Chronic PM2.5 Exposure Disrupts Intestinal Barrier Integrity via Microbial Dysbiosis-Triggered TLR2/5-MyD88-NLRP3 Inflammasome Activation

炎症体 失调 微生物学 化学 微生物毒素 TLR2型 炎症 生物 肠道菌群 免疫学 生物化学 TLR4型 毒素
作者
Zihan Ran,Jingcheng Yang,Liang Liu,Sai Wu,Yanpeng An,Wanwan Hou,Tianyuan Cheng,Youyi Zhang,Yiqing Zhang,Yechao Huang,Qianyue Zhang,Jia-Ping Wan,Xuemei Li,Baoling Xing,Yuchen Ye,Penghao Xu,Zhenghu Chen,Jinzhuo Zhao,Rui Li
出处
期刊:Environmental Research [Elsevier]
卷期号:258: 119415-119415
标识
DOI:10.1016/j.envres.2024.119415
摘要

PM2.5, a known public health risk, is increasingly linked to intestinal disorders, however, the mechanisms of its impact are not fully understood. This study aimed to explore the impact of chronic PM2.5 exposure on intestinal barrier integrity and to uncover the underlying molecular mechanisms. C57BL/6 J mice were exposed to either concentrated ambient PM2.5 (CPM) or filtered air (FA) for six months to simulate urban pollution conditions. We evaluated intestinal barrier damage, microbial shifts, and metabolic changes through histopathology, metagenomics, and metabolomics. Analysis of the TLR signaling pathway was also conducted. The mean concentration of PM2.5 in the CPM exposure chamber was consistently measured at 70.9 ± 26.8 μg/m³ throughout the study period. Our findings show that chronic CPM exposure significantly compromises intestinal barrier integrity, as indicated by reduced expression of the key tight junction proteins Occludin and Tjp1/Zo-1. Metagenomic sequencing revealed significant shifts in the microbial landscape, identifying 35 differentially abundant species. Notably, there was an increase in pro-inflammatory nongastric Helicobacter species and a decrease in beneficial bacteria, such as Lactobacillus intestinalis, Lactobacillus sp. ASF360, and Eubacterium rectale. Metabolomic analysis further identified 26 significantly altered metabolites commonly associated with intestinal diseases. A strong correlation between altered bacterial species and metabolites was also observed. For example, 4 Helicobacter species all showed positive correlations with 13 metabolites, including Lactate, Bile acids, Pyruvate and Glutamate. Additionally, increased expression levels of TLR2, TLR5, Myd88, and NLRP3 proteins were noted, and their expression patterns showed a strong correlation, suggesting a possible involvement of the TLR2/5-MyD88-NLRP3 signaling pathway. Chronic CPM exposure induces intestinal barrier dysfunction, microbial dysbiosis, metabolic imbalance, and activation of the TLR2/5-MyD88-NLRP3 inflammasome. These findings highlight the urgent need for intervention strategies to mitigate the detrimental effects of air pollution on intestinal health and identify potential therapeutic targets.
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