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转录组分析表明,臭氧暴露诱导的小鼠肺巨噬细胞中调控免疫代谢激活的信号通路。

Transcriptional profiling of lung macrophages following ozone exposure in mice identifies signaling pathways regulating immunometabolic activation.

机构信息

Department of Pharmaceutical Sciences, University of Connecticut School of Pharmacy, Storrs, CT 06269, United States.

Department of Pharmacology and Toxicology, Ernest Mario School of Pharmacy, Rutgers University, Piscataway, NJ 08854, United States.

出版信息

Toxicol Sci. 2024 Sep 1;201(1):103-117. doi: 10.1093/toxsci/kfae081.

Abstract

Macrophages play a key role in ozone-induced lung injury by regulating both the initiation and resolution of inflammation. These distinct activities are mediated by pro-inflammatory and anti-inflammatory/proresolution macrophages which sequentially accumulate in injured tissues. Macrophage activation is dependent, in part, on intracellular metabolism. Herein, we used RNA-sequencing (seq) to identify signaling pathways regulating macrophage immunometabolic activity following exposure of mice to ozone (0.8 ppm, 3 h) or air control. Analysis of lung macrophages using an Agilent Seahorse showed that inhalation of ozone increased macrophage glycolytic activity and oxidative phosphorylation at 24 and 72 h post-exposure. An increase in the percentage of macrophages in S phase of the cell cycle was observed 24 h post ozone. RNA-seq revealed significant enrichment of pathways involved in innate immune signaling and cytokine production among differentially expressed genes at both 24 and 72 h after ozone, whereas pathways involved in cell cycle regulation were upregulated at 24 h and intracellular metabolism at 72 h. An interaction network analysis identified tumor suppressor 53 (TP53), E2F family of transcription factors (E2Fs), cyclin-dependent kinase inhibitor 1A (CDKN1a/p21), and cyclin D1 (CCND1) as upstream regulators of cell cycle pathways at 24 h and TP53, nuclear receptor subfamily 4 group a member 1 (NR4A1/Nur77), and estrogen receptor alpha (ESR1/ERα) as central upstream regulators of mitochondrial respiration pathways at 72 h. To assess whether ERα regulates metabolic activity, we used ERα-/- mice. In both air and ozone-exposed mice, loss of ERα resulted in increases in glycolytic capacity and glycolytic reserve in lung macrophages with no effect on mitochondrial oxidative phosphorylation. Taken together, these results highlight the complex interaction between cell cycle, intracellular metabolism, and macrophage activation which may be important in the initiation and resolution of inflammation following ozone exposure.

摘要

巨噬细胞通过调节炎症的起始和解决在臭氧诱导的肺损伤中发挥关键作用。这些不同的活动是由促炎和抗炎/抗解决巨噬细胞介导的,它们在损伤组织中依次积累。巨噬细胞的激活部分依赖于细胞内代谢。在此,我们使用 RNA 测序 (seq) 来鉴定在将小鼠暴露于臭氧 (0.8 ppm,3 h) 或空气对照后调节巨噬细胞免疫代谢活性的信号通路。使用安捷伦 Seahorse 对肺巨噬细胞进行分析表明,吸入臭氧会增加巨噬细胞的糖酵解活性和氧化磷酸化在暴露后 24 和 72 小时。观察到细胞周期 S 期的巨噬细胞百分比在臭氧后 24 小时增加。RNA-seq 显示,在臭氧后 24 和 72 小时,差异表达基因中与先天免疫信号和细胞因子产生相关的途径明显富集,而细胞周期调节途径在 24 小时上调,细胞内代谢在 72 小时上调。相互作用网络分析鉴定肿瘤抑制因子 53 (TP53)、E2F 转录因子家族 (E2Fs)、细胞周期蛋白依赖性激酶抑制剂 1A (CDKN1a/p21) 和细胞周期蛋白 D1 (CCND1) 为 24 小时时细胞周期途径的上游调节剂,而 TP53、核受体亚家族 4 组 A 成员 1 (NR4A1/Nur77) 和雌激素受体 alpha (ESR1/ERα) 是 72 小时时线粒体呼吸途径的中央上游调节剂。为了评估 ERα 是否调节代谢活性,我们使用了 ERα-/- 小鼠。在空气和臭氧暴露的小鼠中,ERα 的缺失导致肺巨噬细胞的糖酵解能力和糖酵解储备增加,而对线粒体氧化磷酸化没有影响。总之,这些结果强调了细胞周期、细胞内代谢和巨噬细胞激活之间的复杂相互作用,这可能在臭氧暴露后炎症的起始和解决中很重要。

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