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.

Purinergic Signalling
|March 2, 2025
PubMed

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.