Role of nitric oxide in parasitic infections.

S L James
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引用次数: 23

Abstract

Nitric oxide is produced by a number of different cell types in response to cytokine stimulation and thus has been found to play a role in immunologically mediated protection against a growing list of protozoan and helminth parasites in vitro and in animal models. The biochemical basis of its effects on the parasite targets appears to involve primarily inactivation of enzymes crucial to energy metabolism and growth, although it has other biologic activities as well. NO is produced not only by macrophages and macrophage-like cells commonly associated with the effector arm of cell-mediated immune reactivity but also by cells commonly considered to lie outside the immunologic network, such as hepatocytes and endothelial cells, which are intimately involved in the life cycle of a number of parasites. NO production is stimulated by gamma interferon in combination with tumor necrosis factor alpha or other secondary activation signals and is regulated by a number of cytokines (especially interleukin-4, interleukin-10, and transforming growth factor beta) and other mediators, as well as through its own inherent inhibitory activity. The potential for design of prevention and/or intervention approaches against parasitic infection (e.g., vaccination or combination chemo- and immunotherapy strategies) on the basis of induction of cell-mediated immunity and NO production appears to be great, but the possible pathogenic consequences of overproduction of NO must be taken into account. Moreover, more research on the role and regulation of NO in human parasitic infection is needed before its possible clinical relevance can be determined.

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一氧化氮在寄生虫感染中的作用。
一氧化氮是由许多不同类型的细胞在细胞因子刺激下产生的,因此在体外和动物模型中已经发现,一氧化氮在免疫介导的保护中对越来越多的原生动物和蠕虫寄生虫起作用。其作用于寄生虫目标的生化基础似乎主要涉及对能量代谢和生长至关重要的酶的失活,尽管它也有其他生物活性。一氧化氮不仅由巨噬细胞和巨噬细胞样细胞产生,这些细胞通常与细胞介导的免疫反应效应臂有关,而且通常被认为位于免疫网络之外的细胞,如肝细胞和内皮细胞,也会产生一氧化氮,这些细胞与许多寄生虫的生命周期密切相关。NO的产生受γ干扰素联合肿瘤坏死因子α或其他次生激活信号的刺激,并受多种细胞因子(特别是白细胞介素-4、白细胞介素-10和转化生长因子β)和其他介质的调节,并通过其自身固有的抑制活性。在诱导细胞介导的免疫和一氧化氮产生的基础上,设计预防和/或干预寄生虫感染的方法(例如,疫苗接种或化疗和免疫治疗联合策略)的潜力似乎很大,但必须考虑到一氧化氮过量产生的可能的致病后果。此外,NO在人类寄生虫感染中的作用和调控还需要更多的研究,才能确定其可能的临床意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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