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December 12, 2025Microorganisms2 citationsOpen Access

Gut Microbiome and Metabolome Signatures Associated with Heat Tolerance in Dairy Cows

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MLMingxun LiPCPeng ChenCLCan Liu

Key Points

  • This research investigates the relationship between gut microbiome, metabolome, and heat tolerance in dairy cows.
  • Utilized metagenomic sequencing and untargeted metabolomics in dairy cows.
  • Selected 12 holstein cows categorized as heat-tolerant and heat-sensitive from a herd of 120 individuals.
  • Analyzed microbial composition and metabolite profiles for differences between groups.
  • Identified specific microbial genera linked to energy and lipid metabolism in heat-tolerant cows.
  • A total of 135 metabolites showed differential abundance between heat-tolerant and heat-sensitive groups.
  • Highlighted biomarkers like glycerol 2-phosphate that contribute to redox regulation and metabolic adaptation.

Abstract

Heat stress significantly impairs dairy cow health and productivity, highlighting the need to understand the gut microbiome–metabolite interactions that contribute to heat tolerance. Here, we integrated metagenomic sequencing and untargeted metabolomics in twelve holstein cows selected from a previously phenotyped herd of 120 individuals, including six heat-tolerant (HT) and six heat-sensitive (HS) cows identified using entropy-weighted TOPSIS scoring. HT cows were enriched in genera such as Faecalimonas and UBA737, which were functionally linked to pathways of energy and lipid metabolism, whereas, HS cows harbored taxa associated with bacterial lipopolysaccharide and glycosphingolipid biosynthesis. A total of 135 metabolites were differentially abundant between groups. Among them, glycerol 2-phosphate and 24(28)-dehydroergosterol showed perfect classification performance (AUC = 1.000), and were mainly involved in membrane lipid remodeling and redox regulation. Integrated analysis revealed coordinated microbial–metabolite networks, exemplified by the Faecalimonas–LysoPS (16:0/0:0) and UBA737–Glycerol 2-phosphate axes, suggesting functional coupling between microbial composition and metabolic adaptation. Together, these findings demonstrate that HT cows harbor gut microbiota and metabolites favoring energy balance, membrane remodeling, and oxidative stress resilience, while HS cows display stress-related metabolic patterns. This study elucidates the microbial–metabolic mechanisms underlying thermal resilience and highlights potential biomarkers and metabolic pathways that could be applied in heat-tolerance breeding and precision management of dairy cattle.

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Cite This Study

Li et al. (2025) studied this question.

synapsesocial.com/papers/694019032d562116f28f60bahttps://doi.org/10.3390/microorganisms13122829
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