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Updated: May 9, 2026

Organotypic Hippocampal Slice Cultures
Published on: February 3, 2011
Microglial polarization and plasticity: evidence from organotypic hippocampal slice cultures
Maria Antonietta Ajmone-Cat1, Melissa Mancini, Roberta De Simone
1Department of Cell Biology and Neuroscience, Istituto Superiore di Sanità, 00185 Rome, Italy. mariaantonietta.ajmone-cat@iss.it
Abstract:
Increasing evidence indicates that "functional plasticity" is not solely a neuronal attribute but a hallmark of microglial cells, the main brain resident macrophage population. Far from being a univocal phenomenon, microglial activation can originate a plethora of functional phenotypes, encompassing the classic M1 proinflammatory and the alternative M2 anti-inflammatory phenotypes. This concept overturns the popular view of microglial activation as a synonym of neurotoxicity and neurogenesis failure in brain disorders. The characterization of the alternative programs is a matter of intense investigation, but still scarce information is available on the course of microglial activation, on the reversibility of the different commitments and on the capability of preserving molecular memory of previous priming stimuli. By using organotypic hippocampal slice cultures as a model, we developed paradigms of stimulation aimed at shedding light on some of these aspects. We show that persistent stimulation of TLR4 signaling promotes an anti-inflammatory response and microglial polarization toward M2-like phenotype. Moreover, acute and chronic preconditioning regimens permanently affect the capability to respond to a later challenge, suggesting the onset of mechanisms of molecular memory. Similar phenomena could occur in the intact brain and differently affect the vulnerability of mature and newborn neurons to noxious signals.
Insights
Microglial cells exhibit functional plasticity, adopting diverse phenotypes beyond simple inflammation. Persistent stimulation can induce lasting molecular memory, influencing brain responses to injury.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglial cells, the brain's resident macrophages, display functional plasticity.
- Microglial activation encompasses diverse phenotypes, including M1 (proinflammatory) and M2 (anti-inflammatory).
- This challenges the view of microglial activation solely as neurotoxic.
Purpose of the Study:
- Investigate the dynamics and reversibility of microglial activation states.
- Explore the potential for microglial molecular memory following priming stimuli.
- Utilize organotypic hippocampal slice cultures to model microglial responses.
Main Methods:
- Stimulation of Toll-like receptor 4 (TLR4) signaling in hippocampal slice cultures.
- Development of paradigms for acute and chronic microglial preconditioning.
- Analysis of microglial polarization and response to subsequent challenges.
Main Results:
- Persistent TLR4 stimulation induced an anti-inflammatory, M2-like microglial phenotype.
- Both acute and chronic preconditioning regimens resulted in permanent alterations in microglial responsiveness.
- Evidence suggests the development of microglial molecular memory.
Conclusions:
- Microglial functional plasticity is complex, involving adaptable phenotypes and memory.
- Microglial priming can permanently alter their response to subsequent stimuli.
- These findings have implications for understanding neuronal vulnerability in brain disorders.

