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Updated: Jun 11, 2026

A Procedure for Implanting a Spinal Chamber for Longitudinal In Vivo Imaging of the Mouse Spinal Cord
Published on: December 3, 2014
Long-lasting post-mortem activity of spinal microglia in situ in mice
Payam Dibaj1, Heinz Steffens, Fabien Nadrigny
1Department of Neurology, Georg August University of Göttingen, Göttingen, Germany.
Abstract:
As CNS macrophages, microglia show a high spontaneous motility of their processes, continuously surveying their microenvironment. Upon CNS injury, microglia react by immediate cellular polarization and process extension toward the lesion site as well as by subsequent amoeboid lesion-directed migration and phagocytosis. To determine the ability of microglia to fulfill their role within distinctively lesioned tissue in the absence of life support, we investigated microglial activity and responsiveness to laser-induced axonal injuries in the spinal dorsal columns in situ after cardiac and respiratory arrest, i.e., post-mortem, in the progressively degrading nervous tissue. For this purpose, we used time-lapse two-photon laser scanning microscopy in double transgenic mice expressing enhanced green fluorescent protein in microglia and enhanced yellow fluorescent protein in projection neurons. Depending on the premortal condition of the animal, microglial activity and responsiveness remain for up to5-10 hr post-mortem. Thereby, the continuously decreasing glial reaction is independent of oxygen and glucose supply but requires residual ATP, suggesting a parasitic form of energy, such as a transmembrane uptake of ATP released from injured nervous tissue. Even though initially microglia are able to detect axonal injury after disruption of the blood supply, the later aspects of glial reaction, for example amoeboid conversion and migration, are absent post- mortem, corresponding to the failure of microglia to prevent secondary damage after injury of nervous tissue.
Insights
Microglia, the brain
Area of Science:
- Neuroscience
- Cell Biology
- Immunology
Background:
- Microglia are CNS macrophages crucial for surveying and responding to injury.
- They exhibit process motility and migrate towards lesions, engulfing debris.
Purpose of the Study:
- To investigate microglial activity and responsiveness post-mortem.
- To determine if microglia can function in degrading nervous tissue without life support.
Main Methods:
- Time-lapse two-photon laser scanning microscopy in transgenic mice.
- Induction of laser-induced axonal injuries in spinal dorsal columns post-mortem.
- Observation of microglial behavior up to 5-10 hours after cardiac and respiratory arrest.
Main Results:
- Microglial activity and responsiveness persisted for up to 5-10 hours post-mortem.
- This activity was independent of oxygen/glucose but required residual ATP, likely from injured tissue.
- Initial detection of axonal injury occurred, but later responses like amoeboid conversion and migration were absent.
Conclusions:
- Microglia retain some function post-mortem, utilizing residual ATP.
- Their ability to respond to CNS injury is significantly impaired after circulatory arrest.
- This impairment limits their capacity to prevent secondary damage in a post-mortem environment.

