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探索农业环境中的真菌孢子对小鼠肺部微生物组和代谢谱的影响。

Exploring the impact of fungal spores from agricultural environments on the mice lung microbiome and metabolic profile.

机构信息

State Key Laboratory of Food Science and Technology, School of Food Science and Technology, Collaborative Innovation Center of Food Safety and Quality Control, Jiangnan University, Wuxi, Jiangsu 214122, China.

Affiliated Hospital of Jiangnan University, Wuxi, Jiangsu 214122, China.

出版信息

Ecotoxicol Environ Saf. 2023 Oct 1;264:115456. doi: 10.1016/j.ecoenv.2023.115456. Epub 2023 Sep 13.

Abstract

Exposure to particulate matter (PM) from agricultural environments has been extensively reported to cause respiratory health concerns in both animals and agricultural workers. Furthermore, PM from agricultural environments, containing fungal spores, has emerged as a significant threat to public health and the environment. Despite its potential toxicity, the impact of fungal spores present in PM from agricultural environments on the lung microbiome and metabolic profile is not well understood. To address this gap in knowledge, we developed a mice model of immunodeficiency using cyclophosphamide and subsequently exposed the mice to fungal spores via the trachea. By utilizing metabolomics techniques and 16 S rRNA sequencing, we conducted a comprehensive investigation into the alterations in the lung microbiome and metabolic profile of mice exposed to fungal spores. Our study uncovered significant modifications in both the lung microbiome and metabolic profile post-exposure to fungal spores. Additionally, fungal spore exposure elicited noticeable changes in α and β diversity, with these microorganisms being closely associated with inflammatory factors. Employing non-targeted metabolomics analysis via GC-TOF-MS, a total of 215 metabolites were identified, among which 42 exhibited significant differences. These metabolites are linked to various metabolic pathways, with amino sugar and nucleotide sugar metabolism, as well as galactose metabolism, standing out as the most notable pathways. Cysteine and methionine metabolism, along with glycine, serine and threonine metabolism, emerged as particularly crucial pathways. Moreover, these metabolites demonstrated a strong correlation with inflammatory factors and exhibited significant associations with microbial production. Overall, our findings suggest that disruptions to the microbiome and metabolome may hold substantial relevance in the mechanism underlying fungal spore-induced lung damage in mice.

摘要

暴露于农业环境中的颗粒物 (PM) 已被广泛报道会引起动物和农业工人的呼吸道健康问题。此外,来自农业环境的含有真菌孢子的 PM 已成为公共健康和环境的重大威胁。尽管真菌孢子具有潜在的毒性,但农业环境中的 PM 中存在的真菌孢子对肺部微生物组和代谢谱的影响还不是很清楚。为了弥补这一知识空白,我们使用环磷酰胺开发了一种免疫缺陷小鼠模型,然后通过气管将小鼠暴露于真菌孢子中。通过利用代谢组学技术和 16S rRNA 测序,我们对暴露于真菌孢子的小鼠肺部微生物组和代谢谱的变化进行了全面研究。我们的研究揭示了暴露于真菌孢子后肺部微生物组和代谢谱的显著变化。此外,真菌孢子暴露引起了α和β多样性的明显变化,这些微生物与炎症因子密切相关。通过 GC-TOF-MS 进行非靶向代谢组学分析,共鉴定出 215 种代谢物,其中 42 种存在显著差异。这些代谢物与各种代谢途径有关,其中包括氨基糖和核苷酸糖代谢以及半乳糖代谢,是最显著的途径。半胱氨酸和蛋氨酸代谢以及甘氨酸、丝氨酸和苏氨酸代谢是特别重要的途径。此外,这些代谢物与炎症因子表现出强烈的相关性,并与微生物产物表现出显著的关联。总体而言,我们的研究结果表明,微生物组和代谢组的紊乱可能在真菌孢子诱导的小鼠肺部损伤的机制中具有重要意义。

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