ArticleJournal of animal science and biotechnology2025
Reducing crude protein content in the diet of lactating dairy cows improved nitrogen-use-efficiency and reduced N excretion in urine, whilst having no obvious effects on the rumen microbiome.
Article in Journal of animal science and biotechnology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 12 papers.
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Who cites it
12 citing papers in PubMed.
- Blood-based biomarkers of protein digestibility, utilization, and nitrogen excretion in animals: Concepts, evidence, and applications.Veterinary and animal science · 2026Review
- Effects of Precision Dietary Protein Reduction on Lactational Performance, Milk Fatty Acid Profile, and Antioxidant Status in Mid-Lactation Dairy Cows.Animals : an open access journal from MDPI · 2026Article
- Effects of Fermented Palm Kernel Meal on Lactation Performance, Rumen Fermentation, Rumen Microbiota, and Rumen Metabolomic Profiles in Holstein Dairy Cows.Veterinary sciences · 2026Article
- Effects of complex enzyme preparation supplementation in a low-protein amino acid-balanced diet on production performance, serum biochemistry, nitrogen metabolism and nitrogen balance of mid-lactation dairy cows.Animal bioscience · 2026Article
- A Residual-Based Mathematical Approach to Evaluate Production-Adjusted Nitrogen Use Efficiency and Metabolic Responses in Dairy Cows.Veterinary sciences · 2026Article
- Infrared Thermography and Machine Learning for Mastitis Detection in Dairy Cows: A Pilot Case Study in Egyptian Farms.Veterinary sciences · 2026Article
- Nutritional Strategies for Methane, Nitrogen, and Phosphorus Mitigation in Ruminants: Mechanisms, Applications, and Regional Adaptations.Microorganisms · 2026Review
- Amino acid balancing and microalgal proteins (Spirulina) improve production performance and milk quality in dairy cows under low-protein diets.NPJ science of food · 2026Article
- Reducing Protein Content with and Without Yeast Probiotic Actisaf Sc 47 Supplementation in the Diet of Dairy Cow: Effects on Nitrogen Use, Digestibility, and Rumen Microbial Protein.Animals : an open access journal from MDPI · 2026Article
- Revisiting starch degradability in dairy ruminants: from feed processing to gut microbiota and metabolic regulation.Journal of animal science and biotechnology · 2026Review
- Current advances and challenges in microbiome-based mitigation of volatile organic compounds from livestock waste systems.Frontiers in cellular and infection microbiology · 2026Review
- Effects of dietary rumen-degradable protein on growth performance, nitrogen metabolism, and rumen microbiome in dairy buffalo heifers.Frontiers in veterinary science · 2026Article
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Authors and funding
7 authors.
Funding
Abstract
backgroundNitrogen-Use-Efficiency (NUE) in lactating dairy cows, defined as milk nitrogen (N) output as a proportion of N consumed, is low, with the majority of excess N excreted in manure. Excreted N can be lost to the environment as ammonia gas leading to environmental acidification and nutrient enrichment of sensitive habitats, and to watercourses contributing to aquatic eutrophication. While there is much evidence that NUE can be improved by reducing the crude protein (CP) content of dairy cow diets, the long-term impacts of feeding lower protein diets on cow performance and the rumen microbiome are less well understood. This study examined the effects of reducing the CP contents of dairy cow diets on cow performance, NUE, the relationship between NUE and residual feed intake (RFI), and the rumen microbiome.
resultsDietary CP content did not affect feed intake, milk yield or milk composition (P > 0.05), except for milk urea N (MUN), which increased with increasing diet CP content (P < 0.05). The mean NUE was 34%, 34% and 31% for the LCP (low-protein, 15%), MCP (medium-protein, 16%), and HCP (high-protein, 17%) diets, respectively. RFI was negatively correlated with NUE (r = -0.57, P < 0.001). The rumen ammonia-N concentrations increased with increasing dietary CP; however, the ruminal pH and volatile fatty acid (VFA) content of the rumen fluid remained constant. Predicted urinary N excretion was greater in the HCP and MCP diets than in the LCP diet. Reducing dietary CP content in dairy cow diets did not affect microbial composition, diversity and functional profiles. The family Bacteroidaceae was more abundant in HE (high-efficiency) cows, whereas the Methanobacteriaceae and the genus Methanobrevibacter were more abundant in LE (low-efficiency) cows. Additionally, propanoate metabolism, cysteine and methionine metabolism and amino acid biosynthesis pathways were more abundant in HE cows, whilst the methane (CH
conclusionsThe results demonstrate that diet CP can be reduced with no loss in cow performance, but with an associated reduction in N excretion. The abundance of microbial populations differed between low and high efficiency cows, which may contribute to the differences in efficiency observed.
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