综述 REVIEW

谷物作为反刍动物能量饲料的营养特性及高谷物饲粮对消化道健康的影响

  • 赵芳芳 ,
  • 王洪荣 ,
  • 张营 ,
  • 秦玥玥
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  • 扬州大学动物科学与技术学院, 扬州 225009
赵芳芳(1990-),女,黑龙江伊春人,博士研究生,研究方向为反刍动物营养代谢与瘤胃健康调控。E-mail:D160085@yzu.edu.cn

收稿日期: 2019-12-15

  网络出版日期: 2020-06-16

基金资助

国家自然科学基金项目(31872988);江苏省研究生科研创新计划项目(KYCX18_2375);江苏现代农业(肉羊)产业技术体系营养调控创新团队(JATS[2019]451)

Nutritional Characteristics of Grain as Energy Feed for Ruminants and Effects of High-Grain Diet on Gastrointestinal Tract Health

  • ZHAO Fangfang ,
  • WANG Hongrong ,
  • ZHANG Ying ,
  • QIN Yueyue
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  • College of Animal Science and Technology, Yangzhou University, Yangzhou 225009, China

Received date: 2019-12-15

  Online published: 2020-06-16

摘要

谷物是反刍动物饲粮的重要组分,也是易发酵碳水化合物的主要来源,其在维持动物生长发育、机体代谢和生产性能等方面发挥关键作用。在现代奶牛、肉牛和肉羊生产过程中,为了提高生产效率而过量使用谷物饲料,导致动物消化道健康受损,这已经成为现代反刍动物生产中的突出问题。本文以反刍动物饲粮中谷物利用与动物健康生产为例,阐述谷物作为反刍动物能量饲料与动物健康的关系,为反刍动物营养调控决策提供参考。

本文引用格式

赵芳芳 , 王洪荣 , 张营 , 秦玥玥 . 谷物作为反刍动物能量饲料的营养特性及高谷物饲粮对消化道健康的影响[J]. 动物营养学报, 2020 , 32(6) : 2476 -2482 . DOI: 10.3969/j.issn.1006-267x.2020.06.005

Abstract

Grains are an important ingredient of ruminant diets, and it is also the main easily fermented carbohydrate source. This feed resource plays a key role in maintaining the growth and development, metabolism and production performance for animals. In order to improve the production efficiency, a high-grain based diet have been used for high-yield ruminants, which lead to the damage of animal health and became a prominent problem in modern dairy cows, beef cattle and fattening sheep industry. This paper reviewed the linkages of grain diets and ruminant health, and provided reference for regulating ruminant nutrition.

参考文献

[1] NOCEK J E.Bovine acidosis:implications on laminitis[J].Journal of Dairy Science,1997,80(5):1005-1028.  
[2] KLEEN J L,HOOIJER G A,REHAGE J,et al.Subacute ruminal acidosis (SARA):a review[J].Journal of Veterinary Medicine Series A,2003,50(8):406-414.  
[3] ALZAHAL O,RUSTOMO B,ODONGO N E,et al.Technical note:a system for continuous recording of ruminal pH in cattle[J].Journal of Animal Science,2007,85(1):213-217.  
[4] KLEEN J L,HOOIJER G A,REHAGE J,et al.Subacute ruminal acidosis in Dutch dairy herds[J].The Veterinary Record,2009,164(22):681-683.  
[5] HUMER E,ZEBELI Q.Phytate in feed ingredients and potentials for improving the utilization of phosphorus in ruminant nutrition[J].Animal Feed Science and Technology,2015,209:1-15.
[6] 葛长荣,曹正辉,苏子峰.反刍动物小肠可利用淀粉代谢调控进展[J].饲料研究,2005(4):29-31.
[7] HERRERA-SALDANA R E,HUBER J T,POORE M H.Dry matter,crude protein,and starch degradability of five cereal grains[J].Journal of Dairy Science,1990,73(9):2386-2393.  
[8] HUNTINGTON G B.Starch utilization by ruminants:from basics to the bunk[J].Journal of Animal Science,1997,75(3):852-867.  
[9] GÓMEZ L M,POSADA S L,OLIVERA M.Starch in ruminant diets:a review[J].Revista Colombiana de Ciencias Pecuarias,2016,29(2):77-90.
[10] PLAIZIER J C,KRAUSE D O,GOZHO G N,et al.Subacute ruminal acidosis in dairy cows:the physiological causes,incidence and consequences[J].The Veterinary Journal,2008,176(1):21-31.  
[11] ASCHENBACH J R,PENNER G B,STUMPFF F,et al.Ruminant nutrition symposium:role of fermentation acid absorption in the regulation of ruminal pH[J].Journal of Animal Science,2011,89(4):1092-1107.  
[12] PLAIZIER J C,LI S C,DANSCHER A M,et al.Changes in microbiota in rumen digesta and feces due to a grain-based subacute ruminal acidosis (SARA) challenge[J].Microbial Ecology,2017,74(2):485-495.  
[13] PLAIZIER J C,LI S C,TUN H M,et al.Nutritional models of experimentally-induced subacute ruminal acidosis (SARA) differ in their impact on rumen and hindgut bacterial communities in dairy cows[J].Frontiers in Microbiology,2017,7:2128.
[14] PAN X H,XUE F G,NAN X M,et al.Illumina sequencing approach to characterize thiamine metabolism related bacteria and the impacts of thiamine supplementation on ruminal microbiota in dairy cows fed high-grain diets[J].Frontiers in Microbiology,2017,8:1818.
[15] 王洪荣,张红伟.硫胺素和硫水平对山羊人工瘤胃代谢和微生物菌群的影响[J].中国农业科学,2012,45(8):1595-1605.
[16] 邬宇航.亚急性瘤胃酸中毒对瘤胃、瓣胃上皮细胞增殖与凋亡的影响[D].硕士学位论文.呼和浩特:内蒙古农业大学,2013.
[17] 程萌.亚急性瘤胃酸中毒对奶山羊瘤胃上皮通透性及细胞连接蛋白表达的影响[D].硕士学位论文.呼和浩特:内蒙古农业大学,2016.
[18] KLEVENHUSEN F,HOLLMANN M,PODSTATZKY-LICHTENSTEIN L,et al.Feeding barley grain-rich diets altered electrophysiological properties and permeability of the ruminal wall in a goat model[J].Journal of Dairy Science,2013,96(4):2293-2302.  
[19] ENEMARK J M D,JØRGENSEN R J,ENEMARK P S.Rumen acidosis with special emphasis on diagnostic aspects of subclinical rumen acidosis:a review[J].Veterinarija Ir Zootechnika,2002,20(42):16-29.
[20] CHEN L M,LIU S M,WANG H R,et al.Relative significances of pH and substrate starch level to roles of Streptococcus bovis S1 in rumen acidosis[J].AMB Express,2016,6:80.
[21] RUSSELL J B,HINO T.Regulation of lactate production in Streptococcus bovis:a spiraling effect that contributes to rumen acidosis[J].Journal of Dairy Science,1985,68(7):1712-1721.  
[22] WANG H R,PAN X H,WANG C,et al.Effects of different dietary concentrate to forage ratio and thiamine supplementation on the rumen fermentation and ruminal bacterial community in dairy cows[J].Animal Production Science,2015,55(2):189-193.  
[23] LONG M,FENG W J,LI P,et al.Effects of the acid-tolerant engineered bacterial strain Megasphaera elsdenii H6F32 on ruminal pH and the lactic acid concentration of simulated rumen acidosis in vitro[J].Research in Veterinary Science,2014,96(1):28-29.  
[24] ASANUMA N,HINO T.Fructose bisphosphate aldolase activity and glycolytic intermediate concentrations in relation to lactate production in Streptococcus bovis[J].Anaerobe,2002,8(1):1-8.  
[25] ASANUMA N,YOSHII T,HINO T.Molecular characterization of CcpA and involvement of this protein in transcriptional regulation of lactate dehydrogenase and pyruvate formate-lyase in the ruminal bacterium Streptococcus bovis[J].Applied and Environmental Microbiology,2004,70(9):5244-5251.  
[26] DONG G Z,LIU S M,WU Y X,et al.Diet-induced bacterial immunogens in the gastrointestinal tract of dairy cows:impacts on immunity and metabolism[J].Acta Veterinaria Scandinavica,2011,53(1):48.
[27] OWENS F N,SECRIST D S,HILL W J,et al.Acidosis in cattle:a review[J].Journal of Animal Science,1998,76(1):275-286.  
[28] ASCHENBACH J R,GÄBEL G.Effect and absorption of histamine in sheep rumen:significance of acidotic epithelial damage[J].Journal of Animal Science,2000,78(2):464-470.  
[29] SUN X,YUAN X,CHEN L,et al.Histamine induces bovine rumen epithelial cell inflammatory response via NF-κB pathway[J].Cellular Physiology and Biochemistry,2017,42(3):1109-1119.  
[30] WRIGHT S D,RAMOS R A,TOBIAS P S,et al.CD14,a receptor for complexes of lipopolysaccharide (LPS) and LPS binding protein[J].Science,1990,249(4975):1431-1433.  
[31] GUHA M,MACKMAN N.LPS induction of gene expression in human monocytes[J].Cellular Signalling,2001,13(2):85-94.  
[32] 吴永霞.不同日粮模式对奶山羊和奶牛血中内毒素含量及免疫活化状态的影响[D].硕士学位论文,重庆:西南大学,2012.
[33] 陆天水,陈杰,汤艾菲,等.利用瘤胃缓冲剂调控奶牛血浆组胺内毒素水平与提高产奶性能的研究[J].中国奶牛,1992(6):45-47.
[34] ZEBELI Q,AMETAJ B N.Relationships between rumen lipopolysaccharide and mediators of inflammatory response with milk fat production and efficiency in dairy cows[J].Journal of Dairy Science,2009,92(8):3800-3809.  
[35] 王洪荣.反刍动物瘤胃酸中毒机制解析及其营养调控措施[J].动物营养学报,2014,26(10):3140-3148.
[36] BALCELLS J,ARIS A,SERRANO A,et al.Effects of an extract of plant flavonoids (Bioflavex) on rumen fermentation and performance in heifers fed high-concentrate diets[J].Journal of Animal Science,2012,90(13):4975-4984.  
[37] LILJEBERG H,ÅKERBERG A,BJÖRCK I.Resistant starch formation in bread as influenced by choice of ingredients or baking conditions[J].Food Chemistry,1996,56(4):389-394.  
[38] IQBAL S,ZEBELI Q,MAZZOLARI A,et al.Feeding barley grain steeped in lactic acid modulates rumen fermentation patterns and increases milk fat content in dairy cows[J].Journal of Dairy Science,2009,92(12):6023-6032.  
[39] SVIHUS B,UHLEN A K,HARSTAD O M.Effect of starch granule structure,associated components and processing on nutritive value of cereal starch:a review[J].Animal Feed Science and Technology,2005,122(3/4):303-320.
[40] IQBAL S,TERRILL S J,ZEBELI Q,et al.Treating barley grain with lactic acid and heat prevented sub-acute ruminal acidosis and increased milk fat content in dairy cows[J].Animal Feed Science and Technology,2012,172(3/4):141-149.
[41] HARDER H,KHOL-PARISINI A,ZEBELI Q.Modulation of resistant starch and nutrient composition of barley grain using organic acids and thermal cycling treatments[J].Starch-Stärke,2015,67(7/8):654-662.  
[42] SHEN Y Z,DING L Y,CHEN L M,et al.Feeding corn grain steeped in citric acid modulates rumen fermentation and inflammatory responses in dairy goats[J].Animal,2019,3(2):301-308.
[43] YANG Y,DONG G Z,WANG Z,et al.Treatment of corn with lactic acid or hydrochloric acid modulates the rumen and plasma metabolic profiles as well as inflammatory responses in beef steers[J].BMC Veterinary Research,2018,14(1):408.
[44] DECKARDT K,METZLER-ZEBELI B U,ZEBELI Q.Processing barley grain with lactic and tannic acid ameliorates rumen microbial fermentation and degradation of dietary fibre in vitro[J].Journal of the Science of Food and Agriculture,2016,96(1):223-231.  
[45] MARTÍNEZ T F,MOYANO F J,DÍAZ M,et al.Use of tannic acid to protect barley meal against ruminal degradation[J].Journal of the Science of Food and Agriculture,2005,85(8):1371-1378.  
[46] DUPUIS J H,LIU Q,YADA R Y.Methodologies for increasing the resistant starch content of food starches:a review[J].Comprehensive Reviews in Food Science and Food Safety,2014,13(6):1219-1234.  
[47] METZLER-ZEBELI B U,NEWMAN M A,GRÜLL D,et al.Consumption of transglycosylated starch down-regulates expression of mucosal innate immune response genes in the large intestine using a pig model[J].British Journal of Nutrition,2018,119(12):1366-1377.  
[48] NEWMAN M A,PETRI R M,GRÜLL D,et al.Transglycosylated starch modulates the gut microbiome and expression of genes related to lipid synthesis in liver and adipose tissue of pigs[J].Frontiers in Microbiology,2018,9:224.
[49] HARDER H,KHOL-PARISINI A,ZEBELI Q.Treatments with organic acids and pullulanase differently affect resistant starch and fiber composition in flour of various barley genotypes (Hordeum vulgare L.)[J].Starch-Stärke,2015,67(5/6):512-520.  
[50] ZHANG H X,JIN Z Y.Preparation of products rich in resistant starch from maize starch by an enzymatic method[J].Carbohydrate Polymers,2011,86(4):1610-1614.  
[51] HICKMAN B E,JANASWAMY S,YAO Y.Autoclave and β-amylolysis lead to reduced in vitro digestibility of starch[J].Journal of Agricultural and Food Chemistry,2009,57(15):7005-7012.  
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