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Published on: September 7, 2019
A microglial activation cascade across cortical regions underlies secondary mechanical hypersensitivity to amputation
Hong-Rui Wei1, Lan Tang1, Xin-Lu Yang2
1Department of Anesthesiology, The First Affiliated Hospital of USTC, Hefei National Laboratory for Physical Sciences at the Microscale, Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei 230026, China.
Abstract:
Neural mechanisms underlying amputation-related secondary pain are unclear. Using in vivo two-photon imaging, three-dimensional reconstruction, and fiber photometry recording, we show that a microglial activation cascade from the primary somatosensory cortex of forelimb (S1FL) to the primary somatosensory cortex of hindlimb (S1HL) mediates the disinhibition and subsequent hyperexcitation of glutamatergic neurons in the S1HL (S1HLGlu), which then drives secondary mechanical hypersensitivity development in ipsilateral hindpaws of mice with forepaw amputation. Forepaw amputation induces rapid S1FL microglial activation that further activates S1HL microglia via the CCL2-CCR2 signaling pathway. Increased engulfment of GABAergic presynapses by activated microglia stimulates S1HLGlu neuronal activity, ultimately leading to secondary mechanical hypersensitivity of hindpaws. It is widely believed direct neuronal projection drives interactions between distinct brain regions to prime specific behaviors. Our study reveals microglial interactions spanning different subregions of the somatosensory cortex to drive a maladaptive neuronal response underlying secondary mechanical hypersensitivity at non-injured sites.
Insights
Forepaw amputation triggers microglial activation in the brain, leading to secondary pain in the hindpaw. This involves a signaling cascade that causes nerve hyperexcitation and hypersensitivity at non-injured sites.
Area of Science:
- Neuroscience
- Immunology
- Pain Research
Background:
- Neural mechanisms of secondary pain after amputation remain poorly understood.
- Existing theories focus on direct neuronal projections between brain regions.
Purpose of the Study:
- To elucidate the microglial mechanisms driving secondary mechanical hypersensitivity following forepaw amputation.
- To investigate inter-areal microglial communication in the somatosensory cortex.
Main Methods:
- In vivo two-photon imaging
- Three-dimensional reconstruction
- Fiber photometry recording in mice
Main Results:
- Forepaw amputation induced microglial activation in the primary somatosensory cortex of the forelimb (S1FL).
- Activated S1FL microglia triggered S1HL microglia activation via CCL2-CCR2 signaling, leading to disinhibition and hyperexcitation of S1HL glutamatergic neurons.
- Microglial engulfment of GABAergic presynapses in S1HL increased neuronal activity, causing secondary mechanical hypersensitivity in the hindpaw.
Conclusions:
- Microglial interactions across somatosensory cortex subregions mediate secondary pain after amputation.
- This study reveals a novel mechanism involving inter-areal microglial signaling in maladaptive neuronal responses.

