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茴芹内酯三硫酮激活UCP2可抑制脑出血后的神经炎症。

Activation of UCP2 by anethole trithione suppresses neuroinflammation after intracerebral hemorrhage.

作者信息

Yan Xiao-Ling, Xu Fu-You, Ji Jing-Jing, Song Peng, Pei Ya-Qin, He Mei-Jun, Wang Zi-Chuang, You Shou-Jiang, Hua Zi-Chun, Cheng Jian, Jia Jia

机构信息

Department of Neurology and Suzhou Clinical Research Center of Neurological Disease, The Second Affiliated Hospital of Soochow University, Soochow University, Suzhou, 215123, China.

Jiangsu Key Laboratory of Neuropsychiatric Diseases & College of Pharmaceutical Sciences, Soochow University, Suzhou, 215123, China.

出版信息

Acta Pharmacol Sin. 2022 Apr;43(4):811-828. doi: 10.1038/s41401-021-00698-1. Epub 2021 Jun 28.

Abstract

Intracerebral hemorrhage (ICH) is a devastating disease, in which neuroinflammation substantially contributes to brain injury. Uncoupling protein 2 (UCP2) is a member of the mitochondrial anion carrier family, which uncouples oxidative phosphorylation from ATP synthesis by facilitating proton leak across the mitochondrial inner membrane. UCP2 has been reported to modulate inflammation. In this study we investigated whether and how UCP2 modulated neuroinflammation through microglia/macrophages following ICH in vitro and in vivo. We used an in vitro neuroinflammation model in murine BV2 microglia to mimic microglial activation following ICH. ICH in vivo model was established in mice through collagenase infusion into the left striatum. ICH mice were treated with anetholetrithione (ADT, 50 mg· kg ·d, ip) or the classical protonophoric uncoupler FCCP (injected into hemorrhagic striatum). We showed that the expression and mitochondrial location of microglial UCP2 were not changed in both in vitro and in vivo ICH models. Knockdown of UCP2 exacerbated neuroinflammation in BV2 microglia and mouse ICH models, suggesting that endogenous UCP2 inhibited neuroinflammation and therefore played a protective role following ICH. ADT enhanced mitochondrial ROS production thus inducing mitochondrial uncoupling and activating UCP2 in microglia. ADT robustly suppressed neuroinflammation, attenuated brain edema and improved neurological deficits following ICH, and these effects were countered by striatal knockdown of UCP2. ADT enhanced AMP-activated protein kinase (AMPK) activation in the hemorrhagic brain, which was abrogated by striatal knockdown of UCP2. Moreover, striatal knockdown of AMPK abolished the suppression of neuroinflammation by ADT following ICH. On the other hand, FCCP-induced mitochondrial uncoupling was independent of UCP2 in microglia; and striatal knockdown of UCP2 did not abrogate the suppression of neuroinflammation by FCCP in ICH mice. In conclusion, the uncoupling activity is essential for suppression of neuroinflammation by UCP2. We prove for the first time the concept that activators of endogenous UCP2 such as anetholetrithione are a new class of uncouplers with translational significance.

摘要

脑出血(ICH)是一种破坏性疾病,其中神经炎症在脑损伤中起重要作用。解偶联蛋白2(UCP2)是线粒体阴离子载体家族的成员,它通过促进质子跨线粒体内膜泄漏,使氧化磷酸化与ATP合成解偶联。据报道,UCP2可调节炎症。在本研究中,我们调查了在体外和体内脑出血后,UCP2是否以及如何通过小胶质细胞/巨噬细胞调节神经炎症。我们使用小鼠BV2小胶质细胞的体外神经炎症模型来模拟脑出血后的小胶质细胞激活。通过向小鼠左侧纹状体内注入胶原酶建立脑出血的体内模型。脑出血小鼠用茴三硫(ADT,50mg·kg·d,腹腔注射)或经典的质子载体解偶联剂FCCP(注入出血的纹状体)治疗。我们发现,在体外和体内脑出血模型中,小胶质细胞UCP2 的表达和线粒体定位均未改变。敲低UCP2会加剧BV2小胶质细胞和小鼠脑出血模型中的神经炎症,这表明内源性UCP2抑制神经炎症,因此在脑出血后起保护作用。ADT增强线粒体ROS生成,从而诱导线粒体解偶联并激活小胶质细胞中的UCP2。ADT能强烈抑制脑出血后的神经炎症,减轻脑水肿并改善神经功能缺损,而这些作用可被纹状体中UCP2的敲低所抵消。ADT增强出血脑中AMP激活的蛋白激酶(AMPK)的激活,而纹状体中UCP2的敲低可消除这种激活。此外,纹状体中AMPK的敲低消除了ADT对脑出血后神经炎症的抑制作用。另一方面,FCCP诱导线粒体解偶联在小胶质细胞中不依赖于UCP2;纹状体中UCP2的敲低不会消除FCCP对脑出血小鼠神经炎症抑制作用。总之,解偶联活性对于UCP2抑制神经炎症至关重要。我们首次证明了内源性UCP2激活剂如茴三硫是一类具有转化意义的新型解偶联剂这一概念。

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