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整合分析微生物组和代谢组揭示了肠道微生物群与鲤鱼生长之间的联系。

Integrative analysis of microbiome and metabolome reveals the linkage between gut microbiota and carp growth.

机构信息

Department of Microbiology, College of Life Sciences, Nanjing Agricultural University, Key Laboratory of Agricultural and Environmental Microbiology, Ministry of Agriculture and Rural Affairs, Nanjing, 210095, China; Key Laboratory of Integrated Rice-Fish Farming Ecology, Ministry of Agriculture and Rural Affairs, Freshwater Fisheries Research Center (FFRC), Chinese Academy of Fishery Sciences (CAFS), Wuxi, 214081, China.

Department of Microbiology, College of Life Sciences, Nanjing Agricultural University, Key Laboratory of Agricultural and Environmental Microbiology, Ministry of Agriculture and Rural Affairs, Nanjing, 210095, China.

出版信息

Environ Res. 2023 Mar 1;220:115133. doi: 10.1016/j.envres.2022.115133. Epub 2022 Dec 20.

Abstract

Gut microbiota and their metabolites are increasingly recognized for their crucial role in regulating the health and growth of the host. The mechanism by which the gut microbiome affects the growth rate of fish (Cyprinus carpio) in the rice-fish coculture system, however, remains unclear. In this study, the gut contents of the fast-growing and slow-growing (FG and SG) carp were collected from the rice-fish coculture system for both the fish gut microbiome and metabolome analyses. High throughput 16 S rRNA gene sequencing showed that the overall gut microbiota of FG group was distinct from that of SG group. For example, the cyanobacteria were highly enriched in the guts of SG carp (18.61%), in contrast, they only represented a minor fraction of gut microbiota for FG group (<0.20%). The liquid chromatography-mass spectrometry (LC-MS)-based metabolomics analysis revealed that 191 identified metabolites mostly located in 18 KEGG pathways were differentially present between the two groups, of which more than 50% of these metabolites were involved in lipid and amino acids metabolism. Compared with the FG group, the gut microbiota of SG group significantly enriched the metabolic pathways involved in the steroid (hormone) biosynthesis, whereas reducing those associated with beta-alanine metabolism, biosynthesis of unsaturated fatty acids and bile secretion. The enrichment and depletion of these metabolic pathways resulted in an increase in steroid metabolites and a decrease in the concentration of spermidine, which may have a major impact on the growth rate of carp. The metabolome results were further supported by the predicated KEGG functions of the gut microbiomes of the two groups, pointing out that the gut microbiota could substantially affect the growth of fish via their unique metabolic functions. Together, our integrated fish gut microbiome and metabolome analysis has substantial implications for the development of engineered microbiome technologies in aquaculture.

摘要

肠道微生物及其代谢物在调节宿主健康和生长方面的作用越来越受到重视。然而,肠道微生物群如何影响稻-鱼共养系统中鱼类(鲤鱼)的生长速度尚不清楚。在这项研究中,从稻-鱼共养系统中收集了生长快(FG)和生长慢(SG)鲤鱼的肠道内容物,用于鱼肠道微生物组和代谢组分析。高通量 16S rRNA 基因测序显示,FG 组的整体肠道微生物群与 SG 组的明显不同。例如,蓝细菌在 SG 鲤鱼的肠道中高度富集(18.61%),相比之下,它们在 FG 组的肠道微生物群中只占很小的一部分(<0.20%)。基于液相色谱-质谱(LC-MS)的代谢组学分析表明,在两组之间存在 191 种差异存在的鉴定代谢物,这些代谢物大多位于 18 个 KEGG 途径中,其中超过 50%的代谢物参与脂质和氨基酸代谢。与 FG 组相比,SG 组的肠道微生物群显著富集了参与类固醇(激素)生物合成的代谢途径,而减少了与β-丙氨酸代谢、不饱和脂肪酸生物合成和胆汁分泌相关的代谢途径。这些代谢途径的富集和耗竭导致类固醇代谢物增加,而 spermidine 浓度降低,这可能对鲤鱼的生长速度有重大影响。代谢组学结果进一步得到两组肠道微生物群预测 KEGG 功能的支持,指出肠道微生物群可以通过其独特的代谢功能对鱼类的生长产生重大影响。总之,我们对鱼肠道微生物组和代谢组的综合分析对水产养殖中工程化微生物组技术的发展具有重要意义。

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