Citation: | ZHANG J, XU X F. Research progress concerning the rumen microflora of juvenile ruminants. Pratacultural Science, 2020, 37(2): 363-369. . DOI: 10.11829/j.issn.1001-0629.2019-0278 |
[1] |
邓由飞. 液体日粮对犊牛生长发育及胃肠道微生物菌群结构影响研究. 北京: 中国农业大学博士学位论文, 2017.
DENG Y F. Study on the influence of liquid diet on growth and the microbiomes of different gastrointestinal tract components in pre-weaned dairy calves. PhD Thesis. Beijing: China Agricultural University, 2017.
|
[2] |
张科. 陕北白绒山羊0~56日龄羔羊胃肠道发育及瘤胃微生物区系研究. 杨凌: 西北农林科技大学硕士学位论文, 2017.
ZHANG K. Research on gi development and rumen micro biome from 0 to 56-day-old at cashmere goat. Master Thesis. Yangling: Northwest A & F University, 2017.
|
[3] |
CHURCH D C. The Ruminant Animal: Digestive Physiology and Nutrition. New Jersey: Prentice Hall, 1988.
|
[4] |
MALMUTHUGE N, GRIEBEL P J, GUAN L L. Taxonomic identification of commensal bacteria associated with the mucosa and digestathroughout the gastrointestinal tracts of preweaned calves. Applied and Environmental Microbiology, 2014, 80(6): 2021-2028. doi: 10.1128/AEM.03864-13
|
[5] |
ZIOLECKI A, BRIGGS C A E. The microflora of the rumen of the young calf: ii. Source, nature and development. Journal of Applied Microbiology, 1961, 24(2): 148-163.
|
[6] |
VI R L B, MCLEOD K R, KLOTZ J L, HEITMANN R N. Rumen development, intestinal growth and hepatic metabolism in the pre- and postweaning ruminant. Journal of Dairy Science, 2004, 87(S): E55-E65.
|
[7] |
田可, 柳君辉, 董国忠. 早期瘤胃微生物区系发育及其调控. 动物营养学报, 2018, 30(12): 4828-4834. doi: 10.3969/j.issn.1006-267x.2018.12.009
TIAN K, LIU J H, DONG G Z. Development and manipulation of rumen microbiota during early-life. Chinese Journal of Animal Nutrition, 2018, 30(12): 4828-4834. doi: 10.3969/j.issn.1006-267x.2018.12.009
|
[8] |
李岚捷, 成述儒, 刁其玉, 屠焰. 日粮碳水化合物对幼龄反刍动物生长发育的影响. 畜牧与兽医, 2017, 49(12): 145-149.
LI L J, CHENG S R, DIAO Q Y, TU Y. Effect of dietary carbohydrate on growth and development of young ruminant animals. Animal Husbandry & Veterinary, Medicine, 2017, 49(12): 145-149.
|
[9] |
吴婷婷. 补喂绵羊瘤胃液、益生菌对28日龄羔羊胃肠道菌群及免疫的影响. 乌鲁木齐: 新疆农业大学博士学位论文, 2016.
WU T T. The effects of supplement with ruminal fluid probiotics on the gastrointestinal microbiota and immunity of lambs aged 28 days. PhD Thesis. Urumqi: Xinjiang Agricultural University, 2016.
|
[10] |
GUZMAN C E, BEREZAMALCOLM L T, GROEF B D, FRANKS A E. 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
|
[11] |
REY M, ENJALBERT F, COMBES S, CAUQUIL L, BOUCHEZ O, MONTEILS V. Establishment of ruminal bacterial community in dairy calves from birth to weaning is sequential. Journal of Applied Microbiology, 2014, 116(2): 245-257. doi: 10.1111/jam.12405
|
[12] |
JIAO J, LI X, BEAUCHEMIN K A, TAN Z, TANG S, ZHOU C. Rumen development process in goats as affected by supplemental feeding v. grazing: Age-related anatomic development, functional achievement and microbial colonisation. British Journal of Nutrition, 2015, 113(6): 888-900. doi: 10.1017/S0007114514004413
|
[13] |
YEOMAN C J, ISHAQ S L, BICHI E, OLIVO S K, LOWE J, ALDRIDGE B M. Biogeographical differences in the influence of maternal microbial sources on the early successional development of the bovine neonatal gastrointestinal tract. Scientific Reports, 2018, 8(1): 3197. doi: 10.1038/s41598-018-21440-8
|
[14] |
CURTIS T P, SLOAN W T. Prokaryotic diversity and its limits: Microbial community structure in nature and implications for microbial ecology. Current Opinion in Microbiology, 2004, 7: 221-226. doi: 10.1016/j.mib.2004.04.010
|
[15] |
VAN NIMWEGEN F A, PENDERS J, STOBBERINGH E E, POSTMA D S, KOPPELMAN G H, KERKHOF M, REIJMERINK N E, DOMPELING E, VAN DEN BRANDT P A, FERREIRA I, MOMMERS M, THIJS C. Mode and place of delivery, gastrointestinal microbiota, and their influence on asthma and atopy. Journal of Allergy and Clinical Immunology, 2011, 128(5): 948-955. doi: 10.1016/j.jaci.2011.07.027
|
[16] |
ISHAQ S L, BICHI E, OLIVO S K, LOWE J, YEOMAN C J, ALRIDGE B M. Influence of colostrum on the microbiological diversity of the developing bovine intestinal tract. Journal of Animal Science, 2016, 94(S5): 739.
|
[17] |
ABECIA L, RAMOSMORALES E, MARTÍNEZFERNANDEZ G, ARCO A, MARTINGARCIA A I, NEWBOLD C J, YANEZRUIZ D R. Feeding management in early life influences microbial colonisation and fermentation in the rumen of newborn goat kids. Animal Production Science, 2014, 54(9): 1449-1454. doi: 10.1071/AN14337
|
[18] |
ABECIA L, JIMÉNEZ E, MARTÍNEZFERNANDEZ G, MARTÍNGARCÍA A I, RAMOSMORALE E. Natural and artificial feeding management before weaning promote different rumen microbial colonization but not differences in gene expression levels at the rumen epithelium of newborn goats. PLoS One, 2017, 12(8): e0182235. doi: 10.1371/journal.pone.0182235
|
[19] |
RYAN T, GRIEBEL P J. Commensal microbiome effects on mucosal immune system development in the ruminant gastrointestinal tract. Animal Health Research Reviews, 2012, 13(1): 13.
|
[20] |
LILIUS E M, MARNILA P. The role of colostral antibodies in prevention of microbial infections. Current Opinion in Infectious Diseases, 2001, 14: 295-300. doi: 10.1097/00001432-200106000-00008
|
[21] |
MALMUTHUGE N, LI M, FRIES P, GRIEBEL P J, GUAN L L. Regional and age dependent changes in gene expression of toll-like receptors and key antimicrobial defense molecules throughout the gastrointestinal tract of dairy calves. Vet Immunol Immunopathol, 2012, 146: 18-26. doi: 10.1016/j.vetimm.2012.01.010
|
[22] |
JAMI E, ISRAEL A, KOTSER A, MIZRAHI I. Exploring the bovine rumen bacterial community from birth to adulthood. The ISME Journal, 2013, 7(6): 1069-1079. doi: 10.1038/ismej.2013.2
|
[23] |
DE BARBIERI I, HEGARTY R S, SILVEIRA C, GULINO L M, ODDY V H, GILBERT R A, KLIEVE A V, OUWERKERK D. Programming rumen bacterial communities in newborn Merino lambs. Small Ruminant Research, 2015, 129: 48-59. doi: 10.1016/j.smallrumres.2015.05.015
|
[24] |
SASSON G, KRUGER BEN-SHABAT S, SEROUSSI E, DORON-FAIGENBOIM A, SHTERZER N, YAACOBY S, MILLER M E B, WHITE B A, HALPERIN E, MIZRAHI I. Heritable bovine rumen bacteria are phylogenetically related and correlated with the cow’s capacity to harvest energy from its feed. mBio, 2017, 8(4): e00703-e00717.
|
[25] |
GOUET P, JOUANY J P, SENAUD J, GRAIN J, FONTY G. The evolution of microflora, microfauna and digestion in the rumen of lambs from birth to 4 months. Canadian Journal of Animal Science, 1984, 64(5): 165-166. doi: 10.4141/cjas84-206
|
[26] |
解彪, 张乃锋, 张春香, 刁其玉. 粗饲料对幼龄反刍动物瘤胃发育的影响及其作用机制. 动物营养学报, 2018(4): 1245-1252. doi: 10.3969/j.issn.1006-267x.2018.04.006
XIE B, ZHANG N F, ZHANG C X, DIAO Q Y. Effects of forage on rumen development in young ruminants and its mechanisms. Chinese Journal of Animal Nutrition, 2018(4): 1245-1252. doi: 10.3969/j.issn.1006-267x.2018.04.006
|
[27] |
YANEZ-RUIZ D R, ABECIA L, NEWBOLD C J. Manipulating rumen microbiome and fermentation through interventions during early life: A review. Frontiers in Microbiology, 2015, 6: 1133.
|
[28] |
GÉRARD F, PHILIPPE G, JEAN-PIERRE J, JEAN S. Establishment of the microflora and anaerobic fungi in the rumen of lambs. Journal of General Microbiology, 1987, 133(7): 1835-1843.
|
[29] |
MORVANA B, DOREA J, RIEU-LESMEA F, FOUCATB L, FONTYAC G, GOUETA P. Establishment of hydrogen-utilizing bacteria in the rumen of the newborn lamb. FEMS Microbiology Letter, 1994, 117(3): 249-256. doi: 10.1111/j.1574-6968.1994.tb06775.x
|
[30] |
MAYER M, ABENTHUM A, MATTHES J M, KLEEBERGER D, EGE M J, HÖLZEL C, BAUER J, SCHWAIGER K. Development and genetic influence of the rectal bacterial flora of newborn calves. Veterinary Microbiology, 2012, 161(1/2): 179-185. doi: 10.1016/j.vetmic.2012.07.023
|
[31] |
AN D, DONG X, DONG Z. Prokaryote diversity in the rumen of yak (Bos grunniens) and Jinnan cattle (Bos taurus) estimated by 16S rDNA homology analyses. Anaerobe, 2005, 11(4): 207-215. doi: 10.1016/j.anaerobe.2005.02.001
|
[32] |
裴彩霞, 毛胜勇, 朱伟云. 晋南牛瘤胃中古菌分子多样性的研究. 微生物学报, 2008, 48(1): 8-14. doi: 10.3321/j.issn:0001-6209.2008.01.003
PEI C X, MAO S Y, ZHU W Y. Molecular diversity of rumen archaea from Jinnan cattle. Acta Microbiologica Sinica, 2008, 48(1): 8-14. doi: 10.3321/j.issn:0001-6209.2008.01.003
|
[33] |
YANG C T, SI B W, DIAO Q Y, JIN H, ZENG S Q, TU Y. Rumen fermentation and bacterial communities in weaned Chahaer lambs on diets with different protein levels. Journal of Integrative Agriculture, 2016, 15(7): 1564-1574. doi: 10.1016/S2095-3119(15)61217-5
|
[34] |
李文娟. 日粮脂肪水平对早期断奶羔羊生长性能、瘤胃发酵及微生物区系的影响. 北京: 中国农业科学院硕士学位论文, 2018.
LI W J. Effect of dietary fat levels on growth performance, rumen fermentation and microbiota of early-weaned lambs. Master Thesis. Beijing: Chinese Academy of Agricultural Sciences, 2018.
|
[35] |
KUMAR S, INDUGU N, VECCHIARELLI B, PITTA D W. Associative patterns among anaerobic fungi, methanogenic archaea, and bacterial communities in response to changes in diet and age in the rumen of dairy cows. Frontiers in Microbiology, 2015, 6: 781.
|
[36] |
DEGNAN P H, PUSEY A E, LONSDORF E V, GOODALL J, WROBLEWSKI E E, WILSON M L, RUDICELL R S, HAHN B H, OCHMAN H. Factors associated with the diversification of the gut microbial communities within chimpanzees from Gombe National Park. Proceedings of the National Academy of Sciences, 2012, 109(32): 13034-13039. doi: 10.1073/pnas.1110994109
|
[37] |
LIN W, WANG Y, PAN Y. Short-term effects of temperature on the abundance and diversity of magnetotactic cocci. Microbiology Open, 2012, 1(1): 53-63. doi: 10.1002/mbo3.7
|
[38] |
AURÉLIE C, SEAN P K, LING C K, EDI P, NICOLAS P, EMMANUELLE L C, MATHIEU A, BENOIT Q, FLORENCE L, NATHALIE G, SOPHIE G, SALWA R, JEAN-MICHEL B, PIERRE R, ANR MICROOBES CONSORTIUM, JOEL D, JEAN-DANIEL Z, KARINE C, STANISLAV D E. Corrigendum: Dietary intervention impact on gut microbial gene richness. Nature, 2013, 502: 580-580.
|
[39] |
CASTRO M J. Calf intestinal health: Assessment and dietary interventions for its improvement. Dissertations & Theses-Gradworks, 2014, 117(27): 61-70.
|
[40] |
于萍, 王加启, 刘开朗, 卜登攀, 李旦, 赵圣国, 邓露芳. 饲喂纳豆枯草芽胞杆菌对荷斯坦犊牛瘤胃细菌区系的影响. 农业生物技术学报, 2010, 18(1): 108-113. doi: 10.3969/j.issn.1674-7968.2010.01.018
YU P, WANG J Q, LIU K L, BU D P, LI D, ZHAO S G, DENG L F. Effect of feeding Bacillus subtilis natto on rumen bacteria population of holstein calves. Journal of Agricultural Biotechnology, 2010, 18(1): 108-113. doi: 10.3969/j.issn.1674-7968.2010.01.018
|
[41] |
DOTO S P, LIU J, WANG J. Effect of yeast culture and direct-fed microbes on the growth performance and rumen fermentation of weaner lambs. Journal of Animal Science and Biotechnology, 2011, 2(4): 208-216.
|
[42] |
李鹤琼, 刘强, 王聪, 张延利, 裴彩霞, 王永新, 郭刚, 霍文婕, 张拴林, 刘建新. 2-甲基丁酸对断奶前后犊牛瘤胃发酵、酶活及纤维分解菌菌群的影响. 畜牧兽医学报, 2015, 46(12): 2218-2226. doi: 10.11843/j.issn.0366-6964.2015.12.013
LI H Q, LIU Q, WANG C, ZHANG Y L, PEI C X, WANG Y X, GUO G, HUO W J, ZHANG S L, LIU J X. Effects of 2-methylbutyrate supplementation on rumen fermentation, enzyme activities and cellulolytic bacteria in pre-and post-weaning dairy calves. Acta Veterinaria et Zootechnica Sinica, 2015, 46(12): 2218-2226. doi: 10.11843/j.issn.0366-6964.2015.12.013
|
[43] |
TANNOCK G W. CHAPTER 20-effect of dietary and environmental stress on the gastrointestinal microbiota. Human Intestinal Microflora in Health & Disease, 1983, 17(3): 517-539.
|
[44] |
杜琪, 盛笑昱, 杨斌, 王翀, 茅慧玲. 高通量测序分析不同断奶时间对南方黄牛犊牛瘤胃细菌菌群的影响. 中国畜牧杂志, 2018, 54(2): 87-92.
DU Q, SHENG X H, YANG B, WANG C, MAO H L. High-throughput sequencing analysis of rumen bacterial flora in southern cattle calves at different weaning times. Chinese Journal of Animal Science, 2018, 54(2): 87-92.
|
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