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The Spared Nerve Injury SNI Model of Induced Mechanical Allodynia in Mice
Published on: August 18, 2011
Microglial Depletion does not Affect the Laterality of Mechanical Allodynia in Mice
Quan Ma1,2,3, Dongmei Su2,3, Jiantao Huo2,3
1School of Life Science and Technology, Harbin Institute of Technology, Harbin, 150001, China.
Abstract:
Mechanical allodynia (MA), including punctate and dynamic forms, is a common and debilitating symptom suffered by millions of chronic pain patients. Some peripheral injuries result in the development of bilateral MA, while most injuries usually led to unilateral MA. To date, the control of such laterality remains poorly understood. Here, to study the role of microglia in the control of MA laterality, we used genetic strategies to deplete microglia and tested both dynamic and punctate forms of MA in mice. Surprisingly, the depletion of central microglia did not prevent the induction of bilateral dynamic and punctate MA. Moreover, in dorsal root ganglion-dorsal root-sagittal spinal cord slice preparations we recorded the low-threshold Aβ-fiber stimulation-evoked inputs and outputs of superficial dorsal horn neurons. Consistent with behavioral results, microglial depletion did not prevent the opening of bilateral gates for Aβ pathways in the superficial dorsal horn. This study challenges the role of microglia in the control of MA laterality in mice. Future studies are needed to further understand whether the role of microglia in the control of MA laterality is etiology-or species-specific.
Insights
Microglia depletion did not alter mechanical allodynia (MA) laterality in mice. This challenges the role of central microglia in controlling MA, suggesting potential etiology- or species-specific roles.
Area of Science:
- Neuroscience
- Pain Research
- Immunology
Background:
- Mechanical allodynia (MA) is a prevalent chronic pain symptom.
- The laterality of MA following injury is poorly understood.
- Microglia are immune cells in the central nervous system implicated in pain.
Purpose of the Study:
- To investigate the role of microglia in controlling the laterality of mechanical allodynia.
- To determine if central microglia regulate bilateral versus unilateral MA induction.
Main Methods:
- Genetic strategies were used to deplete microglia in mice.
- Dynamic and punctate forms of MA were assessed behaviorally.
- Ex vivo electrophysiological recordings were performed in spinal cord slices.
Main Results:
- Depletion of central microglia did not prevent the induction of bilateral dynamic and punctate MA.
- Microglial depletion did not affect the bilateral gating of Aβ-fiber pathways in the superficial dorsal horn.
- Behavioral and electrophysiological findings were consistent.
Conclusions:
- Central microglia do not appear to control MA laterality in this mouse model.
- The role of microglia in MA laterality may be specific to the cause of injury or species.
- Further research is needed to clarify microglia's role in pain lateralization.

