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依赖PINK1的NF-κB信号传导促成阿尔茨海默病中的淀粉样病理。

PINK1-dependent NFKB signaling contributes to amyloid pathology in Alzheimer disease.

作者信息

Du Fang, Yu Qing, Hu Gang, Lin Chyuan-Sheng, ShiDu Yan Shirley

机构信息

Department of Surgery, Columbia University Vagelos College of Physicians and Surgeons, New York, NY, USA.

Higuchi Bioscience Center, University of Kansas, Lawrence, KS, USA.

出版信息

Autophagy. 2025 May 4:1-17. doi: 10.1080/15548627.2025.2463322.

DOI:10.1080/15548627.2025.2463322
PMID:40320714
Abstract

Mitochondrial dysfunction plays a preponderant role in the development of Alzheimer disease (AD). We have demonstrated that activation of PINK1 (PTEN induced kinase 1)-dependent mitophagy ameliorates amyloid pathology, attenuates mitochondrial and synaptic dysfunction, and improves cognitive function. However, the underlying mechanisms remain largely unknown. Using a newly generated PINK1-AD transgenic mouse model and AD neuronal cell lines, we provide substantial evidence supporting the contribution of PINK1-mediated mitochondrial ROS (reactive oxygen species) and NFKB/NF-κB (nuclear factor kappa B) signaling to altering APP (amyloid beta precursor protein) processing and Aβ metabolism. Enhancing neuronal PINK1 is sufficient to suppress Aβ-induced activation of NFKB signal transduction in PINK1-overexpressed Aβ-AD mice and Aβ-producing neurons. Blocking PINK1-mediated NFKB activation inhibits activities of BACE1 (beta-secretase 1) and γ-secretase, which are key enzymes for cleavage of APP processing to produce Aβ. Conversely, loss or knockdown of PINK1 produces excessive ROS, along with increased phosphorylated NFKB1/p50 and RELA/p65 subunits, APP-related BACE1 and γ-secretase, and Aβ accumulation. Importantly, these detrimental effects were robustly blocked by the addition of scavenging PINK1 Aβ-induced mitochondrial ROS, leading to the suppression of NFKB activation, restoration of normal APP processing, and limitation of Aβ accumulation. Thus, our findings highlight a novel mechanism underlying PINK1-mediated modulation of Aβ metabolism a ROS-NFKB-APP processing nexus. Activation of PINK1 signaling could be a potential therapeutic avenue for the early stages of AD by combining improving mitochondrial quality control with limiting amyloid pathology in AD.

摘要

线粒体功能障碍在阿尔茨海默病(AD)的发展过程中起主要作用。我们已经证明,依赖PINK1(PTEN诱导激酶1)的线粒体自噬的激活可改善淀粉样蛋白病理,减轻线粒体和突触功能障碍,并改善认知功能。然而,其潜在机制在很大程度上仍然未知。利用新构建的PINK1-AD转基因小鼠模型和AD神经元细胞系,我们提供了大量证据支持PINK1介导的线粒体ROS(活性氧)和NFKB/NF-κB(核因子κB)信号传导在改变APP(淀粉样前体蛋白)加工和Aβ代谢中的作用。增强神经元PINK1足以抑制在PINK1过表达的Aβ-AD小鼠和产生Aβ的神经元中Aβ诱导的NFKB信号转导激活。阻断PINK1介导的NFKB激活可抑制BACE1(β-分泌酶1)和γ-分泌酶的活性,这两种酶是切割APP加工产生Aβ的关键酶。相反,PINK1的缺失或敲低会产生过量的ROS,同时增加磷酸化的NFKB1/p50和RELA/p65亚基、APP相关的BACE1和γ-分泌酶以及Aβ的积累。重要的是,添加清除PINK1 Aβ诱导的线粒体ROS可强烈阻断这些有害作用,导致NFKB激活的抑制、正常APP加工的恢复以及Aβ积累的限制。因此,我们的研究结果突出了PINK1介导的Aβ代谢调节的一种新机制——ROS-NFKB-APP加工联系。激活PINK1信号传导可能是AD早期阶段的一种潜在治疗途径,通过结合改善线粒体质量控制和限制AD中的淀粉样蛋白病理来实现。

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