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Updated: May 5, 2026

Two-photon Imaging of Microglial Processes' Attraction Toward ATP or Serotonin in Acute Brain Slices
Published on: January 31, 2019
Imaging microglia in brain slices and slice cultures
Abstract:
Here we describe a method for imaging fluorescently labeled parenchymal microglia (MG) in excised neonatal or adult rodent brain tissue slices. Using multichannel confocal or two-photon time-lapse imaging, the approach affords real-time analyses of MG behaviors, including motility, migration, chemotaxis, proliferation, and phagocytosis in live brain tissues. The method is applicable to acutely prepared tissue slices from developing and adult rodents and to slice cultures derived from neonatal rodents, including transgenic and green fluorescent protein reporter mice. A variety of fluorescent tags can be used to study the structure and physiology of MG in these preparations. Moreover, bath application of reagents (such as ATP) can establish spatial and temporal gradients that induce chemokinesis- and chemotaxis-like MG migration in tissue slices. Thus, the approach is useful for dissecting the molecular basis of MG behaviors and testing whether candidate reagents alter MG behavior and function in semi-intact central nervous system tissue preparations.
Insights
This study presents a novel method for imaging microglia (MG) in rodent brain slices, enabling real-time analysis of their behaviors like migration and phagocytosis. This technique aids in understanding the molecular basis of MG functions in the central nervous system.
Area of Science:
- Neuroscience
- Cell Biology
- Immunology
Background:
- Microglia (MG) are crucial immune cells in the central nervous system.
- Understanding MG behavior is vital for neurological research.
- Existing methods may limit real-time analysis of MG in native tissue environments.
Purpose of the Study:
- To develop and validate a method for imaging and analyzing microglial behavior in live rodent brain tissue slices.
- To enable real-time observation of microglial functions such as motility, migration, and phagocytosis.
- To provide a platform for dissecting the molecular mechanisms underlying microglial activity and testing potential therapeutic agents.
Main Methods:
- Utilizing multichannel confocal or two-photon time-lapse imaging of fluorescently labeled parenchymal microglia (MG).
- Applying the method to acutely prepared brain tissue slices from neonatal and adult rodents, as well as slice cultures.
- Employing bath application of reagents like ATP to induce spatial and temporal gradients for studying MG migration.
Main Results:
- Demonstrated real-time analysis of MG behaviors including motility, migration, chemotaxis, proliferation, and phagocytosis in live brain tissue.
- Confirmed applicability to various rodent models, including transgenic and green fluorescent protein reporter mice.
- Showcased the ability to induce MG migration using chemical gradients, facilitating studies on chemokinesis and chemotaxis.
Conclusions:
- The developed imaging method provides a powerful tool for studying microglia (MG) in semi-intact central nervous system preparations.
- This approach facilitates the dissection of the molecular basis of MG behaviors and the evaluation of candidate reagents.
- The technique is valuable for advancing our understanding of MG function in both development and disease states.
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