Gang Zhou , Ying-si Wang , Hui-juan Wang, Ting-li Sun, Ru-qun Peng, Su-juan Li, Hong Peng, Xia Wen, Xiao-xuan Zhu, Yun-qi Zhu, Zong-bin Cui, Qing-shan Shi, Xiao-bao Xie
{"title":"多组学方法研究日本鳗鲡肠道微生物群和代谢组学。","authors":"Gang Zhou , Ying-si Wang , Hui-juan Wang, Ting-li Sun, Ru-qun Peng, Su-juan Li, Hong Peng, Xia Wen, Xiao-xuan Zhu, Yun-qi Zhu, Zong-bin Cui, Qing-shan Shi, Xiao-bao Xie","doi":"10.1016/j.cbd.2024.101408","DOIUrl":null,"url":null,"abstract":"<div><div>The intestinal microbiota plays a crucial role in the health and development of fish, engaging in intricate interactions with the host organism. As a significant species in aquaculture, <em>Lateolabrax japonicus</em> serves as an exemplary model for investigating these interactions and their subsequent effects on growth and health. This study utilized a multi-omics approach, incorporating metagenomic sequencing and non-targeted metabolomics, to delineate the gut microbiota and metabolome of <em>L. japonicus</em> throughout various developmental phases. Collected from a meticulously controlled aquaculture setting, the intestinal microbiota of L. <em>japonicus</em> underwent high-throughput sequencing to scrutinize microbial DNA and enumerate metabolites. The metagenomic analysis uncovered a heterogeneous gut microbiota in L. <em>japonicus</em>, predominantly composed of Proteobacteria and Firmicutes, with marked heterogeneity in microbial composition across developmental stages. A particularly noteworthy discovery was the prevalence of the genus <em>Acinetobacter</em>, which may significantly influence health and disease resistance. The metabolomic profiling discerned 4479 metabolites, each exhibiting pronounced stage-specific metabolic signatures, particularly within lipid, amino acid, and energy metabolism pathways. The correlation analysis between microbiota and metabolites highlighted the substantial impact of specific genera, such as <em>Acinetobacter</em> and <em>Gaeumannomyces</em>, on the metabolic milieu. This study provides a comprehensive overview of the dynamic shifts in the gut microbiota and metabolome of L. <em>japonicus</em>, highlighting stage-specific transitions that could be pivotal for refining aquaculture practices. The findings underscore the complex interdependence between microbiota composition and metabolic function, providing valuable insights into the modulation of fish health and growth.</div></div>","PeriodicalId":55235,"journal":{"name":"Comparative Biochemistry and Physiology D-Genomics & Proteomics","volume":"54 ","pages":"Article 101408"},"PeriodicalIF":2.2000,"publicationDate":"2024-12-23","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Exploring the gut microbiota and metabolome of Lateolabrax japonicus: A multi-omics approach\",\"authors\":\"Gang Zhou , Ying-si Wang , Hui-juan Wang, Ting-li Sun, Ru-qun Peng, Su-juan Li, Hong Peng, Xia Wen, Xiao-xuan Zhu, Yun-qi Zhu, Zong-bin Cui, Qing-shan Shi, Xiao-bao Xie\",\"doi\":\"10.1016/j.cbd.2024.101408\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><div>The intestinal microbiota plays a crucial role in the health and development of fish, engaging in intricate interactions with the host organism. As a significant species in aquaculture, <em>Lateolabrax japonicus</em> serves as an exemplary model for investigating these interactions and their subsequent effects on growth and health. This study utilized a multi-omics approach, incorporating metagenomic sequencing and non-targeted metabolomics, to delineate the gut microbiota and metabolome of <em>L. japonicus</em> throughout various developmental phases. Collected from a meticulously controlled aquaculture setting, the intestinal microbiota of L. <em>japonicus</em> underwent high-throughput sequencing to scrutinize microbial DNA and enumerate metabolites. The metagenomic analysis uncovered a heterogeneous gut microbiota in L. <em>japonicus</em>, predominantly composed of Proteobacteria and Firmicutes, with marked heterogeneity in microbial composition across developmental stages. A particularly noteworthy discovery was the prevalence of the genus <em>Acinetobacter</em>, which may significantly influence health and disease resistance. The metabolomic profiling discerned 4479 metabolites, each exhibiting pronounced stage-specific metabolic signatures, particularly within lipid, amino acid, and energy metabolism pathways. The correlation analysis between microbiota and metabolites highlighted the substantial impact of specific genera, such as <em>Acinetobacter</em> and <em>Gaeumannomyces</em>, on the metabolic milieu. This study provides a comprehensive overview of the dynamic shifts in the gut microbiota and metabolome of L. <em>japonicus</em>, highlighting stage-specific transitions that could be pivotal for refining aquaculture practices. 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Exploring the gut microbiota and metabolome of Lateolabrax japonicus: A multi-omics approach
The intestinal microbiota plays a crucial role in the health and development of fish, engaging in intricate interactions with the host organism. As a significant species in aquaculture, Lateolabrax japonicus serves as an exemplary model for investigating these interactions and their subsequent effects on growth and health. This study utilized a multi-omics approach, incorporating metagenomic sequencing and non-targeted metabolomics, to delineate the gut microbiota and metabolome of L. japonicus throughout various developmental phases. Collected from a meticulously controlled aquaculture setting, the intestinal microbiota of L. japonicus underwent high-throughput sequencing to scrutinize microbial DNA and enumerate metabolites. The metagenomic analysis uncovered a heterogeneous gut microbiota in L. japonicus, predominantly composed of Proteobacteria and Firmicutes, with marked heterogeneity in microbial composition across developmental stages. A particularly noteworthy discovery was the prevalence of the genus Acinetobacter, which may significantly influence health and disease resistance. The metabolomic profiling discerned 4479 metabolites, each exhibiting pronounced stage-specific metabolic signatures, particularly within lipid, amino acid, and energy metabolism pathways. The correlation analysis between microbiota and metabolites highlighted the substantial impact of specific genera, such as Acinetobacter and Gaeumannomyces, on the metabolic milieu. This study provides a comprehensive overview of the dynamic shifts in the gut microbiota and metabolome of L. japonicus, highlighting stage-specific transitions that could be pivotal for refining aquaculture practices. The findings underscore the complex interdependence between microbiota composition and metabolic function, providing valuable insights into the modulation of fish health and growth.
期刊介绍:
Comparative Biochemistry & Physiology (CBP) publishes papers in comparative, environmental and evolutionary physiology.
Part D: Genomics and Proteomics (CBPD), focuses on “omics” approaches to physiology, including comparative and functional genomics, metagenomics, transcriptomics, proteomics, metabolomics, and lipidomics. Most studies employ “omics” and/or system biology to test specific hypotheses about molecular and biochemical mechanisms underlying physiological responses to the environment. We encourage papers that address fundamental questions in comparative physiology and biochemistry rather than studies with a focus that is purely technical, methodological or descriptive in nature.