坏死性下垂
败血症
医学
星形胶质细胞
加巴能
脊髓
药理学
免疫学
内科学
程序性细胞死亡
中枢神经系统
受体
生物
生物化学
精神科
细胞凋亡
作者
Ruilin He,Jingxiang Wu,Liuhu Han,Ming‐De Li,Wenli Guo,Jian Fu,Bin Mei,Eric R. Gross,Xuesheng Liu,Yao Lu
标识
DOI:10.1002/advs.202504406
摘要
Abstract The peripheral immune system contributes to the development of sepsis‐induced cardiomyopathy. However, the underlying mechanisms linking central immune cells and neurons to sepsis‐induced cardiomyopathy remain to be clarified. Here, acute sepsis is induced by cecal ligation puncture (CLP), and pharmacological and RNAi interventions are administered to the thoracic spinal cord via intrathecal injection. Echocardiography and histology confirm reduced cardiac function following CLP. Sepsis‐induced spinal cord changes involved neuronal activation and loss with decreased gamma‐aminobutyric acid (GABA) levels. Necroptosis effector genes are markedly upregulated with increased RIPK1, RIPK3, and MLKL co‐expression evident in spinal GABAergic neurons, while administration of the necroptosis inhibitor Necrostatin‐1 substantially preserves neurons and reverses sepsis‐associated cardiac functional changes. Sepsis triggers increased C3, IL‐6 and TNF‐α in spinal astrocytes, while administration of the α2A‐adrenergic receptor (α2‐AR) agonist dexmedetomidine blocked inflammatory factor production, neuronal damage, and cardiac dysfunction. These findings suggest that sepsis‐induced cardiomyopathy arises from a neuroimmune interplay involving spinal astrocyte activation, GABAergic neuronal necroptosis, and cardiac damage driven by sympathetic hyperstimulation.
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