Experimental characterization and mathematical modeling of P2X7 receptor channel gating

Zonghe Yan1, Anmar Khadra, Shuo Li

  • 1Section on Cellular Signaling, Program in Developmental Neuroscience, National Institute of Child Health and Human Development, and Laboratory of Biological Modeling, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health, Bethesda, Maryland 20892-4510, USA.

Insights

The P2X7 receptor

Area of Science:

  • Ion channel function
  • Molecular pharmacology
  • Cellular signaling

Background:

  • The P2X7 receptor (P2X7R) is a trimeric ATP-gated ion channel.
  • Its gating mechanism, particularly how ATP binding site occupancy influences channel activity, remains unclear.

Purpose of the Study:

  • To elucidate the gating properties of the P2X7 receptor in response to varying ATP concentrations.
  • To investigate the role of receptor sensitization and pore dilation in P2X7R function.

Main Methods:

  • Electrophysiological recordings of P2X7R currents.
  • Application of a P2X7R-specific antagonist (Az10606120).
  • Characterization of wild-type and mutant P2X7R channels.

Main Results:

  • P2X7R gating is concentration-dependent, exhibiting monophasic activation at low ATP and biphasic activation at high ATP.
  • High agonist concentrations induce pore dilation and receptor sensitization, altering current amplitude and deactivation rates.
  • Mutant P2X7R channels display altered sensitivity and gating kinetics, supporting a model of negative cooperativity and sensitization.

Conclusions:

  • A Markov state model explains P2X7R gating, incorporating negative cooperativity, distinct conductance states, and sensitization.
  • Receptor sensitization leads to a high-conductance state with pore dilation upon maximal ATP binding.
  • Understanding P2X7R gating is crucial for its role in cellular signaling and potential therapeutic targeting.

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