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Guanabenz Prevents d-Galactosamine/Lipopolysaccharide-Induced Liver Damage and Mortality

机译:瓜纳本斯预防d-半乳糖胺/脂多糖诱导的肝损伤和死亡率

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摘要

Multi-organ failure in response to uncontrolled microbial infection is characterized by low blood pressure accompanied by a systemic over-inflammation state, caused by massive pro-inflammatory cytokines release and liver damage. Recently, the integrated stress response (ISR), characterized by eukaryotic translation initiation factor 2α (eIF2α) phosphorylation, was involved with controlling apoptosis in stressed hepatocytes and associated with poor survival to endotoxin challenge. Lipopolysaccharide (LPS) alone is able to induce the ISR in hepatocytes and can trigger massive liver damage along with tumor necrosis factor-alpha (TNF-α) expression. Consequently, drugs interfering with eIF2α phosphorylation may represent potential candidates for the treatment of such pathologies. We, therefore, used Guanabenz (GBZ), a small compound with enhancing eIF2α phosphorylation activity to evaluate its effect on bacterial LPS sensing and endotoxemia. GBZ is confirmed here to have an anti-inflammatory activity by increasing in vitro interleukin-10 (IL-10) production by LPS-stimulated dendritic cells. We further show that in the d-galactosamine (d-galN)/LPS-dependent lethality model, intraperitoneal injection of GBZ promoted mice survival, prevented liver damage, increased IL-10 levels, and inhibited TNF-α production. GBZ and its derivatives could therefore represent an interesting pharmacological solution to control systemic inflammation and associated acute liver failure.
机译:对不受控制的微生物感染作出反应的多器官衰竭的特征是,由于大量促炎性细胞因子的释放和肝损害,导致血压降低,并伴有全身性过度炎症状态。最近,以真核翻译起始因子2α(eIF2α)磷酸化为特征的整合应激反应(ISR)与控制应激肝细胞的凋亡有关,并且与内毒素攻击的存活时间短有关。单独的脂多糖(LPS)能够诱导肝细胞中的ISR,并与肿瘤坏死因子-α(TNF-α)表达一起引发大量肝损伤。因此,干扰eIF2α磷酸化的药物可能代表了潜在的候选治疗方法。因此,我们使用瓜纳本斯(GBZ)(一种具有增强的eIF2α磷酸化活性的小化合物)来评估其对细菌LPS感应和内毒素血症的作用。此处证实GBZ具有通过LPS刺激的树突状细胞增加体外白介素10(IL-10)产生的抗炎作用。我们进一步表明,在d-半乳糖胺(d-galN)/ LPS依赖的致死性模型中,腹腔注射GBZ可以促进小鼠存活,预防肝损伤,增加IL-10水平并抑制TNF-α的产生。因此,GBZ及其衍生物可能是控制全身性炎症和相关的急性肝衰竭的一种有趣的药理解决方案。

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