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1.
Neuroscience Bulletin ; (6): 1229-1245, 2023.
Artigo em Inglês | WPRIM | ID: wpr-1010608

RESUMO

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.


Assuntos
Camundongos , Animais , Hiperalgesia/metabolismo , Microglia/metabolismo , Modelos Animais de Doenças , Medula Espinal/metabolismo , Corno Dorsal da Medula Espinal/metabolismo , Gânglios Espinais/metabolismo
2.
Neuroscience Bulletin ; (6): 1210-1228, 2023.
Artigo em Inglês | WPRIM | ID: wpr-1010607

RESUMO

The chronic use of morphine and other opioids is associated with opioid-induced hypersensitivity (OIH) and analgesic tolerance. Among the different forms of OIH and tolerance, the opioid receptors and cell types mediating opioid-induced mechanical allodynia and anti-allodynic tolerance remain unresolved. Here we demonstrated that the loss of peripheral μ-opioid receptors (MORs) or MOR-expressing neurons attenuated thermal tolerance, but did not affect the expression and maintenance of morphine-induced mechanical allodynia and anti-allodynic tolerance. To confirm this result, we made dorsal root ganglia-dorsal roots-sagittal spinal cord slice preparations and recorded low-threshold Aβ-fiber stimulation-evoked inputs and outputs in superficial dorsal horn neurons. Consistent with the behavioral results, peripheral MOR loss did not prevent the opening of Aβ mechanical allodynia pathways in the spinal dorsal horn. Therefore, the peripheral MOR signaling pathway may not be an optimal target for preventing mechanical OIH and analgesic tolerance. Future studies should focus more on central mechanisms.


Assuntos
Humanos , Morfina/farmacologia , Hiperalgesia/metabolismo , Analgésicos Opioides/farmacologia , Neurônios/metabolismo , Transdução de Sinais
3.
Neuroscience Bulletin ; (6): 301-314, 2019.
Artigo em Inglês | WPRIM | ID: wpr-775476

RESUMO

Neuropathic pain is a chronic debilitating symptom characterized by spontaneous pain and mechanical allodynia. It occurs in distinct forms, including brush-evoked dynamic and filament-evoked punctate mechanical allodynia. Potassium channel 2.1 (Kir2.1), which exhibits strong inward rectification, is and regulates the activity of lamina I projection neurons. However, the relationship between Kir2.1 channels and mechanical allodynia is still unclear. In this study, we first found that pretreatment with ML133, a selective Kir2.1 inhibitor, by intrathecal administration, preferentially inhibited dynamic, but not punctate, allodynia in mice with spared nerve injury (SNI). Intrathecal injection of low doses of strychnine, a glycine receptor inhibitor, selectively induced dynamic, but not punctate allodynia, not only in naïve but also in ML133-pretreated mice. In contrast, bicuculline, a GABA receptor antagonist, induced only punctate, but not dynamic, allodynia. These results indicated the involvement of glycinergic transmission in the development of dynamic allodynia. We further found that SNI significantly suppressed the frequency, but not the amplitude, of the glycinergic spontaneous inhibitory postsynaptic currents (gly-sIPSCs) in neurons on the lamina II-III border of the spinal dorsal horn, and pretreatment with ML133 prevented the SNI-induced gly-sIPSC reduction. Furthermore, 5 days after SNI, ML133, either by intrathecal administration or acute bath perfusion, and strychnine sensitively reversed the SNI-induced dynamic, but not punctate, allodynia and the gly-sIPSC reduction in lamina IIi neurons, respectively. In conclusion, our results suggest that blockade of Kir2.1 channels in the spinal dorsal horn selectively inhibits dynamic, but not punctate, mechanical allodynia by enhancing glycinergic inhibitory transmission.


Assuntos
Animais , Masculino , Bicuculina , Farmacologia , Modelos Animais de Doenças , Glicina , Metabolismo , Hiperalgesia , Tratamento Farmacológico , Metabolismo , Imidazóis , Farmacologia , Potenciais Pós-Sinápticos Inibidores , Fisiologia , Camundongos Endogâmicos C57BL , Neurônios , Metabolismo , Neurotransmissores , Farmacologia , Traumatismos dos Nervos Periféricos , Tratamento Farmacológico , Metabolismo , Fenantrolinas , Farmacologia , Canais de Potássio Corretores do Fluxo de Internalização , Metabolismo , Receptores de GABA-A , Metabolismo , Receptores de Glicina , Metabolismo , Estricnina , Farmacologia , Transmissão Sináptica , Fisiologia , Técnicas de Cultura de Tecidos , Tato
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