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缓解氧化应激对 Aβ 清除的不良影响:相关概念和计算建模开发策略综述。

Alleviating the unwanted effects of oxidative stress on Aβ clearance: a review of related concepts and strategies for the development of computational modelling.

机构信息

Centre for Advanced Computational Solutions (C-fACS), Lincoln University, Christchurch, 7647, New Zealand.

Department of Wine, Food and Molecular Biosciences, Lincoln University, Christchurch, 7647, New Zealand.

出版信息

Transl Neurodegener. 2023 Mar 13;12(1):11. doi: 10.1186/s40035-023-00344-2.

Abstract

Treatment for Alzheimer's disease (AD) can be more effective in the early stages. Although we do not completely understand the aetiology of the early stages of AD, potential pathological factors (amyloid beta [Aβ] and tau) and other co-factors have been identified as causes of AD, which may indicate some of the mechanism at work in the early stages of AD. Today, one of the primary techniques used to help delay or prevent AD in the early stages involves alleviating the unwanted effects of oxidative stress on Aβ clearance. 4-Hydroxynonenal (HNE), a product of lipid peroxidation caused by oxidative stress, plays a key role in the adduction of the degrading proteases. This HNE employs a mechanism which decreases catalytic activity. This process ultimately impairs Aβ clearance. The degradation of HNE-modified proteins helps to alleviate the unwanted effects of oxidative stress. Having a clear understanding of the mechanisms associated with the degradation of the HNE-modified proteins is essential for the development of strategies and for alleviating the unwanted effects of oxidative stress. The strategies which could be employed to decrease the effects of oxidative stress include enhancing antioxidant activity, as well as the use of nanozymes and/or specific inhibitors. One area which shows promise in reducing oxidative stress is protein design. However, more research is needed to improve the effectiveness and accuracy of this technique. This paper discusses the interplay of potential pathological factors and AD. In particular, it focuses on the effect of oxidative stress on the expression of the Aβ-degrading proteases through adduction of the degrading proteases caused by HNE. The paper also elucidates other strategies that can be used to alleviate the unwanted effects of oxidative stress on Aβ clearance. To improve the effectiveness and accuracy of protein design, we explain the application of quantum mechanical/molecular mechanical approach.

摘要

阿尔茨海默病(AD)的治疗在早期更为有效。虽然我们不完全了解 AD 早期的病因,但已确定潜在的病理因素(β淀粉样蛋白[Aβ]和tau)和其他共同因素是 AD 的原因,这可能表明 AD 早期的一些机制在起作用。如今,用于帮助延缓或预防 AD 早期的主要技术之一涉及减轻氧化应激对 Aβ清除的不利影响。4-羟基壬烯醛(HNE)是氧化应激引起的脂质过氧化产物,在降解蛋白酶的加合中起关键作用。这种 HNE 采用降低催化活性的机制。这一过程最终会损害 Aβ的清除。HNE 修饰蛋白的降解有助于减轻氧化应激的不利影响。清楚地了解与 HNE 修饰蛋白降解相关的机制对于开发策略和减轻氧化应激的不利影响至关重要。可以用来减少氧化应激影响的策略包括增强抗氧化活性,以及使用纳米酶和/或特定抑制剂。在降低氧化应激方面显示出前景的一个领域是蛋白质设计。然而,需要更多的研究来提高该技术的有效性和准确性。本文讨论了潜在病理因素与 AD 的相互作用。特别是,它重点讨论了氧化应激通过 HNE 引起的降解蛋白酶的加合对 Aβ降解蛋白酶表达的影响。本文还阐述了其他可以用来减轻氧化应激对 Aβ清除的不利影响的策略。为了提高蛋白质设计的有效性和准确性,我们解释了量子力学/分子力学方法的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eb55/10009979/bd56a5971dd1/40035_2023_344_Fig1_HTML.jpg

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