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首页> 外文期刊>Journal of innate immunity >Role of Metabolic Reprogramming in Pulmonary Innate Immunity and Its Impact on Lung Diseases
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Role of Metabolic Reprogramming in Pulmonary Innate Immunity and Its Impact on Lung Diseases

机译:代谢重编程在肺果疫苗中的作用及其对肺病的影响

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Lung innate immunity is the first line of defence against inhaled allergens, pathogens and environmental pollutants. Cellular metabolism plays a key role in innate immunity. Catabolic pathways, including glycolysis and fatty acid oxidation (FAO), are interconnected with biosynthetic and redox pathways. Innate immune cell activation and differentiation trigger extensive metabolic changes that are required to support their function. Pro-inflammatory polarisation of macrophages and activation of dendritic cells, mast cells and neutrophils are associated with increased glycolysis and a shift towards the pentose phosphate pathway and fatty acid synthesis. These changes provide the macromolecules required for proliferation and inflammatory mediator production and reactive oxygen species for anti-microbial effects. Conversely, anti-inflammatory macrophages use primarily FAO and oxidative phosphorylation to ensure efficient energy production and redox balance required for prolonged survival. Deregulation of metabolic reprogramming in lung diseases, such as asthma and chronic obstructive pulmonary disease, may contribute to impaired innate immune cell function. Understanding how innate immune cell metabolism is altered in lung disease may lead to identification of new therapeutic targets. This is important as drugs targeting a number of metabolic pathways are already in clinical development for the treatment of other diseases such as cancer.
机译:肺天生免疫是针对吸入过敏原,病原体和环境污染物的第一道防线。细胞新陈代谢在先天免疫中起着关键作用。分解代谢途径,包括糖酵解和脂肪酸氧化(粮农组织)与生物合成和氧化还原途径相互联系。先天免疫细胞激活和分化触发器支持其功能所需的广泛代谢变化。巨噬细胞的促炎偏振和树突细胞的激活,肥大细胞和中性粒细胞与糖酵解增加相关,朝向戊糖磷酸途径和脂肪酸合成的转变有关。这些变化提供了增殖和炎症介质的生产和用于抗微生物效应的活性氧物质所需的大分子。相反,抗炎巨噬细胞主要用于粮农组织和氧化磷酸化,以确保延长存活所需的有效能量生产和氧化还原平衡。对肺病等代谢重编程的放松管制,如哮喘和慢性阻塞性肺病,可能有助于患有损害的天生免疫细胞功能。了解肺病中如何改变天生的免疫细胞代谢可能导致鉴定新的治疗目标。这与靶向许多代谢途径的药物已经在临床开发中用于治疗癌症等其他疾病的药物。

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