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Published on: December 22, 2008
Increased surface P2X4 receptor regulates anxiety and memory in P2X4 internalization-defective knock-in mice
Eléonore Bertin1,2, Thomas Deluc1,2,3, Kjara S Pilch1,2
1Université de Bordeaux, Institut des Maladies Neurodégénératives, UMR 5293, F-33000, Bordeaux, France.
Abstract:
ATP signaling and surface P2X4 receptors are upregulated selectively in neurons and/or glia in various CNS disorders including anxiety, chronic pain, epilepsy, ischemia, and neurodegenerative diseases. However, the cell-specific functions of P2X4 in pathological contexts remain elusive. To elucidate P2X4 functions, we created a conditional transgenic knock-in P2X4 mouse line (Floxed P2X4mCherryIN) allowing the Cre activity-dependent genetic swapping of the internalization motif of P2X4 by the fluorescent mCherry protein to prevent constitutive endocytosis of P2X4. By combining molecular, cellular, electrophysiological, and behavioral approaches, we characterized two distinct knock-in mouse lines expressing noninternalized P2X4mCherryIN either exclusively in excitatory forebrain neurons or in all cells natively expressing P2X4. The genetic substitution of wild-type P2X4 by noninternalized P2X4mCherryIN in both knock-in mouse models did not alter the sparse distribution and subcellular localization of P2X4 but increased the number of P2X4 receptors at the surface of the targeted cells mimicking the pathological increased surface P2X4 state. Increased surface P2X4 density in the hippocampus of knock-in mice altered LTP and LTD plasticity phenomena at CA1 synapses without affecting basal excitatory transmission. Moreover, these cellular events translated into anxiolytic effects and deficits in spatial memory. Our results show that increased surface density of neuronal P2X4 contributes to synaptic deficits and alterations in anxiety and memory functions consistent with the implication of P2X4 in neuropsychiatric and neurodegenerative disorders. Furthermore, these conditional P2X4mCherryIN knock-in mice will allow exploring the cell-specific roles of P2X4 in various physiological and pathological contexts.
Insights
Increased surface P2X4 receptors in neurons contribute to anxiety and memory deficits in the brain. These findings highlight the role of P2X4 in central nervous system disorders and offer new tools for research.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- ATP signaling via P2X4 receptors is implicated in various central nervous system (CNS) disorders.
- The precise cell-specific functions of P2X4 in pathological conditions remain unclear.
Purpose of the Study:
- To investigate the cell-specific roles of P2X4 in CNS disorders.
- To develop a tool for studying P2X4 function by preventing its internalization.
Main Methods:
- Creation of a conditional transgenic knock-in P2X4 mouse line (Floxed P2X4mCherryIN).
- Utilized molecular, cellular, electrophysiological, and behavioral analyses.
- Generated knock-in mice expressing non-internalized P2X4mCherryIN in specific neuronal populations or all native P2X4-expressing cells.
Main Results:
- Non-internalized P2X4mCherryIN increased surface P2X4 density in targeted cells.
- Elevated surface P2X4 altered hippocampal synaptic plasticity (LTP/LTD) without affecting basal transmission.
- Increased neuronal P2X4 density led to anxiolytic effects and spatial memory deficits.
Conclusions:
- Increased surface density of neuronal P2X4 contributes to synaptic dysfunction and alterations in anxiety and memory.
- These findings support the involvement of P2X4 in neuropsychiatric and neurodegenerative diseases.
- The developed conditional P2X4mCherryIN knock-in mice are valuable tools for future research on P2X4 cell-specific functions.

