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Updated: Dec 5, 2025

Two-photon Imaging of Microglial Processes' Attraction Toward ATP or Serotonin in Acute Brain Slices
Published on: January 31, 2019
Phosphoinositide-3-Kinase γ Is Not a Predominant Regulator of ATP-Dependent Directed Microglial Process Motility or
Brendan S Whitelaw1,2, Evelyn K Matei1,3, Ania K Majewska4,3
1Department of Neuroscience.
Abstract:
Microglia are dynamic cells whose extensive interactions with neurons and glia during development allow them to regulate neuronal development and function. The microglial P2Y12 receptor is crucial for microglial responsiveness to extracellular ATP and mediates numerous microglial functions, including ATP-dependent directional motility, microglia-neuron interactions, and experience-dependent synaptic plasticity. However, little is known about the downstream signaling effectors that mediate these diverse actions of P2Y12. Phosphoinositide-3-kinase γ (PI3Kγ), a lipid kinase activated downstream of Gi-protein-coupled receptors such as P2Y12, could translate localized extracellular ATP signals into directed microglial action and serve as a broad effector of P2Y12-dependent signaling. Here, we used pharmacological and genetic methods to manipulate P2Y12 and PI3Kγ signaling to determine whether inhibiting PI3Kγ phenocopied the loss of P2Y12 signaling in mouse microglia. While pan-inhibition of all PI3K activity substantially affected P2Y12-dependent microglial responses, our results suggest that PI3Kγ specifically is only a minor part of the P2Y12 signaling pathway. PI3Kγ was not required to maintain homeostatic microglial morphology or their dynamic surveillance in vivo Further, PI3Kγ was not strictly required for P2Y12-dependent microglial responses ex vivo or in vivo, although we did observe subtle deficits in the recruitment of microglial process toward sources of ATP. Finally, PI3Kγ was not required for ocular dominance plasticity, a P2Y12-dependent form of experience-dependent synaptic plasticity that occurs in the developing visual cortex. Overall, our results demonstrate that PI3Kγ is not the major mediator of P2Y12 function in microglia, but may have a role in amplifying or fine-tuning the chemotactic response.
Insights
Phosphoinositide-3-kinase γ (PI3Kγ) is not the primary mediator of microglial P2Y12 receptor function. While PI3Kγ plays a minor role in microglial chemotaxis, it is not essential for P2Y12-dependent functions.
Area of Science:
- Neuroscience
- Cell Biology
- Immunology
Background:
- Microglia, the immune cells of the brain, interact extensively with neurons and glia.
- The microglial P2Y12 receptor is vital for responding to extracellular ATP, mediating functions like directed movement and synaptic plasticity.
- Downstream signaling pathways of P2Y12 are not well understood.
Purpose of the Study:
- To investigate the role of Phosphoinositide-3-kinase γ (PI3Kγ) as a downstream effector of the microglial P2Y12 receptor.
- To determine if inhibiting PI3Kγ mimics the effects of P2Y12 signaling loss in mouse microglia.
Main Methods:
- Pharmacological and genetic manipulation of P2Y12 and PI3Kγ signaling in mouse microglia.
- Assessment of microglial morphology, surveillance, and responses to ATP in vivo and ex vivo.
- Evaluation of PI3Kγ's role in ocular dominance plasticity.
Main Results:
- Pan-inhibition of PI3K affected P2Y12-dependent responses, but PI3Kγ specifically was a minor contributor.
- PI3Kγ was not essential for homeostatic microglial morphology or surveillance in vivo.
- Subtle deficits in microglial process recruitment to ATP sources were observed, but PI3Kγ was not required for major P2Y12-dependent functions or ocular dominance plasticity.
Conclusions:
- PI3Kγ is not the major mediator of P2Y12 receptor function in microglia.
- PI3Kγ may play a subtle role in amplifying or fine-tuning microglial chemotactic responses to ATP.
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