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阿尔茨海默病:一个血红素-Aβ的视角。

Alzheimer's Disease: A Heme-Aβ Perspective.

机构信息

Department of Inorganic Chemistry, Indian Association for the Cultivation of Science , Jadavpur, Kolkata 700032, India.

出版信息

Acc Chem Res. 2015 Sep 15;48(9):2556-64. doi: 10.1021/acs.accounts.5b00102. Epub 2015 Aug 7.

Abstract

Redox active iron is utilized in biology for various electron transfer and catalytic reactions essential for life, yet this same chemistry mediates the formation of partially reduced oxygen species (PROS). Oxidative stress derived from the iron accumulated in the amyloid plaques originating from amyloid β (Aβ) peptides and neurofibrillary tangles derived from hyperphosphorylated tau proteins has been implicated in the pathogenesis of Alzheimer's disease (AD). Altered heme homeostasis leading to dysregulation of expression of heme proteins and heme deposits in the amyloid plaques are characteristic of the AD brain. However, the pathogenic significance of heme in neurodegeneration in AD has been unappreciated due to the lack of detailed understanding of the chemistry of the interaction of heme and Aβ peptides. As a result, the biochemistry and biophysics of heme complexes of Aβ peptides (heme-Aβ) remained largely unexplored. In this Account, we discuss the active site environment of heme bound Aβ complexes, which involves three amino acid residues unique in mammalian Aβ (Arg5, Tyr10, and His13) and missing in Aβ from rodents, which do not get affected by AD. The histidine residue binds heme, while the arginine and the tyrosine act as key second sphere residues of the heme-Aβ active site that play a crucial role in its reactivity. Generation of PROS, enhanced peroxidase activity, and oxidation of neurotransmitters such as serotonin (5-HT) are all found to be catalyzed by heme-Aβ in in vitro assays, and these reactivities can potentially be linked to the observed neuropathologies in AD brain. Association of Cu with heme-Aβ leads to the formation of heme-Cu-Aβ. The heme-Cu-Aβ complex produces a greater amount of PROS than reduced heme-Aβ or Cu-Aβ alone. Nitric oxide (NO), a signaling molecule, is found to ameliorate the detrimental effects of heme-Aβ and Cu bound heme-Aβ complexes by detaching heme from the heme-Aβ complex and releasing it into the environment solution. Heme-Aβ complexes show fast electron transfer with oxidized cytochrome c and rapid heme transfer with apomyoglobin and aponeuroglobin. NO, cytochrome c, and apoglobins can all lead to reduction in PROS generated by reduced heme-Aβ. Synthetic analogues of heme, offering a hydrophobic distal environment, have been used to trap oxygen bound intermediates, which provides insight into the mechanism of PROS generation by reduced heme-Aβ. Artificial constructs of Aβ on nonbiological platforms are used not only to stabilize metastable and physiologically relevant large and small amyloid aggregates but also to monitor the interaction of various drug candidates with heme and Cu bound Aβ aggregates, representing a tractable avenue for testing therapeutic agents targeting metals and cofactors in AD.

摘要

活性铁在生物学中被用于各种电子转移和催化反应,这些反应对生命至关重要,但同样的化学物质也介导了部分还原氧物种 (PROS) 的形成。源自淀粉样 β (Aβ) 肽的淀粉样斑块中积累的铁以及源自过度磷酸化 tau 蛋白的神经原纤维缠结引起的氧化应激与阿尔茨海默病 (AD) 的发病机制有关。源自淀粉样斑块中血红素蛋白和血红素沉积物表达失调的血红素稳态改变是 AD 大脑的特征。然而,由于缺乏对血红素与 Aβ 肽相互作用化学的详细了解,血红素在 AD 神经退行性变中的致病意义尚未得到重视。因此,Aβ 肽血红素复合物(血红素-Aβ)的生物化学和生物物理学仍在很大程度上未被探索。在本述评中,我们讨论了血红素结合 Aβ 复合物的活性部位环境,其中涉及哺乳动物 Aβ 中独特的三个氨基酸残基(Arg5、Tyr10 和 His13)和在啮齿动物 Aβ 中缺失的残基,这些残基不受 AD 影响。组氨酸残基结合血红素,而精氨酸和酪氨酸作为血红素-Aβ 活性部位的关键第二球残基,在其反应性中起着至关重要的作用。在体外测定中发现,活性氧物种 (PROS) 的生成、过氧化物酶活性的增强以及神经递质如 5-羟色胺 (5-HT) 的氧化均由血红素-Aβ 催化,这些反应性可能与 AD 大脑中观察到的神经病理学有关。Cu 与血红素-Aβ 的结合导致血红素-Cu-Aβ 的形成。与单独的还原血红素-Aβ 或 Cu-Aβ 相比,血红素-Cu-Aβ 复合物产生更多的 PROS。一氧化氮 (NO),一种信号分子,通过从血红素-Aβ 复合物中分离血红素并将其释放到环境溶液中,发现可以改善血红素-Aβ 和 Cu 结合的血红素-Aβ 复合物的有害影响。血红素-Aβ 复合物与氧化细胞色素 c 进行快速电子转移,并与脱辅基肌红蛋白和脱辅基腱球蛋白进行快速血红素转移。NO、细胞色素 c 和脱辅基球蛋白都可以减少还原血红素-Aβ 生成的 PROS。提供疏水远端环境的血红素合成类似物已被用于捕获氧结合中间体,这为了解还原血红素-Aβ 生成 PROS 的机制提供了线索。在非生物平台上构建的 Aβ 人工结构不仅可用于稳定亚稳的和生理相关的大、小淀粉样体,还可用于监测各种候选药物与血红素和 Cu 结合的 Aβ 聚集体的相互作用,为针对 AD 中的金属和辅因子的治疗剂测试提供了一种可行的途径。

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