P2X receptor antagonists for pain management: examination of binding and physicochemical properties

Rebecca J Gum1, Brian Wakefield, Michael F Jarvis

  • 1Neuroscience Research, Global Pharmaceutical Research and Development, Abbott Laboratories, R4DL, AP9A-3, 100 Abbott Park Road, Abbott Park, IL, 60064-6125, USA, rebecca.gum@abbott.com.

Purinergic Signalling
|November 17, 2011
PubMed

Insights

Adenosine triphosphate (ATP) drives chronic pain by activating P2X receptors on neurons and glial cells. Emerging P2X receptor antagonists show promise for treating pain, with ongoing research focusing on oral bioavailability and drug-like properties.

Area of Science:

  • Neuroscience
  • Pharmacology
  • Pain Research

Background:

  • Chronic pain involves heightened sensitivity to stimuli, with adenosine triphosphate (ATP) acting as a key excitatory neurotransmitter.
  • ATP mediates nociception via neuronal P2X3 and P2X2/3 receptors and glial P2X4, P2X7, and P2Y receptors, promoting neural-glial interactions.
  • P2 receptor antagonists have been developed to investigate their role in preclinical pain models.

Purpose of the Study:

  • To review the antinociceptive pharmacology of P2X receptor antagonists.
  • To discuss the chemical diversity and drug-like properties of emerging antagonists targeting P2X3, P2X2/3, P2X4, and P2X7 receptors.
  • To highlight challenges and recent advances in developing orally bioavailable P2X receptor antagonists for clinical use.

Main Methods:

  • Literature review of preclinical and clinical studies on P2X receptor antagonists.
  • Analysis of physicochemical properties critical for oral bioavailability, CNS exposure, and safety of drug candidates.
  • Examination of the pharmacological profiles of various P2X receptor antagonists.

Main Results:

  • Selective P2X receptor antagonists have demonstrated efficacy in preclinical chronic pain models.
  • Several P2X receptor antagonists are currently in clinical trials for pain and inflammation.
  • Key physicochemical parameters influencing oral bioavailability and CNS penetration have been identified for ion channel blockers.

Conclusions:

  • P2X receptor antagonists represent a promising therapeutic strategy for chronic pain.
  • Optimizing drug-like properties, including oral bioavailability and CNS exposure, is crucial for clinical success.
  • Continued research into the pharmacology and chemistry of P2X receptor antagonists will advance pain management.

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