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Extracellular caspase-6 drives murine inflammatory pain via microglial TNF-α secretion
Abstract:
Increasing evidence indicates that the pathogenesis of neuropathic pain is mediated through spinal cord microglia activation. The intracellular protease caspase-6 (CASP6) is known to regulate neuronal apoptosis and axonal degeneration; however, the contribution of microglia and CASP6 in modulating synaptic transmission and pain is unclear. Here, we found that CASP6 is expressed specifically in C-fiber axonal terminals in the superficial spinal cord dorsal horn. Animals exposed to intraplantar formalin or bradykinin injection exhibited CASP6 activation in the dorsal horn. Casp6-null mice had normal baseline pain, but impaired inflammatory pain responses. Furthermore, formalin-induced second-phase pain was suppressed by spinal injection of CASP6 inhibitor or CASP6-neutralizing antibody, as well as perisciatic nerve injection of CASP6 siRNA. Recombinant CASP6 (rCASP6) induced marked TNF-α release in microglial cultures, and most microglia within the spinal cord expressed Tnfa. Spinal injection of rCASP6 elicited TNF-α production and microglia-dependent pain hypersensitivity. Evaluation of excitatory postsynaptic currents (EPSCs) revealed that rCASP6 rapidly increased synaptic transmission in spinal cord slices via TNF-α release. Interestingly, the microglial inhibitor minocycline suppressed rCASP6 but not TNF-α-induced synaptic potentiation. Finally, rCASP6-activated microglial culture medium increased EPSCs in spinal cord slices via TNF-α. Together, these data suggest that CASP6 released from axonal terminals regulates microglial TNF-α secretion, synaptic plasticity, and inflammatory pain.
Insights
Spinal cord microglia activation contributes to neuropathic pain. Caspase-6 (CASP6) released from nerve terminals activates microglia, promoting inflammatory pain through TNF-α and synaptic changes.
Area of Science:
- Neuroscience
- Pain Research
- Molecular Biology
Background:
- Neuropathic pain pathogenesis involves spinal cord microglia activation.
- The role of intracellular protease caspase-6 (CASP6) in microglia-mediated pain signaling is not fully understood.
- CASP6's function in synaptic transmission and pain modulation requires further investigation.
Purpose of the Study:
- To investigate the role of CASP6 in microglia activation and inflammatory pain.
- To elucidate the mechanisms by which CASP6 influences synaptic transmission in the spinal cord.
- To determine the contribution of CASP6 to pain hypersensitivity.
Main Methods:
- Utilized Casp6-null mice and pharmacological inhibitors/antibodies for CASP6.
- Administered recombinant CASP6 (rCASP6) and CASP6 siRNA in vivo and in vitro.
- Assessed inflammatory pain responses, TNF-α release in microglia, and excitatory postsynaptic currents (EPSCs) in spinal cord slices.
Main Results:
- Casp6-null mice showed impaired inflammatory pain responses.
- rCASP6 induced TNF-α release from microglia and pain hypersensitivity.
- rCASP6 enhanced spinal cord synaptic transmission via TNF-α, a process partially dependent on microglia.
Conclusions:
- CASP6 released from axonal terminals regulates microglial TNF-α secretion.
- CASP6 contributes to inflammatory pain by modulating synaptic plasticity in the spinal cord.
- Targeting CASP6 may offer a novel therapeutic strategy for inflammatory pain.
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