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Published on: January 12, 2015
Establishment and behavioural characterization of a novel constitutive P2X7 receptor knockout mouse line
Iven-Alex von Mücke-Heim1,2, Judit Oldekamp1, Michael W Metzger1
1Molecular Neurogenetics, Max Planck Institute of Psychiatry, 80804, Munich, Germany.
Abstract:
The P2X7 receptor is an adenosine triphosphate (ATP)-gated ion channel expressed in different cell types of the brain. Polymorphisms in the P2RX7 gene have repeatedly been associated with psychiatric disorders including major depression. Depression is a stress-related disorder in which a dysregulation of the immune system has attracted increasing attention as a potential disease mechanism. The well-documented role of P2X7 in inflammatory conditions advocates its involvement in immune system dysregulation and depression genesis. However, understanding its exact role requires further research using appropriate animal models. Unfortunately, some of the most widely used P2X7 knockout mouse models are limited in their utility by the continuous expression of certain P2rx7 splice variants or even activation of de novo transcripts. To overcome this limitation, we generated a novel constitutive and complete P2X7 KO mouse line. These KO mice lack all known murine splice variants and protein expression resulting in a loss-of-function as confirmed by calcium imaging and by the inability of P2X7-deficient peritoneal macrophages to mount an appropriate interleukin (IL)-1β response. Comprehensive characterization using a battery of tests assessing locomotion, anxiety- and depression-related as well as social behaviour revealed differences in locomotor and exploratory behaviours. P2X7 KO mice showed slightly increased locomotor activity and reduced anxiety-related behaviour at baseline. Under conditions of chronic stress exposure, genotype-dependent differences largely dissolved while P2X7 deficiency promoted enhanced stress resilience with regard to social behaviour. Taken together, our findings add further evidence for an involvement of the P2X7 in shaping different behavioural responses and their modulation by stressful environments. This novel loss-of-function model will contribute to a better understanding of P2X7 in stress-associated behaviours in basic and translational neuropsychiatric research.
Insights
Researchers developed a complete P2X7 receptor knockout mouse model. These mice exhibit altered baseline behaviors and enhanced stress resilience, offering new insights into depression and stress-related disorders.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- The P2X7 receptor (P2X7R), an ATP-gated ion channel in the brain, is implicated in psychiatric disorders like depression.
- Depression involves immune dysregulation, and P2X7R's role in inflammation suggests its involvement.
- Existing P2X7 knockout models have limitations due to incomplete gene silencing.
Purpose of the Study:
- To create and characterize a novel constitutive and complete P2X7 knockout (KO) mouse line.
- To investigate the behavioral effects of complete P2X7R loss-of-function in mice.
- To assess the role of P2X7R in stress resilience and associated behaviors.
Main Methods:
- Generation of a constitutive P2X7 KO mouse line lacking all known splice variants and protein expression.
- Confirmation of P2X7 loss-of-function via calcium imaging and interleukin-1β response assays.
- Behavioral phenotyping using tests for locomotion, anxiety, depression, and social interaction, including chronic stress exposure.
Main Results:
- The novel P2X7 KO mice demonstrated complete loss of P2X7R expression and function.
- Baseline behavioral analysis revealed increased locomotor activity and reduced anxiety-related behavior in KO mice.
- Under chronic stress, P2X7 deficiency promoted enhanced stress resilience, particularly in social behavior.
Conclusions:
- The developed P2X7 KO mouse model provides a valuable tool for studying P2X7R's function in the brain.
- P2X7R plays a role in modulating behavioral responses and stress resilience.
- This model will advance research into P2X7R's involvement in stress-associated neuropsychiatric disorders.

