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Microglial depletion under thalamic hemorrhage ameliorates mechanical allodynia and suppresses aberrant axonal sprouting

机译:丘脑出血引起的小胶质细胞耗竭改善了机械性异常性疼痛并抑制了轴突萌发

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摘要

Central poststroke pain (CPSP) is one of the neuropathic pain syndromes that can occur following stroke involving the somatosensory system. However, the underlying mechanism of CPSP remains largely unknown. Here, we established a CPSP mouse model by inducing a focal hemorrhage in the thalamic ventrobasal complex and confirmed the development of mechanical allodynia. In this model, microglial activation was observed in the somatosensory cortex, as well as in the injured thalamus. By using a CSF1 receptor inhibitor, we showed that microglial depletion effectively prevented allodynia development in our CPSP model. In the critical phase of allodynia development, c-fos–positive neurons increased in the somatosensory cortex, accompanied by ectopic axonal sprouting of the thalamocortical projection. Furthermore, microglial ablation attenuated both neuronal hyperactivity in the somatosensory cortex and circuit reorganization. These findings suggest that microglia play a crucial role in the development of CPSP pathophysiology by promoting sensory circuit reorganization.
机译:中风后中枢性疼痛(CPSP)是中风后涉及体感系统的神经性疼痛综合征之一。但是,CPSP的基本机制仍然未知。在这里,我们通过诱导丘脑腹基底复合体的局灶性出血建立了CPSP小鼠模型,并证实了机械性异常性疼痛的发展。在该模型中,在体感皮层以及受伤的丘脑中观察到了小胶质细胞活化。通过使用CSF1受体抑制剂,我们证明了小胶质细胞耗竭有效地阻止了CPSP模型中异常性疼痛的发展。在异常性疼痛发展的关键阶段,体感皮层中的c-fos阳性神经元增加,并伴有丘脑皮质投影的异位轴突发芽。此外,小胶质细胞消融减弱了体感皮质中的神经元过度活跃和电路重组。这些发现表明,小胶质细胞通过促进感觉回路的重组在CPSP病理生理学的发展中起着至关重要的作用。

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