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Updated: May 3, 2026

Simultaneous Imaging of Microglial Dynamics and Neuronal Activity in Awake Mice
Published on: August 23, 2022
Calcium ion influx in microglial cells: physiological and therapeutic significance
1All India Institute of Medical Sciences-Physiology, Basni Industrial Area Phase II Jodhpur, Rajasthan, India.
Abstract:
Microglial cells, the immunocompetent cells of the central nervous system (CNS), exhibit a resting phenotype under healthy conditions. In response to injury, however, they transform into an activated state, which is a hallmark feature of many CNS diseases. Factors or agents released from the neurons, blood vessels, and/or astrocytes could activate these cells, leading to their functional and structural modifications. Microglial cells are well equipped to sense environmental changes within the brain under both physiological and pathological conditions. Entry of calcium ions (Ca(2+)) plays a critical role in the process of microglial transformation; several channels and receptors have been identified on the surface of microglial cells. These include store-operated channel, Orai1, and its sensor protein, stromal interaction molecule 1 (STIM1), in microglial cells, and their functions are modulated under pathological stimulations. Transient receptor potential (TRP) channels and voltage- and ligand-gated channels (ionotropic and metabotropic receptors) are also responsible for Ca(2+) influx into the microglial cells. An elevation of intracellular Ca(2+) concentration subsequently regulates microglial cell functions by activating a diverse array of Ca(2+)-sensitive signaling cascades. Perturbed Ca(2+) homeostasis contributes to the progression of a number of CNS disorders. Thus, regulation of Ca(2+) entry into microglial cells could be a pharmacological target for several CNS-related pathological conditions. This Review addresses the recent insights into microglial cell Ca(2+) influx mechanisms, their roles in the regulation of functions, and alterations of Ca(2+) entry in specific CNS disorders.
Insights
Microglial cells, key immune cells in the brain, activate during CNS injury. Calcium ion (Ca2+) influx into these cells is critical for their function and may be a therapeutic target for neurological disorders.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglial cells are the primary immune cells of the central nervous system (CNS).
- Under healthy conditions, microglia exist in a resting state, but they become activated in response to CNS injury or disease.
- This activation involves significant functional and structural modifications, influenced by various signaling factors.
Purpose of the Study:
- To review recent insights into calcium ion (Ca2+) influx mechanisms in microglial cells.
- To explore the role of Ca2+ regulation in microglial cell function and activation.
- To discuss alterations in microglial Ca2+ entry in the context of CNS disorders.
Main Methods:
- Review of existing literature on microglial cell biology and calcium signaling.
- Identification and discussion of key ion channels and receptors involved in Ca2+ influx (e.g., Orai1, STIM1, TRP channels).
- Analysis of the impact of altered Ca2+ homeostasis on microglial function in CNS diseases.
Main Results:
- Calcium ion (Ca2+) influx is a critical process regulating microglial activation and function.
- Specific channels like Orai1/STIM1 and TRP channels mediate Ca2+ entry into microglial cells.
- Dysregulation of Ca2+ homeostasis is implicated in the progression of various CNS disorders.
Conclusions:
- Microglial Ca2+ influx mechanisms are crucial for their role in CNS health and disease.
- Targeting Ca2+ entry into microglial cells presents a potential therapeutic strategy for neurological conditions.
- Further research into these pathways could lead to novel treatments for CNS disorders.
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