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Chronic adiponectin deficiency leads to Alzheimer’s disease-like cognitive impairments and pathologies through AMPK inactivation and cerebral insulin resistance in aged mice

机译:慢性脂联素缺乏导致老年小鼠ampK失活和脑胰岛素抵抗导致的阿尔茨海默病样认知障碍和病理

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摘要

BACKGROUND: Insulin resistance is the major pathogenesis underlying type 2 diabetes mellitus (T2DM) and these patients have doubled risk of Alzheimer's disease (AD). Increasing evidence suggests that insulin resistance plays an important role in AD pathogenesis, possibly due to abnormal GSK3β activation, causing intra- and extracellular amyloid-beta (Aβ) accumulation. Adiponectin (APN) is an adipokine with insulin-sensitizing and anti-inflammatory effects. Reduced circulatory APN level is associated with insulin resistance and T2DM. The role of APN in AD has not been elucidated. In this study, we aim to examine if adiponectin deficiency would lead to cerebral insulin resistance, cognitive decline and Alzheimer's-like pathology in mice. METHODS: To study the role of adiponectin in cognitive functions, we employed adiponectin-knockout (APN-KO) mice and demonstrated chronic APN deficiency in their CNS. Behavioral tests were performed to study the cognitions of male APN-KO mice. Brains and tissue lysates were collected to study the pathophysiological and molecular changes in the brain of APN-KO mice. SH-SY5Y neuroblastoma cell line was used to study the molecular mechanism upon APN and insulin treatment. RESULTS: Aged APN-deficient mice displayed spatial memory and learning impairments, fear-conditioned memory deficit as well as anxiety. These mice also developed AD pathologies including increased cerebral Aβ42 level, Aβ deposition, hyperphosphorylated Tau proteins, microgliosis and astrogliosis with increased cerebral IL-1β and TNFα levels that associated with increased neuronal apoptosis and reduced synaptic proteins levels, suggesting APN deficiency may lead to neuronal and synaptic loss in the brain. AD pathologies-associated APN-KO mice displayed attenuated AMPK phosphorylation and impaired insulin signaling including decreased Akt induction and increased GSK3β activation in the hippocampus and frontal cortex. Aged APN-KO mice developed hippocampal insulin resistance with reduced pAkt induction upon intracerebral insulin injection. Consistently, APN treatment in SH-SY5Y cells with insulin resistance and overexpressing Aβ induce higher pAkt levels through AdipoR1 upon insulin treatment whereas the induction was blocked by compound C, indicating APN can enhance neuronal insulin sensitivity through AMPK activation. CONCLUSION: Our results indicated that chronic APN deficiency inactivated AMPK causing insulin desensitization and elicited AD-like pathogenesis in aged mice which also developed significant cognitive impairments and psychiatric symptoms.
机译:背景:胰岛素抵抗是2型糖尿病(T2DM)的主要发病机制,这些患者患阿尔茨海默氏病(AD)的风险增加了一倍。越来越多的证据表明,胰岛素抵抗在AD发病机理中起着重要作用,这可能是由于异常的GSK3β激活引起了细胞内和细胞外淀粉样β(Aβ)积累。脂联素(APN)是一种具有胰岛素敏感性和抗炎作用的脂肪因子。循环的APN水平降低与胰岛素抵抗和T2DM相关。 APN在AD中的作用尚未阐明。在这项研究中,我们旨在检查脂联素缺乏症是否会导致小鼠脑胰岛素抵抗,认知能力下降和阿尔茨海默氏病样病理。方法:为了研究脂联素在认知功能中的作用,我们采用了脂联素敲除(APN-KO)小鼠,并证明了其CNS中存在慢性APN缺乏症。进行行为测试以研究雄性APN-​​KO小鼠的认知。收集大脑和组织裂解物以研究APN-KO小鼠大脑的病理生理和分子变化。 SH-SY5Y神经母细胞瘤细胞系用于研究APN和胰岛素治疗的分子机制。结果:衰老的APN缺陷小鼠表现出空间记忆和学习障碍,恐惧条件下的记忆缺陷以及焦虑。这些小鼠还出现了AD病理,包括脑Aβ42水平升高,Aβ沉积,Tau蛋白过度磷酸化,小胶质细胞增生和星形胶质增生以及脑IL-1β和TNFα水平升高,与神经元凋亡增加和突触蛋白水平降低有关,提示APN缺乏可能导致神经元凋亡。和大脑中的突触损失。 AD病理学相关的APN-KO小鼠显示AMPK磷酸化减弱,胰岛素信号传导受损,包括海马和额叶皮层Akt诱导减少以及GSK3β激活增加。 APN-KO老年小鼠在注射脑内胰岛素后出现海马胰岛素抵抗,而pAkt诱导减少。一致地,在胰岛素治疗后,具有胰岛素抵抗和过度表达Aβ的SH-SY5Y细胞中的APN治疗通过AdipoR1诱导更高的pAkt水平,而该诱导被化合物C阻断,表明APN可通过AMPK激活增强神经元胰岛素敏感性。结论:我们的结果表明,慢性APN缺乏使AMPK失活,引起胰岛素脱敏,并诱发了老年小鼠的AD样发病机制,该机制也产生了明显的认知障碍和精神症状。

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