星形胶质细胞 TrkB 促进缺血性中风的脑损伤和水肿形成。

IF 5.1 2区 医学 Q1 NEUROSCIENCES
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引用次数: 0

摘要

缺血性中风后,星形胶质细胞会发生迅速的分子和功能变化,这可能会加重组织损伤。在这项研究中,我们发现星形胶质细胞中的神经营养素受体 TrkB 是缺血性脑卒中急性中枢神经系统损伤的关键促进因子。事实上,人类和实验性脑卒中发生后,星形胶质细胞中的TrkB蛋白强烈上调,缺乏星形胶质细胞TrkB的转基因小鼠在一过性大脑中动脉闭塞后,病变体积明显小于对照组动物,脑萎缩程度较低,运动能力较强。神经病理学研究证明,水肿与星形胶质细胞增生直接相关,转基因小鼠的水肿程度有限。重要的是,水通道 AQP4 的适应水平取决于星形胶质细胞 TrkB,因为缺乏星形胶质细胞 TrkB 的小鼠在中风后不会出现 AQP4 上调。用野生型和/或缺乏 TrkB 的星形胶质细胞进行的体外实验强调了在缺氧条件下通过激活 HIF1-α 上调 AQP4 对 TrkB 的依赖性。总之,我们的观察结果表明,星形胶质细胞中的TrkB信号转导有助于水肿的形成并加重脑缺血。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Astrocyte TrkB promotes brain injury and edema formation in ischemic stroke
Following ischemic stroke astrocytes undergo rapid molecular and functional changes that may accentuate tissue damage. In this study we identified the neurotrophin receptor TrkB in astrocytes as a key promoter of acute CNS injury in ischemic stroke. In fact, TrkB protein was strongly upregulated in astrocytes after human and experimental stroke, and transgenic mice lacking astrocyte TrkB displayed significantly smaller lesion volume, lower brain atrophy and better motor performance than control animals after transient middle cerebral artery occlusion. Neuropathological studies evidenced that edema directly correlated with astrogliosis and was limited in transgenic mice. Importantly, adaptive levels of the water channel AQP4 was astrocyte TrkB-dependent as AQP4 upregulation after stroke did not occur in mice lacking astrocyte TrkB. In vitro experiments with wild-type and/or TrkB-deficient astrocytes highlighted TrkB-dependent upregulation of AQP4 via activation of HIF1-alpha under hypoxia. Collectively, our observations indicate that TrkB signaling in astrocytes contributes to the development of edema and worsens cerebral ischemia.
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来源期刊
Neurobiology of Disease
Neurobiology of Disease 医学-神经科学
CiteScore
11.20
自引率
3.30%
发文量
270
审稿时长
76 days
期刊介绍: Neurobiology of Disease is a major international journal at the interface between basic and clinical neuroscience. The journal provides a forum for the publication of top quality research papers on: molecular and cellular definitions of disease mechanisms, the neural systems and underpinning behavioral disorders, the genetics of inherited neurological and psychiatric diseases, nervous system aging, and findings relevant to the development of new therapies.
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