Temporal modulation of host aerobic glycolysis determines the outcome of Mycobacterium marinum infection

海洋分枝杆菌 生物 糖酵解 微生物学 厌氧糖酵解 斑马鱼 巨噬细胞 细胞内寄生虫 肿瘤坏死因子α 免疫系统 吞噬作用 分枝杆菌 免疫学 新陈代谢 细菌 体外 生物化学 基因 遗传学
作者
Yuanqing Kan,Meng Lu,Lingling Xie,Lixia Liu,Wenyue Dong,Jintao Feng,Yu‐Chen Yan,Chao Zhao,Gang Peng,Decheng Wang,Mingfang Lu,Chen Yang,Chen Niu
出处
期刊:Fish & Shellfish Immunology [Elsevier BV]
卷期号:96: 78-85 被引量:6
标识
DOI:10.1016/j.fsi.2019.11.051
摘要

Macrophages are the first-line host defense that the invading Mycobacterium tuberculosis (Mtb) encounters. It has been recently reported that host aerobic glycolysis was elevated post the infection by a couple of virulent mycobacterial species. However, whether this metabolic transition is required for host defense against intracellular pathogens and the underlying mechanisms remain to be further investigated. A pathogenic mycobacterial species, M. marinum, is genetically close to Mtb and was utilized in this study. Through analyzing cellular carbon metabolism of RAW 264.7 (a murine macrophage-like cell line) post M. marinum infection, a strong elevation of glycolysis was observed. Next, three glycolysis inhibitors were examined for their ability to inhibit mycobacterial proliferation inside RAW264.7 macrophages. Among them, a glucose analog, 2-deoxyglucose (2-DG) displayed a protective role against mycobacterial infection. Treatment with 2-DG at concentrations of 0.5 or 1 mM significantly induced autophagy and decreased the phagocytosis of M. marinum by macrophages. Moreover, 2-DG pre-treatment exerted a significantly protective effect on zebrafish larvae by limiting the proliferation of M. marinum, and such effect was correlated to tumor necrosis factor alpha (TNF-α) as the 2-DG pre-treatment increased the expression of TNF-α in both mouse peritoneal macrophages and zebrafish. On the contrary, the 2-DG treatment post infection did not restrain proliferation of M. marinum in WT zebrafish, and even accelerated bacterial replication in TNF-α-/- zebrafish. Together, modulation of glycolysis prior to infection boosts host immunity against M. marinum infection, indicating a potential intervention strategy to control mycobacterial infection.
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