Integrated metagenomics and metabolomics analyses revealed biomarkers in β-casein A2A2-type cows

In Holstein cows, β-casein, one of the most critical proteins in milk, exists in two main genotypes, A1 and A2. Herein, 45 Holstein cows [categorized into three groups based on β-casein A1A1, A1A2, and A2A2 genotypes (N = 15)] with the same feeding management and litter size were enrolled to explore...

وصف كامل

التفاصيل البيبلوغرافية
المؤلفون الرئيسيون: Jinyan Zhao, Chuanchuan Wang, Jiahuan Hu, Ruoshuang Ma, Baojun Yu, Wei Zhao, Hua Wang, Yaling Gu, Juan Zhang
التنسيق: مقال
اللغة:English
منشور في: Frontiers Media S.A. 2024-10-01
سلاسل:Frontiers in Veterinary Science
الموضوعات:
الوصول للمادة أونلاين:https://www.frontiersin.org/articles/10.3389/fvets.2024.1438717/full
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author Jinyan Zhao
Jinyan Zhao
Chuanchuan Wang
Chuanchuan Wang
Jiahuan Hu
Jiahuan Hu
Ruoshuang Ma
Ruoshuang Ma
Baojun Yu
Baojun Yu
Wei Zhao
Wei Zhao
Hua Wang
Hua Wang
Yaling Gu
Yaling Gu
Juan Zhang
Juan Zhang
author_facet Jinyan Zhao
Jinyan Zhao
Chuanchuan Wang
Chuanchuan Wang
Jiahuan Hu
Jiahuan Hu
Ruoshuang Ma
Ruoshuang Ma
Baojun Yu
Baojun Yu
Wei Zhao
Wei Zhao
Hua Wang
Hua Wang
Yaling Gu
Yaling Gu
Juan Zhang
Juan Zhang
author_sort Jinyan Zhao
collection DOAJ
description In Holstein cows, β-casein, one of the most critical proteins in milk, exists in two main genotypes, A1 and A2. Herein, 45 Holstein cows [categorized into three groups based on β-casein A1A1, A1A2, and A2A2 genotypes (N = 15)] with the same feeding management and litter size were enrolled to explore differences in rumen microflora and metabolites across various β-casein genotypes. Rumen fluids were collected for metagenomics and metabolomics analyses. Metabolomics and weighted gene co-expression network analysis (WGCNA) revealed that arachidonic acid (AA), adrenic acid (AdA), glycocholic acid (GCA), and taurocholic acid (TCA) were significantly and positively correlated with milk fat % in dairy cows (p < 0.05). Furthermore, macro-genomics and Spearman’s correlation analysis revealed significant positive correlations (p < 0.05) between the characteristic flora (g_Acetobacter, g_Pseudoxanthomonas, g_Streptococcus, and g_Pediococcus) and the five characteristic metabolites in the rumen of A2A2 dairy cows. Moreover, functional enrichment analysis revealed more genes enriched to the TRP channel’s inflammatory mediator-regulated pathway and the mTOR signaling pathway in A2A2 genotyped cows. Additionally, the regulatory effects of AA on bovine mammary epithelial cells (BMECs) were examined using CCK-8, EdU, and qRT-PCR assays, revealing that AA promoted triglyceride (TG) synthesis and upregulated the milk fat marker genes including SREBF1, ACSS2, AGPAT6, and FASN. Overall, we identified characteristic microorganisms and metabolites in A2A2 Holstein cows and established that AA could be a biomarker for higher milk fat %.
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spelling doaj.art-f17f433bcc4b4b51be7e5ad8e7ab89b62024-11-15T14:05:17ZengFrontiers Media S.A.Frontiers in Veterinary Science2297-17692024-10-011110.3389/fvets.2024.14387171438717Integrated metagenomics and metabolomics analyses revealed biomarkers in β-casein A2A2-type cowsJinyan Zhao0Jinyan Zhao1Chuanchuan Wang2Chuanchuan Wang3Jiahuan Hu4Jiahuan Hu5Ruoshuang Ma6Ruoshuang Ma7Baojun Yu8Baojun Yu9Wei Zhao10Wei Zhao11Hua Wang12Hua Wang13Yaling Gu14Yaling Gu15Juan Zhang16Juan Zhang17Key Laboratory of Molecular Cell Breeding for Ruminants, Yinchuan, ChinaNingxia University College of Animal Science and Technology, Yinchuan, ChinaKey Laboratory of Molecular Cell Breeding for Ruminants, Yinchuan, ChinaNingxia University College of Animal Science and Technology, Yinchuan, ChinaKey Laboratory of Molecular Cell Breeding for Ruminants, Yinchuan, ChinaNingxia University College of Animal Science and Technology, Yinchuan, ChinaKey Laboratory of Molecular Cell Breeding for Ruminants, Yinchuan, ChinaNingxia University College of Animal Science and Technology, Yinchuan, ChinaKey Laboratory of Molecular Cell Breeding for Ruminants, Yinchuan, ChinaNingxia University College of Animal Science and Technology, Yinchuan, ChinaKey Laboratory of Molecular Cell Breeding for Ruminants, Yinchuan, ChinaNingxia University College of Animal Science and Technology, Yinchuan, ChinaKey Laboratory of Molecular Cell Breeding for Ruminants, Yinchuan, ChinaNingxia University College of Animal Science and Technology, Yinchuan, ChinaKey Laboratory of Molecular Cell Breeding for Ruminants, Yinchuan, ChinaNingxia University College of Animal Science and Technology, Yinchuan, ChinaKey Laboratory of Molecular Cell Breeding for Ruminants, Yinchuan, ChinaNingxia University College of Animal Science and Technology, Yinchuan, ChinaIn Holstein cows, β-casein, one of the most critical proteins in milk, exists in two main genotypes, A1 and A2. Herein, 45 Holstein cows [categorized into three groups based on β-casein A1A1, A1A2, and A2A2 genotypes (N = 15)] with the same feeding management and litter size were enrolled to explore differences in rumen microflora and metabolites across various β-casein genotypes. Rumen fluids were collected for metagenomics and metabolomics analyses. Metabolomics and weighted gene co-expression network analysis (WGCNA) revealed that arachidonic acid (AA), adrenic acid (AdA), glycocholic acid (GCA), and taurocholic acid (TCA) were significantly and positively correlated with milk fat % in dairy cows (p < 0.05). Furthermore, macro-genomics and Spearman’s correlation analysis revealed significant positive correlations (p < 0.05) between the characteristic flora (g_Acetobacter, g_Pseudoxanthomonas, g_Streptococcus, and g_Pediococcus) and the five characteristic metabolites in the rumen of A2A2 dairy cows. Moreover, functional enrichment analysis revealed more genes enriched to the TRP channel’s inflammatory mediator-regulated pathway and the mTOR signaling pathway in A2A2 genotyped cows. Additionally, the regulatory effects of AA on bovine mammary epithelial cells (BMECs) were examined using CCK-8, EdU, and qRT-PCR assays, revealing that AA promoted triglyceride (TG) synthesis and upregulated the milk fat marker genes including SREBF1, ACSS2, AGPAT6, and FASN. Overall, we identified characteristic microorganisms and metabolites in A2A2 Holstein cows and established that AA could be a biomarker for higher milk fat %.https://www.frontiersin.org/articles/10.3389/fvets.2024.1438717/fullHolstein dairy cowsbeta-caseinA2A2milk fat percentagemetabolomicsmetagenomics
spellingShingle Jinyan Zhao
Jinyan Zhao
Chuanchuan Wang
Chuanchuan Wang
Jiahuan Hu
Jiahuan Hu
Ruoshuang Ma
Ruoshuang Ma
Baojun Yu
Baojun Yu
Wei Zhao
Wei Zhao
Hua Wang
Hua Wang
Yaling Gu
Yaling Gu
Juan Zhang
Juan Zhang
Integrated metagenomics and metabolomics analyses revealed biomarkers in β-casein A2A2-type cows
Frontiers in Veterinary Science
Holstein dairy cows
beta-casein
A2A2
milk fat percentage
metabolomics
metagenomics
title Integrated metagenomics and metabolomics analyses revealed biomarkers in β-casein A2A2-type cows
title_full Integrated metagenomics and metabolomics analyses revealed biomarkers in β-casein A2A2-type cows
title_fullStr Integrated metagenomics and metabolomics analyses revealed biomarkers in β-casein A2A2-type cows
title_full_unstemmed Integrated metagenomics and metabolomics analyses revealed biomarkers in β-casein A2A2-type cows
title_short Integrated metagenomics and metabolomics analyses revealed biomarkers in β-casein A2A2-type cows
title_sort integrated metagenomics and metabolomics analyses revealed biomarkers in β casein a2a2 type cows
topic Holstein dairy cows
beta-casein
A2A2
milk fat percentage
metabolomics
metagenomics
url https://www.frontiersin.org/articles/10.3389/fvets.2024.1438717/full
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