Multi-omics association pattern between gut microbiota and host metabolism of a filter-feeding fish in situ exposed to microplastics

IF 10.3 1区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Jun-Nan Huang, Cong-Cong Gao, Hong-Yu Ren, Bin Wen, Zhuo-Nan Wang, Jian-Zhong Gao, Zai-Zhong Chen
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引用次数: 0

Abstract

Microplastics (MPs) are widespread in water environments and can affect gut microbiota and host metabolism of fish, but whether changes in host metabolism under MPs are mediated by gut microbiota remains unclear. Here, silver carp, a filter-feeding fish with important ecological functions, was in-situ exposure to environmentally relevant MPs. Multi-omics analysis and fecal microbiota transplantation were used to reveal the metabolic responses of carp along gut-liver-muscle axis. After three months of in situ exposure to MPs, community structure of gut microbiota of carp was reshaped, and five dominate phyla were significantly changed, including increased Cyanobacteria, Chloroflexi and Planctomycetota but decreased Firmicutes and Fusobacteriota. Weighted gene co-expression network analysis was further performed between these phyla and liver transcription spectrum, showing that the hub gene module contained up-regulated hppD, maiA and plg and activated ubiquinone and other terpenoid-quinone biosynthesis and phenylalanine metabolism. By fecal microbiota transplantation, the key gene module associated with core microbiota phyla of carp was verified in germ-free zebrafish. Interestingly, up-regulated hppD, maiA and plg and enriched phenylalanine metabolism were also observed in this module. Subsequently, metabolome performed in carp liver also shared activated phenylalanine metabolism, including increased trans-cinnamic acid and L-tyrosine. Furthermore, high-associated mapping showed that the differentially expressed metabolites (gamma-aminobutyric acid, ornithine and L-serine) related to amino acid metabolism in carp muscle were significantly accompanied with increased L-tyrosine in its liver. Overall, MPs exposure could change gut microbiome of silver carp and alter host metabolism especially amino acid metabolism along the gut-liver-muscle axis.
微塑料(MPs)广泛存在于水环境中,会影响鱼类的肠道微生物区系和宿主代谢,但在MPs作用下宿主代谢的变化是否由肠道微生物区系介导仍不清楚。在这里,具有重要生态功能的滤食性鱼类鲢鱼被原位暴露于环境相关的多溴联苯醚。多组学分析和粪便微生物群移植被用来揭示鲢鱼沿肠道-肝脏-肌肉轴的代谢反应。在原位暴露于MPs三个月后,鲤鱼肠道微生物群的群落结构发生了重塑,五个优势菌门发生了显著变化,包括蓝藻、绿藻和扁囊藻增加,而真菌和镰刀菌减少。进一步对这些门类和肝脏转录谱进行了加权基因共表达网络分析,结果显示,中枢基因模块包含上调的hppD、maiA和plg,并激活了泛醌和其他萜类-醌类化合物的生物合成和苯丙氨酸代谢。通过粪便微生物区系移植,在无菌斑马鱼体内验证了与鲤鱼核心微生物区系相关的关键基因模块。有趣的是,在该模块中还观察到 hppD、maiA 和 plg 的上调以及苯丙氨酸代谢的富集。随后,在鲤鱼肝脏中进行的代谢组研究也发现了活化的苯丙氨酸代谢,包括增加的反式肉桂酸和 L-酪氨酸。此外,高关联图谱显示,鲤鱼肌肉中与氨基酸代谢相关的差异表达代谢物(γ-氨基丁酸、鸟氨酸和 L-丝氨酸)在其肝脏中显著伴随着 L-酪氨酸的增加。总之,暴露于多溴联苯醚会改变鲢鱼的肠道微生物组,并改变宿主的代谢,尤其是沿肠道-肝脏-肌肉轴的氨基酸代谢。
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来源期刊
Environment International
Environment International 环境科学-环境科学
CiteScore
21.90
自引率
3.40%
发文量
734
审稿时长
2.8 months
期刊介绍: Environmental Health publishes manuscripts focusing on critical aspects of environmental and occupational medicine, including studies in toxicology and epidemiology, to illuminate the human health implications of exposure to environmental hazards. The journal adopts an open-access model and practices open peer review. It caters to scientists and practitioners across all environmental science domains, directly or indirectly impacting human health and well-being. With a commitment to enhancing the prevention of environmentally-related health risks, Environmental Health serves as a public health journal for the community and scientists engaged in matters of public health significance concerning the environment.
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