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首页> 外文期刊>Current pharmaceutical design >Dual effects of antioxidants in neurodegeneration: direct neuroprotection against oxidative stress and indirect protection via suppression of glia-mediated inflammation.
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Dual effects of antioxidants in neurodegeneration: direct neuroprotection against oxidative stress and indirect protection via suppression of glia-mediated inflammation.

机译:抗氧化剂在神经退行性变中的双重作用:针对氧化应激的直接神经保护和通过抑制神经胶质介导的炎症的间接保护。

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摘要

Oxidative stress, in which production of highly reactive oxygen species (ROS) and reactive nitrogen species (RNS) overwhelms antioxidant defenses, is a feature of many neurological diseases and neurodegeneration. ROS and RNS generated extracellularly and intracellularly by various processes initiate and promote neurodegeneration in CNS. ROS and RNS can directly oxidize and damage macromolecules such as DNA, proteins, and lipids, culminating in neurodegeneration in the CNS. Neurons are most susceptible to direct oxidative injury by ROS and RNS. ROS and RNS can also indirectly contribute to tissue damage by activating a number of cellular pathways resulting in the expression of stress-sensitive genes and proteins to cause oxidative injury. Moreover, oxidative stress also activates mechanisms that result in a glia-mediated inflammation that also causes secondary neuronal damage. Associated with neuronal injuries caused by many CNS insults is an activation of glial cells (particularly astrocytes and microglia) at the sites of injury. Activated glial cells are thus histopathological hallmarks of neurodegenerative diseases. Even though direct contact of activated glia with neurons per se may not necessarily be toxic, the immune mediators (e.g. nitric oxide and reactive oxygen species, pro-inflammatory cytokines and chemokines) released by activated glial cells are currently considered to be candidate neurotoxins. Therefore, study of the protective role of antioxidant compounds on inhibition of the inflammatory response and correcting the fundamental oxidant/antioxidant imbalance in patients suffering from neurodegenerative diseases are important vistas for further research. The purpose of this review is to summarize the current evidence in support of this critical role played by oxidative stress of neuronal and glial origin in neurodegenerative diseases. The mechanistic basis of the neuroprotective activity of antioxidants does not only rely on the general free radical trapping or antioxidant activity per se in neurons, but also the suppression of genes induced by pro-inflammatory cytokines and other mediators released by glial cells. We propose that combinations of agents which act at sequential steps in the neurodegenerative process can produce additive neuroprotective effects. A cocktail of multiple antioxidants with anti-inflammatory agents may be more beneficial in the prevention of neurodegenerative disease. A clearer appreciation of the potential therapeutic utility of antioxidants would emerge only when the complexity of their effects on mechanisms that interact to determine the extent of oxidative damage in vivo are more fully defined and understood.
机译:氧化应激是许多神经系统疾病和神经变性的特征,其中高活性氧(ROS)和活性氮(RNS)的产生压倒了抗氧化剂的防御能力。通过各种过程在细胞外和细胞内产生的ROS和RNS引发并促进中枢神经系统的神经变性。 ROS和RNS可以直接氧化和破坏DNA,蛋白质和脂质等大分子,最终导致CNS中的神经变性。神经元最容易受到ROS和RNS的直接氧化损伤。 ROS和RNS还可以通过激活许多细胞途径间接导致组织损伤,从而导致压力敏感基因和蛋白质的表达,从而引起氧化损伤。此外,氧化应激还激活了导致神经胶质介导的炎症的机制,该炎症也引起继发性神经元损伤。与许多中枢神经系统损伤引起的神经元损伤相关的是损伤部位的神经胶质细胞(特别是星形胶质细胞和小胶质细胞)的活化。因此,活化的神经胶质细胞是神经退行性疾病的组织病理学标志。即使活化的神经胶质与神经元本身直接接触不一定具有毒性,但活化的神经胶质细胞释放的免疫介质(例如一氧化氮和活性氧,促炎性细胞因子和趋化因子)目前被认为是候选的神经毒素。因此,研究抗氧化剂对抑制炎症反应和纠正神经退行性疾病患者体内基本的氧化剂/抗氧化剂失衡的保护作用,是进一步研究的重要依据。这篇综述的目的是总结当前证据,以支持神经退行性疾病中神经元和神经胶质来源的氧化应激所起的关键作用。抗氧化剂的神经保护活性的机理基础不仅取决于神经元本身的一般自由基捕获或抗氧化剂活性,而且还取决于抑制由促炎性细胞因子和神经胶质细胞释放的其他介质诱导的基因。我们提出,在神经退行性过程的相继步骤中起作用的药物组合可以产生附加的神经保护作用。多种抗氧化剂与抗炎药的混合物可能对预防神经退行性疾病更为有益。只有更全面地定义和理解抗氧化剂对相互作用来确定体内氧化损伤程度的机制的影响的复杂性,才能对抗氧化剂的潜在治疗作用有更清晰的认识。

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