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Preparation of Acute Hippocampal Slices from Rats and Transgenic Mice for the Study of Synaptic Alterations during Aging and Amyloid Pathology
Published on: March 23, 2011
Amyloid plaques and normal ageing have differential effects on microglial Ca2+ activity in the mouse brain
Pablo Izquierdo1, Renaud B Jolivet1,2, David Attwell3
1Department of Neuroscience, Physiology and Pharmacology, University College London, London, WC1E 6BT, UK.
Abstract:
In microglia, changes in intracellular calcium concentration ([Ca2+]i) may regulate process motility, inflammasome activation, and phagocytosis. However, while neurons and astrocytes exhibit frequent spontaneous Ca2+ activity, microglial Ca2+ signals are much rarer and poorly understood. Here, we studied [Ca2+]i changes of microglia in acute brain slices using Fluo-4-loaded cells and mice expressing GCaMP5g in microglia. Spontaneous Ca2+ transients occurred ~ 5 times more frequently in individual microglial processes than in their somata. We assessed whether microglial Ca2+ responses change in Alzheimer's disease (AD) using AppNL-G-F knock-in mice. Proximity to Aβ plaques strongly affected microglial Ca2+ activity. Although spontaneous Ca2+ transients were unaffected in microglial processes, they were fivefold more frequent in microglial somata near Aβ plaques than in wild-type microglia. Microglia away from Aβ plaques in AD mice showed intermediate properties for morphology and Ca2+ responses, partly resembling those of wild-type microglia. By contrast, somatic Ca2+ responses evoked by tissue damage were less intense in microglia near Aβ plaques than in wild-type microglia, suggesting different mechanisms underlying spontaneous vs. damage-evoked Ca2+ signals. Finally, as similar processes occur in neurodegeneration and old age, we studied whether ageing affected microglial [Ca2+]i. Somatic damage-evoked Ca2+ responses were greatly reduced in microglia from old mice, as in the AD mice. In contrast to AD, however, old age did not alter the occurrence of spontaneous Ca2+ signals in microglial somata but reduced the rate of events in processes. Thus, we demonstrate distinct compartmentalised Ca2+ activity in microglia from healthy, aged and AD-like brains.
Insights
Microglial calcium signals, crucial for brain function, are altered near Alzheimer's plaques and in aging. Spontaneous signals increase in cell bodies near plaques, while damage responses decrease in both aging and Alzheimer's models.
Area of Science:
- Neuroscience
- Cell Biology
- Neuroimmunology
Background:
- Intracellular calcium concentration ([Ca2+]i) dynamics regulate microglial functions like motility and phagocytosis.
- Microglial calcium signaling is less understood compared to neurons and astrocytes, with spontaneous activity being rare.
Purpose of the Study:
- To investigate spontaneous and evoked intracellular calcium ([Ca2+]i) changes in microglia.
- To determine how microglial calcium signaling is affected in Alzheimer's disease (AD) models and during aging.
Main Methods:
- Utilized acute brain slices and GCaMP5g transgenic mice for real-time microglial calcium imaging.
- Examined calcium transients in both microglial processes and somata.
- Assessed microglial responses in AppNL-G-F knock-in AD mouse models and aged mice.
Main Results:
- Spontaneous calcium transients were more frequent in microglial processes than somata.
- In AD models, proximity to amyloid-beta (Aβ) plaques increased somatic spontaneous calcium transients fivefold.
- Damage-evoked calcium responses were reduced in microglia near Aβ plaques and in aged mice.
Conclusions:
- Microglial calcium signaling exhibits distinct compartmentalization and is significantly altered by proximity to Aβ plaques in AD.
- Aging and AD share some alterations in microglial calcium responses, particularly reduced damage-evoked signals.
- These findings highlight the complex regulation of microglial calcium dynamics in brain health and disease.

