P2X7 Receptors Amplify CNS Damage in Neurodegenerative Diseases
Peter Illes1,2
1Rudolf Boehm Institute for Pharmacology and Toxicology, University of Leipzig, 04107 Leipzig, Germany.
Abstract:
ATP is a (co)transmitter and signaling molecule in the CNS. It acts at a multitude of ligand-gated cationic channels termed P2X to induce rapid depolarization of the cell membrane. Within this receptor-channel family, the P2X7 receptor (R) allows the transmembrane fluxes of Na+, Ca2+, and K+, but also allows the slow permeation of larger organic molecules. This is supposed to cause necrosis by excessive Ca2+ influx, as well as depletion of intracellular ions and metabolites. Cell death may also occur by apoptosis due to the activation of the caspase enzymatic cascade. Because P2X7Rs are localized in the CNS preferentially on microglia, but also at a lower density on neuroglia (astrocytes, oligodendrocytes) the stimulation of this receptor leads to the release of neurodegeneration-inducing bioactive molecules such as pro-inflammatory cytokines, chemokines, proteases, reactive oxygen and nitrogen molecules, and the excitotoxic glutamate/ATP. Various neurodegenerative reactions of the brain/spinal cord following acute harmful events (mechanical CNS damage, ischemia, status epilepticus) or chronic neurodegenerative diseases (neuropathic pain, Alzheimer's disease, Parkinson's disease, multiple sclerosis, amyotrophic lateral sclerosis) lead to a massive release of ATP via the leaky plasma membrane of neural tissue. This causes cellular damage superimposed on the original consequences of neurodegeneration. Hence, blood-brain-barrier permeable pharmacological antagonists of P2X7Rs with excellent bioavailability are possible therapeutic agents for these diseases. The aim of this review article is to summarize our present state of knowledge on the involvement of P2X7R-mediated events in neurodegenerative illnesses endangering especially the life quality and duration of the aged human population.
Insights
The P2X7 receptor (P2X7R) on microglia contributes to neurodegeneration by releasing harmful molecules. Blocking P2X7R may offer new therapies for age-related neurodegenerative diseases.
Area of Science:
- Neuroscience
- Pharmacology
- Cell Biology
Background:
- Adenosine triphosphate (ATP) acts as a signaling molecule in the central nervous system (CNS).
- P2X7 receptors (P2X7Rs) are ligand-gated ion channels involved in cellular responses to ATP.
- P2X7Rs are primarily expressed on microglia in the CNS, playing a role in neuroinflammation.
Purpose of the Study:
- To review the role of P2X7R-mediated events in neurodegenerative diseases.
- To explore the therapeutic potential of P2X7R antagonists for age-related neurological conditions.
Main Methods:
- Literature review of studies on P2X7R function in the CNS.
- Analysis of P2X7R expression and signaling pathways in neurodegeneration.
- Evaluation of pharmacological P2X7R antagonists for therapeutic applications.
Main Results:
- P2X7R activation leads to ion flux and cell death (necrosis/apoptosis).
- Stimulation of P2X7Rs on microglia releases neurotoxic molecules, exacerbating neurodegeneration.
- Massive ATP release during CNS injury or disease activates P2X7Rs, causing secondary damage.
Conclusions:
- P2X7R signaling is a significant contributor to neurodegenerative processes.
- Blood-brain barrier-permeable P2X7R antagonists represent a promising therapeutic strategy for neurodegenerative diseases.
- Targeting P2X7Rs could improve quality of life and longevity in aging populations.
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