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AMPK activation protects from neuronal dysfunction and vulnerability across nematode, cellular and mouse models of Huntington's disease.

机译:AMPK激活可防止亨廷顿氏病的线虫,细胞和小鼠模型出现神经元功能障碍和脆弱性。

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摘要

The adenosine monophosphate activated kinase protein (AMPK) is an evolutionary-conserved protein important for cell survival and organismal longevity through the modulation of energy homeostasis. Several studies suggested that AMPK activation may improve energy metabolism and protein clearance in the brains of patients with vascular injury or neurodegenerative disease. However, in Huntington's disease (HD), AMPK may be activated in the striatum of HD mice at a late, post-symptomatic phase of the disease, and high-dose regiments of the AMPK activator 5-aminoimidazole-4-carboxamide ribonucleotide may worsen neuropathological and behavioural phenotypes. Here, we revisited the role of AMPK in HD using models that recapitulate the early features of the disease, including Caenorhabditis elegans neuron dysfunction before cell death and mouse striatal cell vulnerability. Genetic and pharmacological manipulation of aak-2/AMPKα shows that AMPK activation protects C. elegans neurons from the dysfunction induced by human exon-1 huntingtin (Htt) expression, in a daf-16/forkhead box O-dependent manner. Similarly, AMPK activation using genetic manipulation and low-dose metformin treatment protects mouse striatal cells expressing full-length mutant Htt (mHtt), counteracting their vulnerability to stress, with reduction of soluble mHtt levels by metformin and compensation of cytotoxicity by AMPKα1. Furthermore, AMPK protection is active in the mouse brain as delivery of gain-of-function AMPK-γ1 to mouse striata slows down the neurodegenerative effects of mHtt. Collectively, these data highlight the importance of considering the dynamic of HD for assessing the therapeutic potential of stress-response targets in the disease. We postulate that AMPK activation is a compensatory response and valid approach for protecting dysfunctional and vulnerable neurons in HD.
机译:腺苷单磷酸激活激酶蛋白(AMPK)是一种进化保守的蛋白,通过调节能量稳态对细胞存活和机体寿命至关重要。多项研究表明,AMPK激活可以改善血管损伤或神经退行性疾病患者大脑中的能量代谢和蛋白质清除。但是,在亨廷顿舞蹈病(HD)中,在疾病的症状发作后期,晚期,纹状体中的AMPK可能被激活,而高剂量的AMPK活化剂5-氨基咪唑-4-羧酰胺核糖核苷酸可能会恶化神经病理和行为表型。在这里,我们使用概括疾病早期特征的模型(包括秀丽隐杆线虫神经元功能异常,细胞死亡和小鼠纹状体细胞脆弱性)重新审视了AMPK在高清中的作用。 aak-2 /AMPKα的遗传和药理作用表明,AMPK激活以daf-16 /叉头盒O依赖性方式保护秀丽隐杆线虫神经元免受人类外显子1亨廷顿蛋白(Htt)表达诱导的功能障碍。同样,使用基因操作和低剂量二甲双胍治疗激活AMPK可保护表达全长突变体Htt(mHtt)的小鼠纹状体细胞,抵消其对应激的脆弱性,通过二甲双胍降低可溶性mHtt水平,并通过AMPKα1补偿细胞毒性。此外,由于将功能获得的AMPK-γ1递送至小鼠纹状体,减缓了mHtt的神经退行性作用,因此AMPK保护在小鼠脑中是活跃的。总的来说,这些数据突出了考虑HD动态性以评估该疾病中应激反应靶标的治疗潜力的重要性。我们假设AMPK激活是一种补偿性反应,是保护HD中功能异常和脆弱的神经元的有效方法。

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