Rumen Mikroorganizmalarının Buzağılarda Önemi ve Gelişim Süreci
Referanslar
Flint HJ, Bayer EA, Rincon MT, et al. Polysaccharide utilization by gut bacteria: potential for new insights from genomic analysis. National Reviews Microbiology. 2008;6: 121–131.
Brulc JM, Antonopoulos DA, Miller ME, et al. Gene-centric metagenomics of the fiber-adherent bovine rumen microbiome reveals forage specific glycoside hydrolases. Proceedings of the National Academy of Sciences of the United States of America. 2009;106: 1948–1953.
Gümüş E, Küçükersan S. Buzağılarda preruminant dönem beslemesinin rumen gelişimi üzerine etkisi. Atatürk Üniversitesi Veteriner Bilimleri Dergisi. 2018;13(1):98-105.
Baldwin V, McLeod K, Klotz J, et al. Rumen development, intestinal growth and hepatic metabolism in the pre-and post-weaning ruminant. Journal of Dairy Science. 2004; 87: E55–E65.
Nilusha M, Meiju L, Laksiri AG, et al. Effect of calf starter feeding on gut micro bial diversity and expression of genes involved in host immune responses and tight junctions in dairy calves during weaning transition. Journal of Dairy Science. 2013 96: 3189–3200. doi: 10.3168/jds.2012-6200 PMID: 23498024.
Li R, Connor EE, Li C, et al. Characterization of the rumen microbiota of pre-ruminant calves using metagenomic tools. Environmental Microbiology. 2012;14: 129–139. doi: 10.1111/j. 1462-2920.2011.02543.x PMID: 21906219
Rey M, Enjalbert F, Monteils V. Establishment of ruminal enzyme activities and fermentation capacity in dairy calves from birth through weaning. Journal of Dairy Science. 2012;95: 1500–1512. doi: 10.3168/jds.2011 4902PMID:22365231
Sarıpınar D, Sulu N. Ruminantlarda probiyotiklerin kullanımı ve rumene etkileri. Kafkas Üniversitesi Veteriner Fakültesi Dergisi. 2005;11, 93-98.
Guzman CE, Bereza-Malcolm LT, De Groef B, et al. Presence of Selected Methanogens, Fibrolytic Bacteria, and Proteobacteria in the Gastrointestinal Tract of Neonatal Dairy Calves from Birth to 72 Hours. PLoS ONE. 2015;10(7): e0133048. doi:10.1371/journal.pone.0133048
Furman O, Shenhav L, Sasson G, et al. Stochasticity constrained by deterministic effects of diet and age drive rumen microbiome assembly dynamics. Nature Communications. 2020;11:1904. https://doi.org/10.1038/s41467-020-15652-8
Ergün A, Tuncer ŞD, Çolpan İ, et al. Hayvan Besleme ve Beslenme Hastalıkları. 1-776. Pozitif Genişletilmiş 6. Baskı. Ankara. 2014.
Jami E, White BA, Mizrahi I. Potential role of the bovine rumen microbiome in modulating milk composition and feed efficiency. PLoS One. 2014;9:e85423. doi: 10.1371/journal.pone.0085423
Carberry CA, Kenny DA, Han S. Effect of phenotypic residual feed intake and dietary forage content on the rumen microbial community of beef cattle. Applied and Environmental Microbiology. 2012;78:4949–4958. doi:10.1128/AEM.07759-11.
Wallace RJ, Rooke JA, McKain N, et al. The rumen microbial metagenome associated with high methane production in cattle. BMC Genomics. 2015;16:839. doi:10.1186/s12864-015-2032-0.
Malmuthuge N, Griebel PJ, Guan LL. The gut microbiome and its potential role in the development and function of newborn calf gastro intestinal tract. Frontiers in Veterinary Science. 2014;2:36. doi:10.3389/fvets.2015 .00036.
Lin L, Xie F, Sun D, et al. Ruminal microbiome-host crosstalk stimulates the development of the ruminal epithelium in a lamb model. Microbiome. 2019;7:83. doi:10.1186/s40168-019-0701-y
Dill-McFarland KA, Weimer PJ, Breaker JD, et al. Diet influences early microbiota development in dairy calves without long-term impacts on milk production. Applied and Environmental Microbiology. 2019; 85:e02141-18. doi: 10.1128/AEM.02141-18.
Lourenco JM, Kieran TJ, Seidel DS, et al. Comparison of the ruminal and fecal microbiotas in beef calves supplemented or not with concentrate. PLoS ONE. 2020;15(4): e0231533. doi: 10.1371/journal.pone.0231533
Petri RM, Schwaiger T, Penner GB, et al. Characterization of the Core Rumen Microbiome in Cattle during Transition from Forage to Concentrate as Well as during and after an Acidotic Challenge. PLoS ONE. 2013;8(12): e83424. doi:10.1371/journal.pone.0083424
Matthews C, Crispie F, Lewis E, et al. The rumen microbiome: a crucial consideration when optimising milk and meat production and nitrogen utilisation efficiency. Gut Microbes. 2019;10:2, 115-132, doi: 10.1080/19490976.2018.1505176
Biscarini F, Palazzo F, Castellani F, et al. Rumen microbiome in dairy calves fed copper and grapepomace dietary supplementations: Composition and predicted functional profile. PLoS ONE. 2018;13(11): e0205670. doi:10.1371/journal. pone.0205670
Xu S, Feng X, Zhao W, et al. Rumen and hindgut microbiome regulate average daily gain of preweaning Holstein heifer calves in different ways. Microbiome. 2024: 12:131. doi:10.1186/s40168-024-01844-7
Xue M, Sun H, Wu X, et al. Multi-omics reveals that the rumen microbiome and its metabolome together with the host metabolome contribute to individualized dairy cow performance. Microbiome. 2020;8:64. doi: 10.1186/s40168-020-00819-8
Shen Y, Li Y, Wu T, et al. Early microbial intervention reshapes phenotypes of newborn Bos taurus through metabolic regulations. GigaScience, 2024;13, 1–15. doi:10.1093/gigascience/giad118
Ghaffari MH, Hammon HM, Koch C. Early rumen development in calves: Biological processes and nutritional strategies—A mini-review. JDS communications, 2025;6.3: 427-431.
Diao Q, Zhang R, Fu T. Review of strategies to promote rumen development in calves. Animals. 2019; 9.8: 490.
Dias J, Marcondes MI, Noronha MF, et al. Effect of Pre-weaning Diet on the Ruminal Archaeal, Bacterial, and Fungal Communities of Dairy Calves. Frontiers in Microbiology. 2017;8: 1553. doi: 10.3389/fmicb.2017.01553
Khan MA, Bach A, Wary DM, et al. Invited review: Transitioning from milk to solid feed in dairy heifers. Journal of Dairy Science. 2016;99.2: 885-902.
Cristobal-Carballo O, McCoard SA, Cookson AL, et al. Effect of Divergent Feeding Regimes During Early Life on the Rumen Microbiota in Calves. Frontiers in Microbiology. 2021;12:711040. doi: 10.3389/fmicb.2021.711040
Wu Y, Jiao C, Diao Q, et al. Effect of Dietary and Age Changes on Ruminal Microbial Diversity in Holstein Calves. Microorganisms. 2024; 12, 12. doi:10.3390/ microorganisms12010012
Li L, Qu J, Zhu H, et al. Effects of feeding different levels of dietary corn silage on growth performance, rumen fermentation and bacterial community of post-weaning dairy calves. Animal Bioscience. 2023; 37.2: 261. doi: 10.5713/ab.23.0174
Beharka AA, Nagaraja TG, Morril JL, et al. Effects of form of the diet on anatomical, microbial, and fermentative development of the rumen of neonatal calves. Journal of Dairy Science. 1998; 81.7: 1946-1955.
Shkromada OI, Ulko LG, Udovenko, Ya S. DIETARY IMPACTS ON EARLY RUMEN MICROBIOTA DEVELOPMENT IN CALVES. Scientific and Technical Bulletin оf State Scientific Research Control Institute of Veterinary Medical Products and Fodder Additives аnd Institute of Animal Biology. 2020; 21.1: 241-246.
Arshad MA, Hassan F, Rehman MS, et al. Gut microbiome colonization and development in neonatal ruminants: Strategies, prospects, and opportunities. Animal Nutrition, 2021; 7.3: 883-895.
Wang H, Yu Z, Gao Z, et al. Effects of compound probiotics on growth performance, rumen fermentation, blood parameters, and health status of neonatal Holstein calves. Journal of Dairy Science, 2022; 105.3: 2190-2200.
Romera-Recio E, Ramos-Morales E, Belanche A, et al. Effects of feed additives in the diet of male dairy beef calves on physiological status and rumen microbial fermentation pre-and postweaning. Animal Feed Science and Technology. 2025; 321: 116243.
Wang K, Jiang M, Chen Y, et al. Changes in the rumen development, rumen fermentation, and rumen microbiota community in weaned calves during steviol glycosides treatment. Frontiers in Microbiology. 2024;15: 1395665. doi: 10.3389/fmicb.2024.1395665
Biscarini F, Palazzo F, Castellani F, et al. Rumen microbiome in dairy calves fed copper and grape pomace dietary supplementations: Composition and predicted functional profile. PLoS ONE. 2018; 13(11): e0205670. doi:10.1371/journal. pone.0205670