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超氧化物:中性粒细胞生物学中神秘的化学变色龙。

Superoxide: The enigmatic chemical chameleon in neutrophil biology.

作者信息

Kettle Anthony J, Ashby Louisa V, Winterbourn Christine C, Dickerhof Nina

机构信息

Department of Pathology & Biomedical Science, Mātai Hāora: Centre for Redox Biology & Medicine, University of Otago Christchurch, Christchurch, New Zealand.

出版信息

Immunol Rev. 2023 Mar;314(1):181-196. doi: 10.1111/imr.13183. Epub 2023 Jan 7.

DOI:10.1111/imr.13183
PMID:36609987
Abstract

The burst of superoxide produced when neutrophils phagocytose bacteria is the defining biochemical feature of these abundant immune cells. But 50 years since this discovery, the vital role superoxide plays in host defense has yet to be defined. Superoxide is neither bactericidal nor is it just a source of hydrogen peroxide. This simple free radical does, however, have remarkable chemical dexterity. Depending on its environment and reaction partners, superoxide can act as an oxidant, a reductant, a nucleophile, or an enzyme substrate. We outline the evidence that inside phagosomes where neutrophils trap, kill, and digest bacteria, superoxide will react preferentially with the enzyme myeloperoxidase, not the bacterium. By acting as a cofactor, superoxide will sustain hypochlorous acid production by myeloperoxidase. As a substrate, superoxide may give rise to other forms of reactive oxygen. We contend that these interactions hold the key to understanding the precise role superoxide plays in neutrophil biology. State-of-the-art techniques in mass spectrometry, oxidant-specific fluorescent probes, and microscopy focused on individual phagosomes are needed to identify bactericidal mechanisms driven by superoxide. This work will undoubtably lead to fascinating discoveries in host defense and give a richer understanding of superoxide's varied biology.

摘要

中性粒细胞吞噬细菌时产生的超氧化物爆发是这些丰富免疫细胞的决定性生化特征。但自这一发现以来的50年里,超氧化物在宿主防御中所起的关键作用尚未明确。超氧化物既没有杀菌作用,也不仅仅是过氧化氢的来源。然而,这种简单的自由基具有非凡的化学灵活性。根据其所处环境和反应伙伴的不同,超氧化物可以充当氧化剂、还原剂、亲核试剂或酶底物。我们概述了以下证据:在中性粒细胞捕获、杀死和消化细菌的吞噬小体内部,超氧化物将优先与髓过氧化物酶反应,而非与细菌反应。通过作为辅助因子,超氧化物将维持髓过氧化物酶产生次氯酸。作为底物,超氧化物可能会产生其他形式的活性氧。我们认为,这些相互作用是理解超氧化物在中性粒细胞生物学中精确作用的关键。需要质谱分析、氧化剂特异性荧光探针以及聚焦于单个吞噬小体的显微镜等先进技术来识别由超氧化物驱动的杀菌机制。这项工作无疑将在宿主防御方面带来引人入胜的发现,并更深入地理解超氧化物多样的生物学特性。

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