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首页> 外文期刊>Ageing Research Reviews >Role of the AMPK pathway in promoting autophagic flux via modulating mitochondrial dynamics in neurodegenerative diseases: Insight into prion diseases
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Role of the AMPK pathway in promoting autophagic flux via modulating mitochondrial dynamics in neurodegenerative diseases: Insight into prion diseases

机译:AMPK途径在促进神经变性疾病中的线粒体动力学促进自噬途径的作用:对朊病毒疾病的洞察

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Highlights ? Accumulation of misfolded prion proteins in endoplasmic reticulum. ? Stress initiates unfolded protein response (UPR) that depletes adenosine triphosphate (ATP) inside mitochondria. ? AMPK signaling cascade activated by mild stress to cope with depleted energy levels. ? Using AMPK as a tool to promote autophagic flux in prion diseases to enhance survival. Abstract Neurons are highly energy demanding cells dependent on the mitochondrial oxidative phosphorylation system. Mitochondria generate energy via respiratory complexes that constitute the electron transport chain. Adenosine triphosphate depletion or glucose starvation act as a trigger for the activation of adenosine monophosphate-activated protein kinase (AMPK). AMPK is an evolutionarily conserved protein that plays an important role in cell survival and organismal longevity through modulation of energy homeostasis and autophagy. Several studies suggest that AMPK activation may improve energy metabolism and protein clearance in the brains of patients with vascular injury or neurodegenerative disease. Mild mitochondrial dysfunction leads to activated AMPK signaling, but severe endoplasmic reticulum stress and mitochondrial dysfunction may lead to a shift from autophagy towards apoptosis and perturbed AMPK signaling. Hence, controlling mitochondrial dynamics and autophagic flux via AMPK activation might be a useful therapeutic strategy in neurodegenerative diseases to reinstate energy homeostasis and degrade misfolded proteins. In this review article, we discuss briefly the role of AMPK signaling in energy homeostasis, the structure of AMPK, activation mechanisms of AMPK, regulation of AMPK, the role of AMPK in autophagy, the role of AMPK in neurodegenerative diseases, and finally the role of autophagic flux in prion diseases.
机译:强调 ?内质网中错误折叠朊病毒蛋白的积累。还应激引发展开的蛋白质反应(UPR),其耗尽线粒体内腺苷(ATP)。还AMPK信号传导级联通过轻度应力激活,以应对耗尽的能量水平。还使用AMPK作为促进朊病毒疾病的自噬助剂的工具来增强生存。摘要神经元是高能量要求苛刻的细胞,依赖于线粒体氧化磷酸化系统。线粒体通过构成电子传输链的呼吸复合物产生能量。腺苷三磷酸耗尽或葡萄糖饥饿作为腺苷激活蛋白激酶(AMPK)活化的触发。 AMPK是一种进化保守的蛋白质,通过调节能量稳态和自噬调制,在细胞存活和有机体寿命中起着重要作用。几项研究表明,随机动力激活可以改善血管损伤患者患者的能量代谢和蛋白质清除症。轻度线粒体功能障碍导致活性的AMPK信号传导,但严重的内质网应激和线粒体功能障碍可能导致从自噬转向凋亡和扰动的AMPK信号传导。因此,通过AMPK活化控制线粒体动力学和自噬助剂可能是神经变性疾病中有用的治疗策略,以恢复能量稳态并降解错误折叠的蛋白质。在这篇审查条中,我们简要讨论了AMPK信号传导在能量稳态中的作用,AMPK的结构,AMPK的激活机制,安培调节,AMPK在自噬中的作用,AMPK在神经变性疾病中的作用,最后的作用朊病毒疾病中的自噬通量。

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