Over supplementation with vitamin B12 alters microbe-host interactions in the gut leading to accelerated Citrobacter rodentium colonization and pathogenesis in mice

柠檬酸杆菌 生物 维生素B12 肠道菌群 微生物学 毛螺菌科 柠檬酸杆菌 病菌 氰钴胺 殖民地化 免疫学 内分泌学 细菌 肠杆菌科 大肠杆菌 生物化学 厚壁菌 16S核糖体RNA 基因 遗传学
作者
Andrew J. Forgie,Deanna M. Pepin,Tingting Ju,Stephanie Tollenaar,Consolato Sergi,Samantha Gruenheid,Benjamin P. Willing
出处
期刊:Microbiome [BioMed Central]
卷期号:11 (1) 被引量:15
标识
DOI:10.1186/s40168-023-01461-w
摘要

Abstract Background Vitamin B12 supplements typically contain doses that far exceed the recommended daily amount, and high exposures are generally considered safe. Competitive and syntrophic interactions for B12 exist between microbes in the gut. Yet, to what extent excessive levels contribute to the activities of the gut microbiota remains unclear. The objective of this study was to evaluate the effect of B12 on microbial ecology using a B12 supplemented mouse model with Citrobacter rodentium , a mouse-specific pathogen. Mice were fed a standard chow diet and received either water or water supplemented with B12 (cyanocobalamin: ~120 μg/day), which equates to approximately 25 mg in humans. Infection severity was determined by body weight, pathogen load, and histopathologic scoring. Host biomarkers of inflammation were assessed in the colon before and after the pathogen challenge. Results Cyanocobalamin supplementation enhanced pathogen colonization at day 1 ( P < 0.05) and day 3 ( P < 0.01) postinfection. The impact of B12 on gut microbial communities, although minor, was distinct and attributed to the changes in the Lachnospiraceae populations and reduced alpha diversity. Cyanocobalamin treatment disrupted the activity of the low-abundance community members of the gut microbiota. It enhanced the amount of interleukin-12 p40 subunit protein (IL12/23p40; P < 0.001) and interleukin-17a (IL-17A; P < 0.05) in the colon of naïve mice. This immune phenotype was microbe dependent, and the response varied based on the baseline microbiota. The cecal metatranscriptome revealed that excessive cyanocobalamin decreased the expression of glucose utilizing genes by C. rodentium , a metabolic attribute previously associated with pathogen virulence. Conclusions Oral vitamin B12 supplementation promoted C. rodentium colonization in mice by altering the activities of the Lachnospiraceae populations in the gut. A lower abundance of select Lachnospiraceae species correlated to higher p40 subunit levels, while the detection of Parasutterella exacerbated inflammatory markers in the colon of naïve mice. The B12-induced change in gut ecology enhanced the ability of C. rodentium colonization by impacting key microbe-host interactions that help with pathogen exclusion. This research provides insight into how B12 impacts the gut microbiota and highlights potential consequences of disrupting microbial B12 competition/sharing through over-supplementation. Graphical Abstract

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