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Search Results (1,404)

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Keywords = milk fatty acid

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26 pages, 5429 KB  
Review
Mechanisms of Moringa oleifera Leaf Extract Influences Productive Performance, Immunity, Milk Composition, and Rumen Microbiota in Ruminants: A Review
by Mudathir Y. Abdulrahman, Nasir A. Ibrahim, Mohamed Osman Abdalrahem Essa, Saber Y. Adam, Raza Mohai Ud Din, Abdelkareem A. Ahmed, Rifat Ullah Jan, Hamdi Bendif, Nosiba S. Basher, Ahmed A. Saleh, Hosameldeen Mohamed Husien and Mengzhi Wang
Vet. Sci. 2026, 13(8), 821; https://doi.org/10.3390/vetsci13080821 - 18 Aug 2026
Abstract
Moringa oleifera leaf extract (MOLE), including polysaccharides, polyphenols, amino acids and other extracts, are increasingly being used as feed additives in ruminant nutrition due to their high profiles of bioactive compounds. This comprehensive narrative review aims to review current research on their use [...] Read more.
Moringa oleifera leaf extract (MOLE), including polysaccharides, polyphenols, amino acids and other extracts, are increasingly being used as feed additives in ruminant nutrition due to their high profiles of bioactive compounds. This comprehensive narrative review aims to review current research on their use in ruminant production regarding their productive performance, immune status, rumen microbiota and fermentation. Dietary supplementation with MOLE enhances growth rates and feed conversion efficiency, as well as immune status, milk yield and rumen microbiology, in ruminants by improving nutrient digestibility and metabolic efficiency. Additionally, MOLE exerts significant immunomodulatory effects, and studies indicate that immunoglobulins, antioxidants, cytokines, and enzymes reduce oxidative stress markers and incidence of subclinical diseases in dairy animals. Furthermore, supplementation with MOLE often increases milk fat and protein content while reducing somatic cell counts (SCCs) in milk. MOLE enhance the function of the rumen fermentation profile by increasing volatile fatty acid (VFA) production, especially propionate, and also regulating the stability of rumen pH. Additionally, it also selectively promotes microbial community diversity, enhances the population of cellulolytic bacteria and has a suppression function in protozoa and methanogens. Moreover, MOLE also contributes to improving fiber degradation and reducing the emissions of methane. In conclusion, MOLE is considered as a viable natural strategy to promote productivity, immune function, health, and environmental sustainability while decreasing methane production in ruminant production. Full article
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18 pages, 12982 KB  
Article
Mechanistic Insights into Milk Minerals Driving Bone Development and Mineralization in Growing Rats
by Yile Peng, Yalin Zhou, Simon Bøge Riis, Jing Yin, Muke Han, Zhang Wen, Wanyun Ye, Xudong Liu, Weiwei Shi, Xuezeng Wang, Jiahui Luo and Yajun Xu
Nutrients 2026, 18(15), 2569; https://doi.org/10.3390/nu18152569 - 6 Aug 2026
Viewed by 240
Abstract
Objective: To investigate the effect of milk minerals on bone mineral density (BMD) and bone quality in growing rats and explore the underlying mechanisms related to calcium absorption, bone metabolism, and the gut–bone axis. Methods: Sixty healthy 4-week-old male Sprague-Dawley (SD) rats were [...] Read more.
Objective: To investigate the effect of milk minerals on bone mineral density (BMD) and bone quality in growing rats and explore the underlying mechanisms related to calcium absorption, bone metabolism, and the gut–bone axis. Methods: Sixty healthy 4-week-old male Sprague-Dawley (SD) rats were randomly divided to five groups based on their body weight: Low-Calcium Control Group (Control), Low-Dose milk mineral Group (Low), Medium-Dose milk mineral Group (Medium), High-Dose milk mineral Group (High) and Calcium Carbonate Control Group (CaCO3), which received the same dose level (elemental calcium) as the High group. The milk mineral dosage was set at 5, 10, and 15 times the human recommended intake of elemental calcium. After 12 weeks of intervention, femurs were collected for analysis of BMD, bone microstructure, and bone mechanical strength. Additionally, analyses included calcium levels in the femur, feces, and diet; serum bone metabolism biomarkers; tissue protein expression; as well as gut microbiota composition and short-chain fatty acid content. Result: Milk mineral exhibited non-inferior efficacy to CaCO3 in increasing femoral calcium content, enhancing BMD, and improving bone microarchitecture. Notably, the Medium group achieved comparable bone-protective effects to the CaCO3 group despite a 20.8% lower calcium content, which was accompanied by a relatively high calcium absorption rate (90.9% vs. 86.5%). With respect to serum markers, milk mineral maintained bone formation while suppressing bone resorption, resulting in a net anabolic state comparable to that of CaCO3. Milk mineral significantly upregulated the protein expression of renal CYP27B1 and intestinal calcium ion transporters, and increased serum IGF-I levels. Furthermore, milk mineral promoted the enrichment of certain specific gut microbial genera, which showed a significant positive correlation with IGF-I, bone calcium content and BMD. Conclusions: Milk mineral supplementation appears to promote bone formation and mineralization in growing rats, accompanied by enhanced intestinal calcium absorption, enrichment of characteristic gut microbes and elevated microbial metabolite concentrations. Full article
(This article belongs to the Section Micronutrients and Human Health)
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14 pages, 257 KB  
Article
Effects of Precision Dietary Protein Reduction on Lactational Performance, Milk Fatty Acid Profile, and Antioxidant Status in Mid-Lactation Dairy Cows
by Tanakorn Damrongthai, Supreena Srisaikham, Chao Ban and Pipat Lounglawan
Animals 2026, 16(15), 2431; https://doi.org/10.3390/ani16152431 - 6 Aug 2026
Viewed by 216
Abstract
This study evaluated the effects of precision dietary crude protein (CP) reduction through corn dust substitution for soybean meal on lactational performance, milk fatty acid composition, and antioxidant status in mid-lactation dairy cows. Six Holstein Friesian cows were assigned to a replicated 3 [...] Read more.
This study evaluated the effects of precision dietary crude protein (CP) reduction through corn dust substitution for soybean meal on lactational performance, milk fatty acid composition, and antioxidant status in mid-lactation dairy cows. Six Holstein Friesian cows were assigned to a replicated 3 × 3 Latin square design with three 28-day periods and fed total mixed rations containing 17.40% (TMR17), 16.29% (TMR16), or 15.18% CP (TMR15). Forage was maintained at 40% of dietary dry matter. Dry matter intake and plasma metabolites were unaffected by dietary treatment (p > 0.05). However, apparent digestibility of dry matter, organic matter, and crude protein declined significantly (p < 0.05), while acid detergent fiber digestibility showed a linear downward tendency (p = 0.06). Actual milk yield, lactose yield, and solids-not-fat (SNF) yield were unaffected by treatments (p > 0.05), but milk protein percentage decreased linearly (p = 0.01) as dietary CP declined. Body weight change also tended to decline (p = 0.09), suggestive of possible increased body reserve mobilization, although this was not confirmed with body condition score or direct metabolic indicators. Milk urea nitrogen decreased linearly (p = 0.05), which suggested improved nitrogen utilization. Plasma superoxide dismutase (SOD) activity, GSH-Px activity, and total antioxidant capacity were not significantly modified (p > 0.05); however, plasma DPPH radical scavenging capacity increased linearly with higher protein levels (p = 0.01; Trt: p = 0.02). Conversely, TMR15 improved milk lipid quality by significantly increasing monounsaturated fatty acids (p = 0.03; Trt: p = 0.05), particularly oleic acid (p = 0.05), whereas total saturated fatty acids remained unchanged (p = 0.55). Overall, reducing dietary CP improved MUFA proportions and nitrogen efficiency but decreased milk protein percentage and plasma DPPH antioxidant protection, highlighting a trade-off between production performance, animal health, and milk quality. Full article
18 pages, 3078 KB  
Review
A Review of Rumen Biohydrogenation and Efficient, Green Production of High-Quality Ruminant Products: Mechanisms, Opportunities and Challenges
by Zixin Guan, Zhiyuan Ma, Fei Li, Xiumin Zhang, Li Wang, Huimin Li, Wei Zhang and Hui Xu
Animals 2026, 16(15), 2424; https://doi.org/10.3390/ani16152424 - 5 Aug 2026
Viewed by 233
Abstract
Rumen biohydrogenation is a microbial process that converts dietary unsaturated fatty acids into more saturated products and produces a range of intermediates that can affect animal products and rumen fermentation. This review summarizes current knowledge on the main biohydrogenation pathways, the microbial groups [...] Read more.
Rumen biohydrogenation is a microbial process that converts dietary unsaturated fatty acids into more saturated products and produces a range of intermediates that can affect animal products and rumen fermentation. This review summarizes current knowledge on the main biohydrogenation pathways, the microbial groups involved, and the nutritional and breeding strategies used to regulate this process. Particular attention is given to the transformation of C18 fatty acids, the formation of vaccenic acid and conjugated linoleic acid, the trans-10 shift, and the links between lipid metabolism, hydrogen use, and methane formation. Evidence indicates that diet composition, lipid source, plant secondary metabolites, rumen-protected fat technologies, microbial interventions, and host-related factors can all influence biohydrogenation outcomes. These strategies can improve the fatty acid profile of meat and milk, but their effects are context-dependent and vary with animal species, diet, and rumen microbial structure. Important gaps remain, including the identification of active microbial populations, the functions of many transient intermediates, and the extent to which changes in biohydrogenation directly contribute to methane mitigation. Clarifying these mechanisms is essential for improving the nutritional quality of ruminant products and the sustainability of production systems. Full article
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53 pages, 3248 KB  
Systematic Review
Transformation of Agro-Industrial By-Products into High-Value Animal-Derived Foods: Bioactive Compounds, Microbiome-Mediated Biotransformation, Metabolomic Traceability and Circular Valorization
by Lucrezia Forte, Eric N. Ponnampalam, Pasquale De Palo, Edyta Kowalczuk-Vasilev, John Quiñones, Abdelfattah Z. M. Salem and Aristide Maggiolino
Molecules 2026, 31(15), 2710; https://doi.org/10.3390/molecules31152710 - 4 Aug 2026
Viewed by 372
Abstract
Agro-industrial by-products are increasingly considered as feed resources for circular animal production, but their value should not be interpreted only as a low-cost replacement of conventional ingredients. This scoping review critically examines how by-products from grape, olive, tomato, citrus, cereal, brewery, oilseed and [...] Read more.
Agro-industrial by-products are increasingly considered as feed resources for circular animal production, but their value should not be interpreted only as a low-cost replacement of conventional ingredients. This scoping review critically examines how by-products from grape, olive, tomato, citrus, cereal, brewery, oilseed and vegetable processing chains may contribute to the development of high-value animal-derived foods. Particular attention is given to bioactive compounds, polyphenols, carotenoids, tocopherols, fermentable fibres and residual lipids, as well as to microbiome-mediated biotransformation, host metabolic pathways, compound transfer, product-quality modulation, feed safety and circular valorization. Available evidence indicates that selected by-products can influence milk, cheese, meat, eggs and fish products by modifying fatty acid profile, oxidative stability, antioxidant-related traits, pigmentation, volatile compounds, shelf-life and, in some cases, the transfer of specific metabolites to edible products. However, these responses depend on by-product source, processing method, inclusion level, active dose, animal species, basal diet and analytical endpoints. Chemical richness alone is therefore insufficient to support functional claims. Stronger evidence requires studies that connect matrix characterization, processing stability, microbial and host-mediated transformation, biological intermediates and final product quality within the same experimental design. Precision circular feeding should therefore combine local availability, safety, active-dose definition, metabolomic and lipidomic traceability, and product-level validation to support reproducible improvements in high-value animal-derived foods. Full article
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28 pages, 5211 KB  
Article
Effects of Fermented Palm Kernel Meal on Lactation Performance, Rumen Fermentation, Rumen Microbiota, and Rumen Metabolomic Profiles in Holstein Dairy Cows
by Xianglong Zhang, Xitong Guan, Jiahui Cao, Yuxuan Yan, Yueyang Zhao, Hongxiang Mao, Lizhou Ma, Lingling Huang, Xiangfang Tang, Shunjin Jiang and Yang Li
Vet. Sci. 2026, 13(8), 777; https://doi.org/10.3390/vetsci13080777 - 3 Aug 2026
Viewed by 198
Abstract
This study evaluated the impact of fermented palm kernel meal (FPKM) on the lactation performance, blood biochemical indices, rumen microbiota, and metabolic functions of Holstein dairy cows, aiming to enhance the nutritional value of palm kernel meal (PKM) through solid-state fermentation. A 3 [...] Read more.
This study evaluated the impact of fermented palm kernel meal (FPKM) on the lactation performance, blood biochemical indices, rumen microbiota, and metabolic functions of Holstein dairy cows, aiming to enhance the nutritional value of palm kernel meal (PKM) through solid-state fermentation. A 3 × 3 Latin square design was used, involving 12 multiparous Holstein cows (parity = 3; body weight = 625 ± 25.8 kg; days in milk = 103 ± 19.6 day(s); milk yield = 32.6 ± 1.58 kg/d) over three 28-day periods. Cows were randomly assigned to three isocaloric and isonitrogenous diets: a basal diet with wheat bran (WB group), a diet with wheat bran replaced by PKM (PKM group), and a diet with wheat bran replaced by FPKM (FPKM group). Solid-state fermentation improved PKM’s nutritional profile by reducing fiber and β-mannan content while increasing protein availability and ruminal degradability. Compared to the WB group, the PKM group showed lower dry matter intake, milk yield, and nutrient digestibility. In contrast, the FPKM group had higher DMI and milk yield than the PKM group, improved nutrient digestibility, and the highest energy-corrected milk yield due to increased milk protein and lactose production. The FPKM group also had higher concentrations of total volatile fatty acids, propionate, acetate, and microbial protein synthesis than the PKM group. Pro-inflammatory cytokines (tumor necrosis factor-α, interleukin-8) were elevated in the PKM group but were reduced to levels similar to the WB group in the FPKM group. Plasma immunoglobulin G levels were higher in both the FPKM and WB groups compared to the PKM group. The FPKM group also showed increased relative abundances of Prevotella, Fibrobacterota, and Verrucomicrobiota, while Bacillota and Ruminococcus were reduced compared to the WB group. Metabolomic profiling revealed that FPKM upregulated energy metabolism and inflammation-related pathways, increasing metabolites such as riboflavin and adenine and decreasing succinic acid and guanine compared to the PKM group. In conclusion, FPKM improved the feeding value of PKM-based material and showed more favorable responses than PKM, with generally comparable responses to WB, supporting its potential as an alternative feed ingredient for lactating dairy cows. Full article
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34 pages, 15728 KB  
Article
Dietary Astragalus and Fermented Astragalus in Postpartum Turpan Black Ewes: Impacts on Maternal Health, Rumen Microbiota, Lactation, and Lamb Development
by Hao Lu, Hui Chen, Tingting Li, Tingting Lu, Reyim Reyilaguli, Haibo Lv, Xihu Wang, Jianjun Zhang, Shijie Li, Xiaojun Liu, Jinping Ma, Rui Xiao and Guodong Zhao
Microorganisms 2026, 14(8), 1701; https://doi.org/10.3390/microorganisms14081701 - 3 Aug 2026
Viewed by 259
Abstract
Raw and fermented Astragalus membranaceus (AM) serve promising herbal additives for small ruminants, yet their integrated regulatory functions across lactating ewes and suckling lambs are insufficiently characterized. This study aimed to elucidate how dietary supplementation with raw and fermented Astragalus membranaceus modulates ruminal [...] Read more.
Raw and fermented Astragalus membranaceus (AM) serve promising herbal additives for small ruminants, yet their integrated regulatory functions across lactating ewes and suckling lambs are insufficiently characterized. This study aimed to elucidate how dietary supplementation with raw and fermented Astragalus membranaceus modulates ruminal microbial communities, circulating metabolites, redox homeostasis, and lactation performance in postpartum Turpan black ewes, and to characterize the consequent effects on immune development and body weight gain in their offspring. The findings are intended to inform evidence-based strategies for herbal supplementation in sheep production. Forty-five postpartum Turpan black ewes were randomly allocated to three groups (n = 15): control (basal diet), AM and FAM groups. Ewe plasma, rumen fluid, milk yield, milk composition and serum antioxidant indices were sampled periodically. Lamb body weight, plasma antioxidants, immunoglobulins, growth hormone (GH) and insulin-like growth factor-1 (IGF-1) were measured every 15 days. Rumen 16S rRNA sequencing and untargeted plasma metabolomics were performed on day 45 post-partum. The group of FAM significantly increased milk yield (p < 0.05) and markedly improved total antioxidant capacity in ewes (p < 0.01). In the AM group, metabolites such as linoleic acid were significantly downregulated (p < 0.05), with enrichment in the linoleic acid metabolism pathway, while flavonoid metabolites, including quercetin 4′-isobutyrate, were strongly upregulated (p < 0.01). In the FAM group, tetradecanoic acid, palmitoleic acid, and related metabolites were significantly reduced (p < 0.05), and these differential metabolites showed significant enrichment in fatty acid biosynthesis (p < 0.05). Flavonoid compounds represented by melilotocarpan E were also significantly upregulated (p < 0.05). Rumen microbial diversity was significantly higher in the FAM group (p < 0.05). At the genus level, the FAM group showed enrichment of fiber-degrading bacteria, including Rikenellaceae_RC9_gut_group, unclassified_Muribaculaceae, and unclassified_F082. In newborn lambs, plasma GH and IGF-1 levels increased markedly in both the FAM and AM groups (p < 0.01). In the FAM group, immunoglobulin A (IgA) and immunoglobulin G (IgG) concentrations were also markedly elevated (p < 0.01). In addition, lambs in the FAM group exhibited substantially higher plasma catalase (CAT) activity and nitric oxide (NO) concentration (p < 0.01), whereas plasma total antioxidant capacity was significantly lower (p < 0.01). In conclusion, AM and FAM supplementation increased the relative abundance of Bacteroidetes, regulated fatty acid synthesis through modulation of plasma metabolites, enhanced antioxidant capacity in ewes, increased milk fat percentage, and improved immune function, antioxidant status, and growth performance in lambs. To provide a theoretical basis and data support for its application in ewes after lambing and for improving the growth and development of lambs. Overall, FAM produced superior effect. Full article
(This article belongs to the Special Issue Effects of Diet and Nutrition on Gut Microbiota)
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22 pages, 2272 KB  
Article
Evaluating Carbon-Negative Spirulina Feed Supplementation as a Supply Chain Carbon Removal Strategy for More Sustainable Dairy Systems
by Asger Smidt-Jensen, Mustafa Asfur, Tomer Cohen, Asaf Tzachor and William R. Moomaw
Sustainability 2026, 18(15), 7838; https://doi.org/10.3390/su18157838 - 3 Aug 2026
Viewed by 244
Abstract
Reducing the greenhouse gas (GHG) intensity of dairy production remains challenging because enteric methane and upstream supply chain emissions persist despite existing mitigation strategies. This study evaluated a supply chain decarbonization approach in which Spirulina (Arthospira platensis) produced through a carbon-removal [...] Read more.
Reducing the greenhouse gas (GHG) intensity of dairy production remains challenging because enteric methane and upstream supply chain emissions persist despite existing mitigation strategies. This study evaluated a supply chain decarbonization approach in which Spirulina (Arthospira platensis) produced through a carbon-removal supply chain (GeoSpirulina) was incorporated into dairy rations to enable net supply chain carbon removal within cradle-to-farm-gate boundaries. A carbon-focused life cycle assessment (LCA) was combined with a commercial-scale feeding trial to determine an appropriate inclusion rate and assess production outcomes. The LCA integrated primary activity and production data from the commercial dairy farm with previously published GeoSpirulina production and soil organic carbon sequestration data derived from primary Icelandic production and field studies, supplemented by secondary background datasets and published dairy emission estimates. GeoSpirulina was produced using geothermal energy and coupled with soil organic carbon sequestration associated with the application of residual biomass as a soil biostimulant, resulting in a modeled net-negative production footprint. Under the defined LCA assumptions, supplementation with 2 g cow−1 day−1 of GeoSpirulina reduced the modeled milk GHG intensity from approximately 1.9 to 0.06 kg CO2e kg−1 at the farm gate. Scenario analysis identified active vitamin B12 concentration as a key driver of the modeled carbon balance. Milk yield and group-level feed efficiency were unaffected, whereas butterfat (+4.7%, p = 0.002), fatty acids (+4.4%, p = 0.011), and somatic cell count (−71%, p = 0.007) improved without detectable adverse effects. These findings suggest that carbon-negative feed ingredients may provide a complementary sustainability strategy for dairy production by embedding measurable carbon removal within agricultural supply chains while maintaining production performance. Although this approach counterbalances rather than eliminates biological emissions, it may contribute to broader dairy decarbonization and sustainable food-production strategies alongside direct greenhouse gas mitigation interventions. Full article
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18 pages, 4354 KB  
Article
Insight into the Effects of In Vitro-Digested Donkey and Sheep Milk on Differentiated Human Intestinal Caco-2 Cells
by Milan Bogdanović, Dušan Stevanović, Ksenija Čobanović, Sara Panseri, Maria Nobile, Radoslava Savić Radovanović, Nataša Golić and Nikola Popović
Dairy 2026, 7(4), 59; https://doi.org/10.3390/dairy7040059 - 2 Aug 2026
Viewed by 286
Abstract
The chemical composition of donkey and sheep milk showed significant differences, with donkey milk containing less fat and protein and a higher level of lactose, while sheep milk had more dry matter and a higher proportion of casein and saturated, unsaturated, monounsaturated, and [...] Read more.
The chemical composition of donkey and sheep milk showed significant differences, with donkey milk containing less fat and protein and a higher level of lactose, while sheep milk had more dry matter and a higher proportion of casein and saturated, unsaturated, monounsaturated, and polyunsaturated fatty acids. This study investigated the biological effects of in vitro-digested donkey and sheep milk, and their blends at different ratios, on differentiated human intestinal Caco-2 cells. Gene expression analysis showed that treatment with digested donkey milk (100%) significantly altered the expression of the autophagy-related gene (SQSTM1), tight junction (CLDN4), and innate defense genes (DEFB1, MUC2, and MUC5), showing a non-cytotoxic response and a profile consistent with a barrier-related transcriptional response. In contrast, sheep milk (100%) and certain milk blends (70% and 50% sheep’s milk) down-regulated genes involved in the autophagy process (ULK1, AMBRA, BECN1, ATG5, GABARAP, and SQSTM1), tight junction genes (OCLN and CDH1), and innate defense genes (DEFB1 and MUC2), suggesting a distinct epithelial response that warrants further confirmation. Metabolomic profiling revealed clear compositional and functional distinctions among the digested milks, identifying 166 metabolites that were differentially regulated (136 compounds were down-regulated and 30 up-regulated). Donkey milk digestion yielded a metabolite profile enriched in polar peptides and compounds with reported antioxidant associations, whereas sheep milk digestion showed a different pattern dominated by hydrophobic peptides and lipid-related metabolites. These findings indicate that, under the tested in vitro conditions, donkey milk digestion is associated with gene expression and metabolomic patterns consistent with epithelial barrier support. Full article
(This article belongs to the Section Milk and Human Health)
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34 pages, 1391 KB  
Article
Development of Functional Casu Axedu Cheese Enriched with Olive Leaf Phenolics and a Probiotic-Candidate Lactiplantibacillus plantarum Strain
by Maria Barbara Pisano, Carlo Ignazio Giovanni Tuberoso, Massimo Pes, Roberta Comunian, Margherita Addis, Luigi Chessa, Marco Caredda, Myriam Fiori, Giacomo Lai, Alessio Silvio Dedola, Valentina Masala, Dario Usai, Antonio Paba, Carlo Piga, Angela Carboni, Federica Mereu and Sofia Cosentino
Foods 2026, 15(15), 2694; https://doi.org/10.3390/foods15152694 - 30 Jul 2026
Viewed by 387
Abstract
Functional fresh cheeses can serve as effective carriers of bioactive compounds and probiotic cultures. This study developed a Casu Axedu cheese fortified with olive leaf phenolics and a probiotic-candidate Lactiplantibacillus plantarum (LP) strain. Three formulations were produced from thermised sheep milk: a control [...] Read more.
Functional fresh cheeses can serve as effective carriers of bioactive compounds and probiotic cultures. This study developed a Casu Axedu cheese fortified with olive leaf phenolics and a probiotic-candidate Lactiplantibacillus plantarum (LP) strain. Three formulations were produced from thermised sheep milk: a control (CA-I), a cheese with LP (CA-IL) and a cheese combining olive leaf extract (OLE; 20 mg GAE 100 g−1 milk) and LP (CA-IOL). In all experimental cheeses, inulin was included as a dietary fibre, and lactose hydrolysis was performed to improve product accessibility for lactose-intolerant consumers. Cheeses were stored at 3 ± 1 °C for 30 days and analysed for polyphenol profile, antioxidant capacity, physicochemical and nutritional characteristics, microbiological quality, sensory properties and consumer acceptance. OLE fortification approximately doubled the total polyphenols and produced a more than threefold increase in FRAP antioxidant capacity in CA-IOL, with a high percentage of the main olive leaf phenolics retained after 30 days. Composition, fatty acid profile, vitamin A/E and cholesterol contents were unaffected by OLE and LP addition; all formulations met “high in protein” and lactose-free label criteria (according to the guidelines issued by the Italian Ministry of Health DGISAN Communication No. 27673 of 7 July 2015), and the inulin-based “source of fibre” claim was supported by formulation and mass-balance calculation. Presumptive lactobacilli remained at high counts throughout storage in the LP-containing cheeses, and OLE neither impaired the lactic microflora nor promoted coliform growth. OLE addition increased perceived bitterness, astringency and olive-like notes in CA-IOL, moderately reducing liking scores relative to those of the control among the tested consumer panel (5.25 ± 1.7 at 30 d); mean liking nonetheless remained above the neutral point of the 9-point hedonic scale. Overall, combining inulin, olive leaf extract and a probiotic-candidate L. plantarum strain enabled the production of a Casu Axedu cheese with enhanced antioxidant properties and improved nutritional features while retaining acceptable sensory quality. This approach represents a promising strategy for the valorisation of olive by-products and the development of innovative sheep milk dairy products consistent with circular economy principles. Full article
(This article belongs to the Special Issue Recent Advances in Cheese and Fermented Milk Production, 2nd Edition)
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23 pages, 1085 KB  
Article
Effects of Prepartum Supplementation with Flaxseed and Black Soldier Fly Larvae Oils on Fatty Acid Composition and Lipid Quality Indices in Sheep Milk
by Kamila Lewandowska, Natalia Pachura-Hanusek, Antoni Szumny, Anna Zielak-Steciwko and Robert Kupczyński
Molecules 2026, 31(15), 2628; https://doi.org/10.3390/molecules31152628 - 28 Jul 2026
Viewed by 319
Abstract
The peripartum period in prolific ewes is associated with increased metabolic demands, and dietary lipid supplementation may increase the energy density of the prepartum diet. This study evaluated the effects of prepartum supplementation with alternative lipid matrices on the physicochemical characteristics and comprehensive [...] Read more.
The peripartum period in prolific ewes is associated with increased metabolic demands, and dietary lipid supplementation may increase the energy density of the prepartum diet. This study evaluated the effects of prepartum supplementation with alternative lipid matrices on the physicochemical characteristics and comprehensive fatty acid (FA) profiles of mature and transitional sheep milk. Thirty-two pregnant Olkuska ewes were randomly assigned to four cohorts (n = 8/group): Control (basal diet), flaxseed oil (low n-3/high n-6 variety; FO), black soldier fly larvae oil (BSFL oil), and Mix oil (2:1 ratio of FO to BSFL oil). Dietary treatments exerted no significant effects (p > 0.05) on transitional milk composition or lipid quality indices. In contrast, in mature milk, BSFL oil supplementation significantly increased milk fat content (6.09%) compared to the Control group (4.70%; p < 0.01). Furthermore, all oil treatments significantly reduced total saturated FAs (p < 0.01), while the BSFL oil and Mix oil supplementation significantly increased the monounsaturated FA fraction (p < 0.01). The differences, particularly the increase in cis-9, trans-11 CLA concentration and the significant reduction in both the atherogenic and thrombogenic indices (p < 0.01), were observed exclusively in mature milk. These findings suggest that the combination of sustainable insect lipids with high-linoleic plant oils may represent a viable strategy to transform sheep milk into a functional food with potential cardiovascular health benefits for consumers. These findings additionally indicate that prepartum lipid supplementation may exert a persistent carry-over effect into early lactation, influencing the fatty acid composition of mature sheep milk. Full article
(This article belongs to the Special Issue Health Promoting Compounds in Milk and Dairy Products, 2nd Edition)
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26 pages, 742 KB  
Review
Camel Milk Shelf Life Optimization: Physicochemical Deterioration, Bioactive Preservation, and Non-Thermal Technologies: A Narrative Review
by Nour A. Elsahoryi, Omar A. Alhaj and Haitham Jahrami
Foods 2026, 15(15), 2614; https://doi.org/10.3390/foods15152614 - 26 Jul 2026
Viewed by 372
Abstract
Camel milk (CM), which is produced by both Camelus dromedarius and Camelus bactrianus, is gaining increasing popularity as a value-added functional dairy product, but the science of managing its shelf life has progressed more slowly than its commercial expansion. Unlike bovine milk, [...] Read more.
Camel milk (CM), which is produced by both Camelus dromedarius and Camelus bactrianus, is gaining increasing popularity as a value-added functional dairy product, but the science of managing its shelf life has progressed more slowly than its commercial expansion. Unlike bovine milk, CM lacks β-lactoglobulin (β-LG), has a unique casein (CN) micelle structure with a high β-CN-to-αs1-CN ratio, and low κ-CN protein content, and contains an unusually rich bioactive protein fraction including lactoferrin (LF), immunoglobulin G (IgG), lysozyme (LZ), and peptidoglycan recognition protein (PGRP). These compositional characteristics imbue CM with both significant inherent antimicrobial benefits and place it at risk of processing weaknesses that do not have direct analogs in bovine dairy science. The review discusses three key areas of CM shelf life science that have not been sufficiently addressed in the published literature. The first relates to physicochemical mechanisms of deterioration, including lipid oxidation of polyunsaturated fatty acids (PUFA), destabilization of CN micelles in the structural absence of β-LG, and Maillard browning during thermal treatment and storage of powder. The second addresses the fate of bioactive proteins, with the majority being lactoferrin (LF), immunoglobulin G (Igs), and heavy chain-only antibodies (HCAbs), under both thermal and non-thermal processing conditions. The third looks at new non-thermal preservation methods, such as high-pressure processing (HPP), pulsed electric field (PEF), ultrasonication, ultraviolet irradiation, cold plasma, and electromagnetic (EM) field treatment, and functional packaging innovations, which contribute to longer shelf life. Of the non-thermal options examined, HPP at 200–400 MPa today provides the most mechanistically proven evidence for camel-specific microbial deactivation with satisfactory quality preservation. The latest primary CM research also indicates that processing with EMs in the 850 mT range can potentially be as effective as conventional pasteurization in microbial control and may be more effective than pasteurization in retaining desirable bioactive markers, although this result needs to be independently replicated before more responsible conclusions can be drawn. The review ends with four priority research gaps: standardized kinetic shelf life modeling frameworks, systematic characterization of bioactive protein stability under commercial processing conditions, life cycle assessment of preservation chains across the camel dairy supply continuum, and the urgent validation of camel-specific pasteurization adequacy indicators to replace bovine alkaline phosphatase, which remains active in CM after conventional high-temperature short-time (HTST) pasteurization. Full article
(This article belongs to the Special Issue Storage and Shelf-Life Assessment of Food Products: 2nd Edition)
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20 pages, 3437 KB  
Article
Combined Supplementation of Rumen-Protected Algae Powder and Rumen-Protected Choline Increases Docosahexaenoic Acid Content in Goat Milk
by Senyang Hu, Zihao Wang, Hejing Tang, Wenhua Jin, Jian He, Sufang Duan, Jianmin Zou, Yang Yang, Chang Liu, Pengjie Wang, Wei Tan, Ignatius Man-Yau Szeto, Genna Ba and Yinhua Zhu
Foods 2026, 15(14), 2546; https://doi.org/10.3390/foods15142546 - 19 Jul 2026
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Abstract
Docosahexaenoic acid (DHA) is an essential omega-3 polyunsaturated fatty acid with important health benefits. However, DHA enrichment in ruminant milk is limited by inefficient post-absorptive transport. This study evaluated whether combined supplementation of rumen-protected algae powder (RPA) and rumen-protected choline (RPC) enhances DHA [...] Read more.
Docosahexaenoic acid (DHA) is an essential omega-3 polyunsaturated fatty acid with important health benefits. However, DHA enrichment in ruminant milk is limited by inefficient post-absorptive transport. This study evaluated whether combined supplementation of rumen-protected algae powder (RPA) and rumen-protected choline (RPC) enhances DHA enrichment in goat milk. Nine lactating dairy goats were assigned to three groups (n = 3/group) for 28 days: RPA alone, RPA + low-dose RPC (5 g/d), and RPA + high-dose RPC (10 g/d). Milk DHA content, bioconversion efficiency, serum biochemical parameters, and lipid profiles were analyzed. Compared with RPA alone, low- and high-dose RPC increased milk DHA content to 27.98 and 33.50 mg/100 mL, respectively, representing increases of 23.0% and 47.3%, and enhanced DHA bioconversion efficiency to 20.66% and 24.29% compared with 16.86% in the RPA group. RPC supplementation increased serum VLDL and triglyceride concentrations, and lipidomics revealed increased DHA-containing triglycerides (TG-DHA). These findings suggest that RPC may enhance DHA enrichment in goat milk by promoting VLDL-mediated DHA transport. Further studies with larger animal populations are required to confirm these effects. These findings contribute to a better understanding of nutritional regulation of DHA transfer and provide insights into strategies for developing DHA-enriched dairy products. Full article
(This article belongs to the Section Dairy)
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29 pages, 884 KB  
Review
Updated Insights into Probiotic Nut-Based Dairy Alternatives: Microbiological, Antioxidant, and Sensory Aspects
by Ioanna Mantzourani, Vasiliki Adamopoulou, Argyro Bekatorou and Stavros Plessas
Foods 2026, 15(14), 2505; https://doi.org/10.3390/foods15142505 - 15 Jul 2026
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Abstract
Plant-based “milks” have gained increasing attention as functional beverages due to their nutritional properties, consumer acceptance, and potential for probiotic fermentation. Lactose intolerance, milk allergies, and growing interest in sustainable plant-based diets have contributed to the rapid expansion of nut-based beverage (NBBs) markets. [...] Read more.
Plant-based “milks” have gained increasing attention as functional beverages due to their nutritional properties, consumer acceptance, and potential for probiotic fermentation. Lactose intolerance, milk allergies, and growing interest in sustainable plant-based diets have contributed to the rapid expansion of nut-based beverage (NBBs) markets. This review summarizes recent advances in processing and nutritional characteristics of NBBs as dairy alternatives. Although rich in bioactive compounds, including antioxidants, minerals, unsaturated fatty acids, and vitamins, NBBs generally exhibit lower nutritional density than bovine milk, particularly in protein content and mineral bioaccessibility due to antinutritional compounds present in plant matrices. Fermentation with lactic acid bacteria (LAB) can confer probiotic properties, increase the bioaccessibility of bioactive compounds, and improve sensory properties by reducing off-flavors and promoting the formation of desirable aromas. Pistachio- and almond-based beverages generally exhibit more consistent fermentation performance, favoring probiotic growth and sensory improvement, whereas coconut- and walnut-based milks often require additional stabilization strategies due to limited emulsifying capacity or oxidative instability. Overall, fermented NBBs represent a promising category of functional foods with increasing technological and nutritional relevance. Future research should focus on optimizing starter cultures and processing conditions, improving scalability and industrial feasibility, and elucidating microbial/matrix interactions through integrated omics approaches. Full article
(This article belongs to the Section Plant Foods)
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22 pages, 379 KB  
Article
Effects of Dietary Red Grape Pomace Silage Inclusion Levels on the Nutritional and Technological Traits of Goat Milk
by José Ramón Díaz, Marina Galvez-Lopez, Esther Sendra, Manuel Viuda-Martos, Jordi Saldo and Gema Romero
Ruminants 2026, 6(3), 57; https://doi.org/10.3390/ruminants6030057 - 14 Jul 2026
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Abstract
Grape pomace represents the main by-product generated during winemaking and is characterised by its richness in polyphenols, dietary fibre, residual sugars, lipids, and triterpenes. These bioactive compounds derived from grapes are known to positively influence oxidative status, metabolic balance, and animal productivity, positioning [...] Read more.
Grape pomace represents the main by-product generated during winemaking and is characterised by its richness in polyphenols, dietary fibre, residual sugars, lipids, and triterpenes. These bioactive compounds derived from grapes are known to positively influence oxidative status, metabolic balance, and animal productivity, positioning grape pomace as a promising, environmentally and economically sustainable alternative feed ingredient for conventional feed components. This research evaluated the effects of incorporating different inclusion rates (0, 6, 12, and 18% DM) of ensiled red grape pomace (RGP) into isoenergetic and isoproteic diets on the nutritional and technological characteristics of goat milk. Seventy-two Murciano-Granadina dairy goats were selected and distributed into eight homogeneous groups (n = 9 per group) based on physiological traits. Each diet was randomly assigned to two groups, and the feeding trial extended over eight weeks. After a two-week adaptation to the experimental diets, four biweekly milk samplings were performed to obtain representative bulk tank samples from each treatment group. Milk samples were analysed for gross composition, pH, mineral profile, fatty acid composition, coagulation properties, colourimetric parameters, and antioxidant capacity. The collected data were analysed using a general linear model, considering the effect of the treatment, sampling days, and their interaction (Proc. GLM, SAS v9.4). Dietary RGP inclusion had no significant effect on milk gross composition or on the antioxidant activity of the milk. However, it led to a significant reduction in milk urea content and somatic cell count, alongside improvements in the lipid profile from a human health perspective. The magnitude of the effects observed in the colourimetric parameters (<0.5 units) fell below the threshold of human visual perception and was therefore not considered relevant. RGP-fed milk also showed increased calcium and potassium concentrations, while RGP_12 milk exhibited the highest phosphorus content. In addition, the lowest RGP levels (RGP_6) reduced the rennet coagulation time while increasing milk curd aggregation rate. Despite these targeted effects, the overall milk composition remained stable, which is critical for maintaining its technological functionality. Full article
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