综述 Review

乳源生物活性肽对动物肠道功能的影响及作用机制

  • 周健 ,
  • 熊霞 ,
  • 李建中 ,
  • 邓百川 ,
  • 黄鹏飞 ,
  • 印遇龙
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  • 1. 湖南师范大学生命科学学院, 动物营养与人体健康实验室, 长沙 410006;
    2. 中国科学院亚热带农业生态研究所, 中国科学院亚热带农业生态过程重点实验室, 长沙 410125

收稿日期: 2016-01-08

  网络出版日期: 2016-07-28

基金资助

国家自然科学基金(31572420,31301988,31272261,31402089)

Mechanisms and Effects of Milk-Derived Bioactive Peptides on Intestinal Functions of Animals

  • ZHOU Jian ,
  • XIONG Xia ,
  • LI Jianzhong ,
  • DENG Baichuan ,
  • HUANG Pengfei ,
  • YIN Yulong
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  • 1. Laboratory of Animal Nutrition and Human Health, College of Life Sciences, Hunan Normal University, Changsha 410006, China;
    2. Key Laboratory of Agro-Ecological Processes in Subtropical Region, Institute of Subtropical Agriculture, Chinese Academy of Sciences, Changsha 410125, China

Received date: 2016-01-08

  Online published: 2016-07-28

摘要

乳源生物活性肽(MDBPs)是指乳汁中存在的参与机体多种代谢途径和生理环节,具有特殊氨基酸排列和空间结构的相对较短的小分子肽段。近年的研究发现MDBPs能影响动物肠道黏膜营养物质吸收、减缓肠道氧化应激、改善肠道微生态环境以及提高肠道免疫力。本文将围绕MDBPs对动物肠道功能的影响及作用机制进行综述。

本文引用格式

周健 , 熊霞 , 李建中 , 邓百川 , 黄鹏飞 , 印遇龙 . 乳源生物活性肽对动物肠道功能的影响及作用机制[J]. 动物营养学报, 2016 , 28(7) : 1981 -1987 . DOI: 10.3969/j.issn.1006-267x.2016.07.002

Abstract

Milk-derived bioactive peptides(MDBPs), small peptides exist in milk, function on a variety of metabolic pathways and physiological process. Studies in recent years found that MDBPs could promote the intestinal absorption, slow down the intestinal oxidative stress symptoms, improve the intestinal microbial environment and enhance the intestinal immunity. This review summarized the mechanisms and the effects of MDBPs on intestinal functions of animals.

参考文献

[1] GILBERT E R,WONG E A,WEBB K E,Jr.Board-invited review:peptide absorption and utilization:implications for animal nutrition and health[J].Journal of Animal Science,2008,86(9):2135-2155.  
[2] KITTS D D,WEILER K.Bioactive proteins and peptides from food sources.Applications of bioprocesses used in isolation and recovery[J].Current Pharmaceutical Design,2003,9(16):1309-1323.  
[3] KORHONEN H,PIHLANTO A.Bioactive peptides:production and functionality[J].International Dairy Journal,2006,16(9):945-960.  
[4] NAGPAL R,BEHARE P,RANA R,et al.Bioactive peptides derived from milk proteins and their health beneficial potentials:an update[J].Food & Function,2011,2(1):18-27.  
[5] SPANIER B.Transcriptional and functional regulation of the intestinal peptide transporter PEPT1[J].The Journal of Physiology,2014,592(5):871-879.  
[6] 贺光祖,谭碧娥,肖昊,等.肠道小肽吸收利用机制及其营养功能[J].动物营养学报,2015,27(4):1047-1054.
[7] VIJ R,REDDI S,KAPILA S,et al.Transepithelial transport of milk derived bioactive peptide VLPVPQK[J].Food Chemistry,2016,190:681-688.
[8] DALMASSO G,THI THU NGUYEN H,YAN Y T,et al.MicroRNA-92b regulates expression of the oligopeptide transporter PepT1 in intestinal epithelial cells[J].American Journal of Physiology Gastrointestinal & Liver Physiology,2011,300(1):G52-G59.
[9] DANIEL H,KOTTRA G.The proton oligopeptide cotransporter family SLC15 in physiology and pharmacology[J].Pflügers Archiv,2004,447(5):610-618.
[10] WARSI J,DONG L,ELVIRA B,et al.SPAK dependent regulation of peptide transporters PEPT1 and PEPT2[J].Kidney & Blood Pressure Research,2014,39(4):388-398.  
[11] WARSI J,ELVIRA B,BISSINGER R,et al.Downregulation of peptide transporters PEPT1 and PEPT2 by oxidative stress responsive kinase OSR1[J].Kidney & Blood Pressure Research,2014,39(6):591-599.  
[12] HAN D N,ZHANG D H,WANG L P,et al.Protective effect of β-casomorphin-7 on cardiomyopathy of streptozotocin-induced diabetic rats via inhibition of hyperglycemia and oxidative stress[J].Peptides,2013,44:120-126.
[13] YIN H,MIAO J F,ZHANG Y S.Protective effect of β-casomorphin-7 on type 1 diabetes rats induced with streptozotocin[J].Peptides,2010,31(9):1725-1729.  
[14] ZOGHBI S,TROMPETTE A,CLAUSTRE J,et al.β-casomorphin-7 regulates the secretion and expression of gastrointestinal mucins through a μ-opioid pathway[J].American Journal of Physiology Gastrointestinal and Liver Physiology,2006,290(6):G1105-G1113.
[15] ZHANG W,SONG S X,LIU F,et al.Beta-casomorphin-7 prevents epithelial-mesenchymal transdifferentiation of NRK-52E cells at high glucose level:involvement of AngⅡ-TGF-β1 pathway[J].Peptides,2015,70:37-44.
[16] DALZIEL J E,SPENCER N J,DUNSTAN K E,et al.An in vitro rat model of colonic motility to determine the effect of β-casomorphin-5 on propagating contractions[J].Food & Function,2014,5(11):2768-2774.  
[17] TIDONA F,CRISCIONE A,GUASTELLA A,et al.Bioactive peptides in dairy products[J].Italian Journal of Animal Science,2009,8(3):315-340.
[18] GARCÍA-NEBOT M J,BARBERÁ R,ALEGRÍA A.Iron and zinc bioavailability in Caco-2 cells:influence of caseinophosphopeptides[J].Food Chemistry,2013,138(2/3):1298-1303.
[19] GARCíA-NEBOT M J,ALEGRíA A,BARBERá R,et al.Effect of caseinophosphopeptides from αs- and β-casein on iron bioavailability in HuH7 cells[J].Journal of Agricultural and Food Chemistry,2015,63(30):6757-6763.  
[20] BOUTROU R,COIRRE E,JARDIN J,et al.Phosphorylation and coordination bond of mineral inhibit the hydrolysis of the β-casein (1-25) peptide by intestinal brush-border membrane enzymes[J].Journal of Agricultural and Food Chemistry,2010,58(13):7955-7961.  
[21] 李垚,李玲,苏全,等.小肽螯合铜、铁、锰、锌、硒对仔猪生长性能及代谢影响[J].东北农业大学学报,2016,47(2):46-53.
[22] MEJáRE M,BüLOW L.Metal-binding proteins and peptides in bioremediation and phytoremediation of heavy metals[J].Trends in Biotechnology,2001,19(2):67-73.  
[23] BHATTACHARYYA A,CHATTOPADHYAY R,MITRA S,et al.Oxidative stress:an essential factor in the pathogenesis of gastrointestinal mucosal diseases[J].Physiological Reviews,2014,94(2):329-354.  
[24] CAI X,CHEN X L,WANG X C,et al.Pre-protective effect of lipoic acid on injury induced by H2O2 in IPEC-J2 cells[J].Molecular and Cellular Biochemistry,2013,378(1/2):73-81.
[25] ZHU L H,ZHAO K L,CHEN X L,et al.Impact of weaning and an antioxidant blend on intestinal barrier function and antioxidant status in pigs[J].Journal of Animal Science,2012,90(8):2581-2589.  
[26] WEBER C.IBD:lactococcus lactis alleviates oxidative stress and colitis in mice[J].Nature Reviews Gastroenterology & Hepatology,2015,12(8):429.
[27] ZHANG Q X,JIN M M,ZHANG L,et al.Hydrophobicity of whey protein hydrolysates enhances the protective effect against oxidative damage on PC 12 cells[J].Journal of Dairy Research,2015,82(1):1-7.  
[28] RIVAL S G,FORNAROLI S,BOERIU C G,et al.Caseins and casein hydrolysates.1.Lipoxygenase inhibitory properties[J].Journal of Agricultural and Food Chemistry,2001,49(1):287-294.  
[29] CHEISON S C,WANG Z,XU S Y.Preparation of whey protein hydrolysates using a single-and two-stage enzymatic membrane reactor and their immunological and antioxidant properties:characterization by multivariate data analysis[J].Journal of Agricultural and Food Chemistry,2007,55(10):3896-3904.  
[30] SILVA S V,MALCATA F X.Caseins as source of bioactive peptides[J].International Dairy Journal,2005,15(1):1-15.  
[31] BHAT Z F,KUMAR S,BHAT H F.Bioactive peptides of animal origin:a review[J].Journal of Food Science and Technology,2015,52(9):5377-5392.  
[32] PEÑA-RAMOS E A,XIONG Y L,ARTEAGA G E.Fractionation and characterisation for antioxidant activity of hydrolysed whey protein[J].Journal of the Science of Food and Agriculture,2004,84(14):1908-1918.  
[33] HOOPER L V,LITTMAN D R,MACPHERSON A J.Interactions between the microbiota and the immune system[J].Science,2012,336(6086):1268-1273.  
[34] CHOI M K,LE M T,NGUYEN D T,et al.Genome-level identification,gene expression,and comparative analysis of porcine β-defensin genes[J].BMC Genetics,2012,13(1):98.
[35] MATHEW A G,SUTTON A L,SCHEIDT A B,et al.Effect of galactan on selected microbial populations and pH and volatile fatty acids in the ileum of the weanling pig[J].Journal of Animal Science,1993,71(6):1503-1509.
[36] KERMAN D H,DESHPANDE A R.Gut microbiota and inflammatory bowel disease:the role of antibiotics in disease management[J].Postgraduate Medicine,2014,126(4):7-19.  
[37] MUKIZA C N,DUBREUIL J D.Escherichia coli heat-stable toxin b impairs intestinal epithelial barrier function by altering tight junction proteins[J].Infection and Immunity,2013,81(8):2819-2827.  
[38] ROSELLI M,FINAMORE A,BRITTI M S,et al.The novel porcine Lactobacillus sobrius strain protects intestinal cells from enterotoxigenic Escherichia coli K88 infection and prevents membrane barrier damage[J].The Journal of Nutrition,2007,137(12):2709-2716.
[39] JOHNSON A M,KAUSHIK R S,ROTELLA N J,et al.Enterotoxigenic Escherichia coli modulates host intestinal cell membrane asymmetry and metabolic activity[J].Infection and Immunity,2009,77(1):341-347.  
[40] Otvos L,Jr.The Short proline-rich antibacterial peptide family[J].Cellular and Molecular Life Sciences,2002,59(7):1138-1150.  
[41] GOBBETTI M,MINERVINI F,RIZZELLO C G.Angiotensin Ⅰ-converting-enzyme-inhibitory and antimicrobial bioactive peptides[J].International Journal of Dairy Technology,2004,57(2/3):173-188.
[42] RYDLO T,MILTZ J,MOR A.Eukaryotic antimicrobial peptides:promises and premises in food safety[J].Journal of Food Science,2006,71(9):R125-R135.
[43] ZHOU N,TIELEMAN P,VOGEL H J.Molecular dynamics simulations of bovine lactoferricin:turning a helix into a sheet[J].Biometals,2004,17(3):217-223.  
[44] YOON J H,INGALE S L,KIM J S,et al.Effects of dietary supplementation with antimicrobial peptide-P5 on growth performance,apparent total tract digestibility,faecal and intestinal microflora and intestinal morphology of weanling pigs[J].Journal of the Science of Food and Agriculture,2013,93(3):587-592.  
[45] JIANG Z Y,SUN L H,LIN Y C,et al.Effects of dietary glycyl-glutamine on growth performance,small intestinal integrity,and immune responses of weaning piglets challenged with lipopolysaccharide[J].Journal of Animal Science,2009,87(12):4050-4056.  
[46] REDDY K V R,YEDERY R D,ARANHA C.Antimicrobial peptides:premises and promises[J].International Journal of Antimicrobial Agents,2004,24(6):536-547.  
[47] HUANG H W.Free energies of molecular bound states in lipid bilayers:lethal concentrations of antimicrobial peptides[J].Biophysical Journal,2009,96(8):3263-3272.  
[48] OWENS B M J,SIMMONS A.Intestinal stromal cells in mucosal immunity and homeostasis[J].Mucosal Immunology,2013,6(2):224-234.  
[49] GAUTHIER S F,POULIOT Y,SAINT-SAUVEUR D.Immunomodulatory peptides obtained by the enzymatic hydrolysis of whey proteins[J].International Dairy Journal,2006,16(11):1315-1323.  
[50] ZHOU J H,MA L L,XU H H,et al.Immunomodulating effects of casein-derived peptides QEPVL and QEPV on lymphocytes in vitro and in vivo[J].Food & Function,2014,5(9):2061-2069.  
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