Moderate altitude exposure impacts host fasting blood glucose and serum metabolome by regulation of the intestinal flora

代谢组 厚壁菌 生物 肠道菌群 拟杆菌 微生物群 代谢组学 微生物学 葡萄糖稳态 生理学 免疫学 内分泌学 细菌 糖尿病 生物信息学 遗传学 胰岛素抵抗 16S核糖体RNA
作者
Dan Liŭ,Xiaoyan Gao,Xiaoran Huang,Yanqun Fan,Y. Wang,Yuelin Zhang,Xuanfu Chen,Jielu Wen,Haiwei He,Yan Hong,Ying Li,Yuxiao Zhang,Zhipeng Liu,Sifan Chen,Xin Li
出处
期刊:Science of The Total Environment [Elsevier]
卷期号:905: 167016-167016 被引量:1
标识
DOI:10.1016/j.scitotenv.2023.167016
摘要

Moderate altitude exposure has shown beneficial effects on diabetes incidence but the underlying mechanisms are not understood. Our study aimed to investigate how the human gut microbiome impacted the serum metabolome and associated with glucose homeostasis in healthy Chinese individuals upon moderate-altitude exposure. Faecal microbiome composition was assessed using shotgun metagenomic sequencing. Serum metabolome was acquired by untargeted metabolomics technology, and amino acids (AAs) and propionic acid in serum were quantified by targeted metabolomics technology. The results indicated that the moderate-altitude exposed individuals presented lowered fasting blood glucose (FBG) and propionic acid, increased circulating L-Glutamine but decreased L-Glutamate and L-Valine, which correlated with enriched Bacteroidetes and decreased Proteobacteria. Additionally, the silico causality associations among gut microbiota, serum metabolome and host FBG were analyzed by mediation analysis. It showed that increased Bacteroides ovatus (B. ovatus) and decreased Escherichia coli (E. coli) were identified as the main antagonistic species driving the association between L-Glutamate and FBG in silico causality. Furthermore, the high-fat diet (HFD) fed mice subjected to faecal microbiota transplantation (FMT) were applied to validate the cause-in-fact effects of gut microbiota on the beneficial glucose response. We found that microbiome in the moderate-altitude exposed donor could predict the extent of the FBG response in recipient mice, which showed lowered FBG, L-Glutamate and Firmicutes/Bacteroidetes ratio. Our findings suggest that moderate-altitude exposure targeting gut microbiota and circulating metabolome, may pave novel avenues to counter dysglycemia.
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