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Updated: Aug 7, 2026

Live Imaging and Characterization of Microglia Dynamics and Interactions with Synapses in Diseased Murine Retina
Published on: January 16, 2026
Microglial CX3CR1 signaling mediates synaptic pruning in degenerative cervical myelopathy
Cindy M Zhou1, Azam Asgarihafshejani2, James Hong2
1Division of Genetics and Development, Krembil Brain Institute, University Health Network, Toronto, ON M5T 2S8, Canada; Institute of Medical Science, Faculty of Medicine, University of Toronto, Toronto, ON M5S 1A8, Canada.
Abstract:
Degenerative cervical myelopathy (DCM) encompasses several conditions that cause compression of the cervical spinal cord. While the pathobiology underlying compression-induced neural degeneration remains incompletely understood, microglial synaptic pruning, driven by CX3CR1, is thought to be a main contributor. The current study builds on previous work demonstrating that Cx3cr1-/- mice exhibit improved gait following DCM and seeks to determine if CX3CR1-mediated synaptic pruning underlies this improvement. We compared C57BL/6 (WT, wild-type) and Cx3cr1-/- mice across 12-weeks of DCM. Locomotor and pain function were assessed using CatWalk and Von Frey outcome measures, respectively. Synaptic and electrophysiological changes were characterized at baseline and after 4-weeks of DCM using pre- and post-synaptic markers, motor evoked potentials (MEPs), and whole-cell patch-clamp recordings. Cx3cr1-/- and WT mice showed differences in locomotion at baseline. Normalization of all groups revealed that Cx3cr1-/- mice exhibited improved locomotion across 12-weeks and greater mechanical sensitivity on Von Frey. 4-weeks post-DCM induction, the microglia of Cx3cr1-/- mice displayed reduced engulfment of excitatory and inhibitory synapses in the dorsal and ventral horns. This was accompanied by a disruption to the dorsal horn excitation-to-inhibition (E/I) balance, driven primarily by a loss of inhibitory transmission as confirmed by whole-cell patch clamp recording, and altered corticospinal-neuromuscular excitability, as confirmed by motor evoked potentials. Together, our findings reveal CX3CR1-mediated microglial synaptic pruning as a potential novel contributor to early DCM pathobiology. Specifically, our results suggest that an absence of pruning shifts the synaptic E/I balance in the dorsal horn, which may underlie the gait benefits observed in Cx3cr1-/- mice.
Insights
CX3CR1-mediated microglial synaptic pruning contributes to early degenerative cervical myelopathy (DCM) pathobiology. Absence of this pruning in Cx3cr1-/- mice improves locomotion and alters synaptic balance, suggesting a novel therapeutic target for DCM.
Area of Science:
- Neuroscience
- Immunology
- Spinal Cord Injury Research
Background:
- Degenerative cervical myelopathy (DCM) involves cervical spinal cord compression, leading to neural degeneration.
- Microglial synaptic pruning, regulated by CX3CR1, is a suspected key mechanism in DCM pathobiology.
- Previous studies showed Cx3cr1-/- mice have improved gait after DCM, suggesting CX3CR1's role.
Purpose of the Study:
- To investigate if CX3CR1-mediated synaptic pruning is responsible for improved gait in Cx3cr1-/- mice following DCM.
- To characterize the synaptic and electrophysiological changes in Cx3cr1-/- mice compared to wild-type (WT) mice during DCM.
Main Methods:
- Comparison of WT and Cx3cr1-/- mice over 12 weeks of DCM, assessing locomotion (CatWalk) and pain (Von Frey).
- Analysis of synaptic markers, motor evoked potentials (MEPs), and whole-cell patch-clamp recordings at baseline and 4 weeks post-DCM.
- Evaluation of microglial engulfment of synapses in dorsal and ventral horns.
Main Results:
- Cx3cr1-/- mice showed improved locomotion and increased mechanical sensitivity compared to WT mice.
- Absence of CX3CR1 reduced microglial engulfment of excitatory and inhibitory synapses post-DCM.
- Dorsal horn excitation-to-inhibition (E/I) balance was disrupted, with reduced inhibitory transmission and altered corticospinal-neuromuscular excitability.
Conclusions:
- CX3CR1-mediated microglial synaptic pruning is a novel contributor to early DCM pathobiology.
- Lack of pruning in Cx3cr1-/- mice shifts the dorsal horn synaptic E/I balance, potentially explaining gait improvements.
- Targeting CX3CR1-mediated pruning may offer a therapeutic strategy for DCM.
