevated the threshold for spreading depolarization and reduced its frequency and amplitude.
- Inhibitors suppressed cortical interleukin-1 beta, inducible nitric oxide synthase, and cyclooxygenase-2.
- Inhibitors reduced trigeminal calcitonin gene-related peptide expression and c-Fos in the trigeminal nucleus caudalis.
Conclusions:
- The P2X7-PANX1 pore complex is a critical determinant of spreading depolarization susceptibility.
- Inhibiting this complex mitigates downstream neuroinflammation and trigeminovascular activation.
- This finding has potential relevance for migraine and related disorders.
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