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Updated: May 31, 2026

Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Afobazole modulates microglial function via activation of both sigma-1 and sigma-2 receptors
Javier Cuevas1, Alex Rodriguez, Adam Behensky
1Department of Molecular Pharmacology and Physiology, University of South Florida, College of Medicine, Tampa, Florida 33612-4799, USA. jcuevas@health.usf.edu
Abstract:
Microglial cells play a critical role in the neuroinflammatory response that accompanies various diseases of the central nervous system, such as ischemic stroke, and ATP is a major signaling molecule regulating the response of these cells to these pathophysiological conditions. Experiments were carried out to determine the effects of afobazole on microglial function and to identify the molecular mechanisms by which afobazole affects microglial cells. Afobazole was found to inhibit migration of microglial cells in response to ATP and UTP chemoattraction in a concentration-dependent manner. Inhibition of either σ-1 or σ-2 receptors decreased the effects of afobazole on microglia. In addition to inhibiting microglial cell migration, activation of σ receptors by afobazole decreased intracellular calcium elevation produced by focal application of ATP and UTP in isolated microglial cells. Furthermore, afobazole blocked membrane currents elicited by rapid application of ATP in microglial cells. Taken together, our data indicate that afobazole inhibits microglial response to P2Y and P2X purinergic receptor activation by functioning as a pan-selective σ-receptor agonist. In addition to modulating response to purinergic receptor activation, the effects of afobazole on microglial survival during in vitro ischemia were assessed. Application of afobazole during in vitro ischemia decreased microglial cell death during the ischemic episode and after a 24-h recovery period. Moreover, when afobazole was only applied after the ischemic episode, a significant enhancement in cell survival was still observed. Thus, afobazole acts via σ receptors to decrease microglial response to ATP and provides cytoprotection during and after ischemia.
Insights
Afobazole inhibits microglial cell migration and calcium signaling by activating sigma receptors, offering protection against ischemic damage. This drug modulates microglial responses to ATP, crucial in neuroinflammation and stroke.
Area of Science:
- Neuroscience
- Pharmacology
- Cell Biology
Background:
- Microglial cells are key players in neuroinflammation, particularly in conditions like ischemic stroke.
- Adenosine triphosphate (ATP) is a critical signaling molecule that regulates microglial cell responses in the central nervous system.
Purpose of the Study:
- To investigate the effects of afobazole on microglial cell function.
- To elucidate the molecular mechanisms underlying afobazole's action on microglia.
- To assess afobazole's cytoprotective effects during ischemic conditions.
Main Methods:
- Assessed afobazole's impact on microglial cell migration in response to ATP and UTP.
- Investigated the role of sigma-1 and sigma-2 receptors in afobazole's effects.
- Measured intracellular calcium levels and membrane currents in response to ATP.
- Evaluated microglial cell survival during in vitro ischemia with and without afobazole treatment.
Main Results:
- Afobazole inhibited microglial cell migration and intracellular calcium elevation induced by ATP and UTP in a concentration-dependent manner.
- The effects of afobazole were mediated through the activation of sigma receptors (both sigma-1 and sigma-2).
- Afobazole demonstrated significant cytoprotective effects, reducing microglial cell death during and after in vitro ischemia.
Conclusions:
- Afobazole acts as a pan-selective sigma receptor agonist, inhibiting microglial responses to purinergic receptor activation.
- Afobazole provides cytoprotection to microglial cells during and after ischemic events.
- These findings highlight afobazole's potential therapeutic role in neuroinflammatory diseases and stroke.
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