Department of Pharmaceutical Sciences, Università del Piemonte Orientale "Amedeo Avogadro", Via Bovio 6, 28100 Novara, Italy.
Department of Pharmaceutical Sciences, Università del Piemonte Orientale "Amedeo Avogadro", Via Bovio 6, 28100 Novara, Italy.
Ageing Res Rev. 2023 Jun;87:101914. doi: 10.1016/j.arr.2023.101914. Epub 2023 Mar 21.
Protein misfolding is prominent in early cellular pathology of Alzheimer's disease (AD), implicating pathophysiological significance of endoplasmic reticulum stress/unfolded protein response (ER stress/UPR) and highlighting it as a target for drug development. Experimental data from animal AD models and observations on human specimens are, however, inconsistent. ER stress and associated UPR are readily observed in in vitro AD cellular models and in some AD model animals. In the human brain, components and markers of ER stress as well as UPR transducers are observed at Braak stages III-VI associated with severe neuropathology and neuronal death. The picture, however, is further complicated by the brain region- and cell type-specificity of the AD-related pathology. Terms 'disturbed' or 'non-canonical' ER stress/UPR were used to describe the discrepancies between experimental data and the classic ER stress/UPR cascade. Here we discuss possible 'disturbing' or 'interfering' factors which may modify ER stress/UPR in the early AD pathogenesis. We focus on the dysregulation of the ER Ca homeostasis, store-operated Ca entry, and the interaction between the ER and mitochondria. We suggest that a detailed study of the CNS cell type-specific alterations of Ca homeostasis in early AD may deepen our understanding of AD-related dysproteostasis.
蛋白质错误折叠在阿尔茨海默病(AD)的早期细胞病理学中很明显,这暗示了内质网应激/未折叠蛋白反应(ER 应激/UPR)的病理生理意义,并强调其是药物开发的靶点。然而,来自 AD 动物模型的实验数据和对人类标本的观察并不一致。ER 应激和相关的 UPR 很容易在体外 AD 细胞模型和一些 AD 模型动物中观察到。在人脑,ER 应激的组成部分和标志物以及 UPR 转导物在与严重神经病理学和神经元死亡相关的 Braak 阶段 III-VI 中观察到。然而,由于 AD 相关病理学的脑区和细胞类型特异性,情况变得更加复杂。术语“紊乱”或“非典型”ER 应激/UPR 用于描述实验数据与经典 ER 应激/UPR 级联之间的差异。在这里,我们讨论了可能在 AD 早期发病机制中改变 ER 应激/UPR 的“干扰”或“干扰”因素。我们专注于 ER Ca 稳态、储存操纵的 Ca 内流以及 ER 和线粒体之间的相互作用的失调。我们建议,对早期 AD 中 CNS 细胞类型特异性 Ca 稳态改变进行详细研究,可能会加深我们对 AD 相关异常蛋白稳态的理解。