For the experiment, 8 newborn male Holstein calves were selected that had the same feeding environment, and were of similar ages. They were randomly divided into 2 groups, with 4 in each group. The treatments consisted of feeding active probiotics (Group P) and a normal fed control group (Group C). The growth performance and blood indices were measured; rumen fluid samples were collected after weaning, and 16SrDNA sequencing and LC-MS metabolome detection were performed. Compared with the control group, relative abundances of Deltaproteobacteria, Desulfovibrionales, Bacteroi dales_ BS11_gut_group, Desulfovibrionaceae, Bacteroidales_S24-7_group, Acet obacteraceae, Ruminococcaceae_NK4A214_group, Asaia, [ Ruminococcus ] gauvreauii _group, Desulfovibrio , Kingella , Selenomonas , Lachnoclostri dium in group P were significantly different (P < 0.05). In group P, the metabolite of 2-methylbenzoic acid and myo-inositol were significantly increased (P < 0.05). These results showed that compared with normally fed calves, the growth performance and blood indices of probiotic-fed calves were changed, but the differences were not significant. Probiotic-fed calves showed significant differences in rumen fluid and a small number of metabolites, which were mainly involved in the pathway of carbohydrate metabolism. It proves that the supplemental active probiotics had an effect on the rumen microflora.
Metchnikoff, E. (1908) The Prolongation of Life. GP Putman’s Sons Publishers, New York.
Lilly, D. and Stillwell, R. (1965) Probiotics—Growth-Promoting Factors Produced by Microorganisms. Science, 147, 747-748. https://doi.org/10.1126/science.147.3659.747
Parker, R.B. (1974) Probiotics, the Other Half of Antibiotic Story. Animal Nutrition & Health, 29, 4-8.
Antunovic, Z., Speranda, M., Liker, B., et al. (2005) Influence of Feeding the Probiotic Pioneer PDFM (R) to Growing Lambs on Performances and Blood Composition. Acta Veterinaria, 55, 287-300. https://doi.org/10.2298/AVB0504287A
Mountzouris, K.C., Balaskas, C., Xanthakos, I., et al. (2009) Effects of a Multi-Species Probiotic on Biomarkers of Competitive Exclusion Efficacy in Broilers Challenged with Salmonella Enteritidis. British Poultry Science, 50, 467-478. https://doi.org/10.1080/00071660903110935
Musa, H., Wu, S., Zhu, C., et al. (2009) The Potential Benefits of Probiotics in Animal Production and Health. Journal of Animal and Veterinary Advances, 8, 313-321.
Krehbiel, C., Rust, S., Zhang, G. and Gilliland, S. (2003) Bacterial Direct-Fed Microbials in Ruminant Diets: Performance Response and Mode of Action. Journal of Animal Science, 81, E120-E132.
Bomba, A., Nemcová, R., Gancarcíková, S., et al. (2002) Improvement of the Probiotic Effect of Micro-Organisms by Their Combination with Maltodextrins, Fructo-Oligosaccharides and Polyunsaturated Fatty Acids. British Journal of Nutrition, 88, S95-S99. https://doi.org/10.1079/BJN2002634
Isolauri, E., Sutas, Y., Kankaanpaa, P., et al. (2001) Probiotics: Effects on Immunity. American Journal of Clinical Nutrition, 73, 444S-450S. https://doi.org/10.1093/ajcn/73.2.444s
Perdigon, G., Alvarez, S., Rachid, M., et al. (1995) Immune System Stimulation by Probiotics. Journal of Dairy Science, 78, 1597-1606. https://doi.org/10.3168/jds.S0022-0302(95)76784-4
Matsuzaki, T. and Chin, J. (2000) Modulating Immune Responses with Probiotic Bacteria. Immunology and Cell Biology, 78, 67-73. https://doi.org/10.1046/j.1440-1711.2000.00887.x
Roselli, M., Finamore, A., Britti, M., et al. (2005) Alternatives to In-Feed Antibiotics in Pigs: Evaluation of Probiotics, Zinc or Organic Acids as Protective Agents for the Intestinal Mucosa: A Comparison of in vitro and in vivo Results. Animal Research, 54, 203-218. https://doi.org/10.1051/animres:2005012
Guillot, J.F. (2003) Probiotic Feed Additives. Journal of Veterinary Pharmacology and Therapeutics, 26, 52-55.
Casas, I.A. and Dobrogosz, W.J. (2000) Validation of the Probiotic Concept: Lactobacillus Reuteri Confers Broad-Spectrum Protection against Disease in Humans and Animals. Microbial Ecology in Health and Disease, 12, 247-285. https://doi.org/10.1080/08910600050216246-1
Yuan, X.P., Wang, J. and Yao, H.Y. (2004) Purification and Some Properties of Endoxylanases from Bacillus subtilis. Food and Fermentation Industries, 30, 55-59.
Fan, Y.J., Pang, W., Shi, H.Y., et al. (2009) Preliminary Study on Fermentation Technology of Swine Blood Protein Peptide with Bacillus subtili. Journal of Anhui Agricultural Sciences, 37, 7184-7186.
Li, H.F., Ye, Y.H. and Guo, J.H. (2010) Isolation and Identification of Bacillus subtilis 7Ze3 Cyclic Dipeptide. Jiangsu Journal of Agricultural Sciences, 2, 107-109.
Zhang, L., Zhang, D., Zhang, L.P., et al. (2010) Optimization of Fermentation Medium for Production of Antibacterial Peptides by Bacillus subtilis BSD-2. Food Science, 31, 189-192.
Ding, X.J., Zhang, X.T., Wang, S.Q., et al. (2017) Effects of Saccharomyces cerevisiae Culture on Growth Performance, Apparent Availability of Nutrients and Intestinal Bacteria Flora of 817 Broiler Chickens. Chinese Journal of Animal Nutrition, 29, 2391-2398.
Bruno, R.G.S., Rutigliano, H.M., et al. (2009) Effect of Feeding Saccharomyces cerevisiae on Performance of Dairy Cows during Summer Heat Stress. Animal Feed Science and Technology, 150, 175-186. https://doi.org/10.1016/j.anifeedsci.2008.09.001
Williams, P., Tait, C., Innes, G., et al. (1991) Effects of the Inclusion of Yeast Culture (Saccharomyces cerevisiae plus Growth Medium) in the Diet of Dairy-Cows on Milk-Yield and Forage Degradation and Fermentation Patterns in the Rumen of Steers. Journal of Animal Science, 69, 3016-3026. https://doi.org/10.2527/1991.6973016x
Kawas, J.R., García-Castillo, R., Garza-Cazares, F., et al. (2007) Effects of Sodium Bicarbonate and Yeast on Productive Performance and Carcass Characteristics of Light-Weight Lambs Fed Finishing diets. Small Ruminant Research, 67, 157-163. https://doi.org/10.1016/j.smallrumres.2005.09.011
Jenny, B.F., Vandijk, H.J. and Collins, J.A. (1991) Performance and Fecal Flora of Calves Fed a Bacillus subtilis Concentrate. Journal of Dairy Science, 74, 1968-1973. https://doi.org/10.3168/jds.S0022-0302(91)78364-1
Sun, P., Wang, J.Q. and Zhang, H.T. (2011) Effects of Bacillus subtilis natto on Performance and Immune Function of Preweaning Calves. Journal of Dairy Science, 93, 5851-5855. https://doi.org/10.3168/jds.2010-3263
Liu, J., Bian, G., Sun, D., et al. (2017) Starter Feeding Altered Ruminal Epithelial Bacterial Communities and Some Key Immune-Related Genes’ Expression before Weaning in Lambs 1. Journal of Animal Science, 95, 910.
Scharen, M., Drong, C., Kiri, K., et al. (2017) Differential Effects of Monensin and a Blend of Essential Oils on Rumen Microbiota Composition of Transition Dairy Cows. Journal of Dairy Science, 100, 2765-2783. https://doi.org/10.3168/jds.2016-11994
Zhao, X.H., Chen, Z.D., Zhou, S., et al. (2017) Effects of Daidzein on Performance, Serum Metabolites, Nutrient Digestibility, and Fecal Bacterial Community in Bull Calves. Animal Feed Science and Technology, 225, 87-96. https://doi.org/10.1016/j.anifeedsci.2017.01.014
Jiao, X.G. (2018) Proteomic Analysis of Wheat Germ Globulin and Its Effects on Intestinal Microfloras. Henan University of Technology, Zhengzhou.
Wang, P.L. (2015) The Effects of Liraglutide on Diabetic Rat Intestinal Flora and Its Metabolites. Peking Union Medical College, Beijing.
Yanke, L.J., Bae, H.D., Selinger, L.B., et al. (1998) Phytase Activity of Anaerobic Ruminal Bacteria. Microbiology, 144, 1565-1573. https://doi.org/10.1099/00221287-144-6-1565
Nisbet, D. and Martin, S. (1991) Effect of a Saccharomyces-Cerevisiae Culture on Lactate Utilization by the Ruminal Bacterium Selenomonas-Ruminantium. Journal of Animal Science, 69, 4628-4633. https://doi.org/10.2527/1991.69114628x
Yamaoka, M., Osawa, S., Morinaga, T., et al. (2011) A Cell Factory of Bacillus subtilis Engineered for the Simple Bioconversion of Myo-Inositol to Scyllo-Inositol, a Potential Therapeutic Agent for Alzheimer’s Disease. Microbial Cell Factories, 10, Article No. 69. https://doi.org/10.1186/1475-2859-10-69
Yebra, M.J., Zúniga, M., Beaufils, S., et al. (2007) Identification of a Gene Cluster Enabling Lactobacillus casei BL23 to Utilize Myo-Inositol. Applied and Environmental Microbiology, 73, 3850-3858. https://doi.org/10.1128/AEM.00243-07
Bahar, M., de Majnik, J., Wexler, M., et al. (1998) A Model for the Catabolism of Rhizopine in Rhizobium leguminosarum Involves a Ferredoxin Oxygenase Complex and the Inositol Degradative Pathway. Molecular Plant-Microbe Interactions, 11, 1057-1068. https://doi.org/10.1094/MPMI.1998.11.11.1057