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脂多糖通过促进线粒体功能障碍和激活 JNK-Bnip3-Bax 通路诱导人嗅鞘胶质细胞凋亡。

Lipopolysaccharide induces human olfactory ensheathing glial apoptosis by promoting mitochondrial dysfunction and activating the JNK-Bnip3-Bax pathway.

机构信息

Bengbu Medical College, Affiliated Fuzhou General Hospital of Nanjing Military Area Command of Chinese PLA, Fuzhou, 350025, China.

Department of Orthopedics, Fuzhou General Hospital of Nanjing Military Area Command of Chinese PLA, Fuzhou, 350025, China.

出版信息

Cell Stress Chaperones. 2019 Jan;24(1):91-104. doi: 10.1007/s12192-018-0945-7. Epub 2018 Oct 29.

Abstract

Olfactory ensheathing glia (OEG) play an important role in regulating the regeneration of an injured nervous system. However, chronic inflammation damage reduces the viability of OEG via poorly understood mechanisms. We aimed to investigate the pathological responses of OEG in response to LPS-mediated inflammation stress in vitro. The results indicated that lipopolysaccharide (LPS) treatment significantly reduced the viability of OEG in a dose-dependent fashion. Mechanistically, LPS stimuli induced mitochondrial oxidative damage, mitochondrial fragmentation, mitochondrial metabolism disruption, and mitochondrial apoptosis activation. Furthermore, we verified that LPS modulated mitochondrial apoptosis by promoting Bax upregulation, and this process was regulated by the JNK-Bnip3 pathway. Inhibition of the JNK-Bnip3 pathway prevented LPS-mediated Bax activation, thus attenuating OEG apoptosis. Altogether, our data illustrated that LPS-mediated inflammation injury evoked mitochondrial abnormalities in OEG damage via the JNK-Bnip3-Bax pathway. This finding provides a potential target to protect OEG against chronic inflammation stress.

摘要

嗅鞘细胞(OEG)在调节受损神经系统的再生中起着重要作用。然而,慢性炎症损伤通过尚未完全了解的机制降低了 OEG 的活力。我们旨在研究 OEG 对体外 LPS 介导的炎症应激的病理反应。结果表明,脂多糖(LPS)处理以剂量依赖性方式显著降低 OEG 的活力。从机制上讲,LPS 刺激诱导线粒体氧化损伤、线粒体片段化、线粒体代谢紊乱和线粒体凋亡激活。此外,我们验证了 LPS 通过促进 Bax 上调来调节线粒体凋亡,这个过程受 JNK-Bnip3 途径调控。抑制 JNK-Bnip3 途径可防止 LPS 介导的 Bax 激活,从而减轻 OEG 凋亡。总的来说,我们的数据表明,LPS 介导的炎症损伤通过 JNK-Bnip3-Bax 途径引起 OEG 损伤中的线粒体异常。这一发现为保护 OEG 免受慢性炎症应激提供了一个潜在的靶点。

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