浙江农业学报 ›› 2018, Vol. 30 ›› Issue (8): 1435-1444.DOI: 10.3969/j.issn.1004-1524.2018.08.23
• 综述 • 上一篇
宗秋芳1, 钦伟云1, 霍永久1,2, 吴圣龙1,2, 包文斌1,2,*
收稿日期:
2017-11-27
出版日期:
2018-08-25
发布日期:
2018-08-28
通讯作者:
包文斌,E-mail: 作者简介:
宗秋芳(1994—),女,河南济源人,硕士研究生,研究方向为猪抗病育种。E-mail: zongqiufang@163.com
基金资助:
ZONG Qiufang1, QIN Weiyun1, HUO Yongjiu1,2, WU Shenglong1,2, BAO Wenbin1,2,*
Received:
2017-11-27
Online:
2018-08-25
Published:
2018-08-28
摘要: 紧密连接是肠上皮细胞间的主要连接方式,对维持猪肠道黏膜上皮机械屏障和通透性起着重要作用。紧密连接蛋白是构成肠道黏膜屏障、决定肠壁通透性的重要蛋白质分子,对紧密连接的组成和功能发挥有很大影响。其中,ZO-1(zonula occludens 1)、Occludin(OCLN)和Claudins(CLDN)是构成细胞间紧密连接的重要蛋白分子,在维持细胞极性和紧密连接屏障功能方面起着重要作用。文章综述了ZO-1、Occludin和Claudins等猪紧密连接蛋白的结构、生物学功能以及基因表达情况,并对近年来这些蛋白的研究进展进行归纳总结,为进一步研究猪紧密连接相关蛋白的功能,寻找腹泻和肠道炎症等疾病的治疗方案提供一定的理论基础。
中图分类号:
宗秋芳, 钦伟云, 霍永久, 吴圣龙, 包文斌. 猪肠上皮紧密连接蛋白研究进展[J]. 浙江农业学报, 2018, 30(8): 1435-1444.
ZONG Qiufang, QIN Weiyun, HUO Yongjiu, WU Shenglong, BAO Wenbin. Research progress of intestinal epithelial tight junction proteins in piglets[J]. , 2018, 30(8): 1435-1444.
[1] YU Y B, LI Y Q.Enteric glial cells and their role in the intestinal epithelial barrier[J]. World Journal of Gastroenterology, 2014, 20(32):11273-11280. [2] SALVO R E, ALONSO C C, PARDO C C, et al.The intestinal barrier function and its involvement in digestive disease[J]. Revista Espanola de Enfermedades Digestivas, 2015, 107(11):686-696. [3] MERGA Y, CAMPBELLl B J, RHODES J M.Mucosal barrier, bacteria and inflammatory bowel disease: possibilities for therapy[J]. Digestive Diseases, 2014, 32(4):475-483. [4] DE MEDINA F S, ROMERO C I, MASCARAQUE C, et al. Intestinal inflammation and mucosal barrier function[J]. Inflammatory Bowel Diseases, 2014, 20(12):2394-2404. [5] ALONSO C, VICARIO M, PIGRAU M, et al.Intestinal barrier function and the brain-gut axis[J]. Advances in Experimental Medicine and Biology, 2014,817: 73-113. [6] ANDERSON J M, VAN ITALLIE C M. Physiology and function of the tight junction[J]. Cold Spring Harbor Perspectives in Biology, 2009, 1(2):a002584. [7] GROSCHWITZ K R, HOGAN S P.Intestinal barrier function: molecular regulation and disease pathogenesis[J]. Journal of Allergy and Clinical Immunology, 2009, 124(1):3-20. [8] TSUKITA S, YAMAZAKI Y, KATSUNO T, et al.Tight junction-based epithelial microenvironment and cell proliferation[J]. Oncogene, 2008, 27(55):6930-6938. [9] ZIHNI C, MILLS C, MATTER K, et al.Tight junctions: from simple barriers to multifunctional molecular gates[J]. Nature reviews Molecular cell Biology, 2016, 17(9):564-580. [10] CEREIJIDO M, SHOSHANI L, CONTRERAS R G.Molecular physiology and pathophysiology of tight junctions. I. Biogenesis of tight junctions and epithelial polarity[J]. American Journal of Physiology-Gastrointestinal and Liver Physiology, 2000, 279(3):G477-G482. [11] BAZZONI G, MARTINEZ-ESTRADA O M, ORSENIGO F, et al. Interaction of junctional adhesion molecule with the tight junction components ZO-1, cingulin, and occludin[J]. Journal of Biological Chemistry, 2000, 275(27):20520-20526. [12] HIRASE T, KAWASHIMA S, WONG E Y, et al.Regulation of tight junction permeability and occludin phosphorylation by Rhoa-p160ROCK-dependent and-independent mechanisms[J]. Journal of Biological Chemistry, 2001, 276(13):10423-10431. [13] CLAYBURGH D R, SHEN L, TURNER J R.A porous defense: the leaky epithelial barrier in intestinal disease[J]. Laboratory Investigation, 2004, 84(3):282-291. [14] SHIH D Q, TARGAN S R.Immunopathogenesis of inflammatory bowel disease[J]. World Journal of Gastroenterology, 2008, 14(3):390-400. [15] SUZUKI T.Regulation of intestinal epithelial permeability by tight junctions[J]. Cellular and Molecular Life Sciences, 2013, 70(4):631-659. [16] DOKLADNY K, ZUHL M N, MOSELEY P L.Intestinal epithelial barrier function and tight junction proteins with heat and exercise[J]. Journal of Applied Physiology, 2016, 120(6): 692-701. [17] GONZÁLEZ-MARISCAL L, LECHUGA S, GARAY E. Role of tight junctions in cell proliferation and cancer[J]. Progress in Histochemistry and Cytochemistry, 2007, 42(1):1-57. [18] 蒋义, 贾刚, 惠明弟, 等. 胰高血糖素样肽-2 对断奶仔猪肠上皮紧密连接蛋白相关基因表达的影响[J]. 动物营养学报, 2012, 24(9):1785-1792. JIANG Y, JIA G, HUI M D, et al.Effects of glucagon peptide-2 on expression of claudin-related genes in weaned piglets[J]. [19] LALLÈSA J P, BOUDRYA G, FAVIERA C, et al. Gut function and dysfunction in young pigs: physiology[J]. Animal Research, 2004, 53(4):301-316. [20] REN W Y, WU K F, LI X, et al.Age-related changes in small intestinal mucosa epithelium architecture and epithelial tight junction in rat models[J]. Aging Clinical and Experimental Research, 2014, 26(2):183-191. [21] SCHNEEBERGER E E, LYNCH R D.The tight junction: a multifunctional complex[J]. American Journal of Physiology-Cell Physiology, 2004, 286(6):C1213-C1228. [22] NOMME J, FANNING A S, CAFFREY M, et al.The Src homology 3 domain is required for junctional adhesion molecule binding to the third PDZ domain of the scaffolding protein ZO-1[J]. Journal of Biological Chemistry, 2011, 286(50):43352-43360. [23] IM Y J, PARK S H, RHO S H, et al.Crystal structure of GRIP1 PDZ6-peptide complex reveals the structural basis for class II PDZ target recognition and PDZ domain-mediated multimerization[J]. Journal of Biological Chemistry, 2003, 278(10):8501-8507. [24] JESAITIS L A, GOODENOUGH D A.Molecular characterization and tissue distribution of ZO-2, a tight junction protein homologous to ZO-1 and the drosophila discs-large tumor suppressor protein[J]. The Journal of Cell Biology, 1994, 124(6):949-961. [25] SAITOU M, ANDO-AKATSUKA Y, ITOH M, et al.Mammalian occludin in epithelial cells: its expression and subcellular distribution[J]. European Journal of Cell Biology, 1997, 73(3):222-231. [26] MANDELL K J, PARKOS C A.The JAM family of proteins[J]. Advanced Drug Delivery Reviews, 2005, 57(6):857-867. [27] FURUSE M, FUJITA K, HIIRAGI T, et al.Claudin-1 and-2: novel integral membrane proteins localizing at tight junctions with no sequence similarity to occludin[J]. The Journal of Cell Biology, 1998, 141(7):1539-1550. [28] SWISSHELM K, MACHL A, PLANITZER S, et al.SEMP1, a senescence-associated cDNA isolated from human mammary epithelial cells, is a member of an epithelial membrane protein superfamily[J]. Gene, 1999, 226(2):285-295. [29] ITOH M, FURUSE M, MORITA K, et al.Direct binding of three tight junction-associated MAGUKs, ZO-1, ZO-2, and ZO-3, with the COOH termini of claudins[J]. The Journal of Cell Biology, 1999, 147(6):1351-1363. [30] 张布衣, 姚根有. 紧密连接蛋白 claudins 的研究进展[J]. 国际病理科学与临床杂志, 2006, 26(1):14-17. ZHANG B Y, YAO G Y.Research progress of tight junction proteins-claudins[J]. Joural of International Pathology and Clinical Medicine, 2006, 26(1): 14-17.(in Chinese with English abstract) [31] 马怡然,尚德淑,方文刚,等. 细胞紧密连接的结构组成及其调控的研究进展[J]. 解剖科学进展, 2010, 16(1):71-74. MA Y R, SHANG D S, FANG W G, et al.The process of cell tight junction structure and regulation[J]. [32] TSUKITA S, YAMAZAKI Y, KATSUNO T, et al.Tight junction-based epithelial microenvironment and cell proliferation[J]. Oncogene, 2008, 27(55):6930-6939. [33] FANNING A S, MITIC L L, ANDERSON J M.Transmembrane proteins in the tight junction barrier[J]. Journal of the American Society of Nephrology, 1999, 10(6):1337-1345. [34] MIR H, MEENA A S, CHAUDHRY K K, et al.Occludin deficiency promotes ethanol-induced disruption of colonic epithelial junctions, gut barrier dysfunction and liver damage in mice[J]. Biochimica et Biophysica Acta, 2016, 1860(4):765-774. [35] XIAO L, RAO J N, CAO S, ET AL.Long noncoding RNA SPRY4-IT1 regulates intestinal epithelial barrier function by modulating the expression levels of tight junction proteins[J]. Molecular Biology of the Cell, 2016, 27(4):617-626. [36] 高红梅. ETEC 对断奶腹泻仔猪胃肠道紧密连接蛋白 ZO-1 的影响[D]. 武汉:华中农业大学,2010. GAO H M.Effects of ETEC with gastrointestinal tight junction protein ZO-1 on early weanling and diarrhea pigs[D]. Wuhan: Huazhong Agricultural University, 2010. (in Chinese with English abstract) [37] 李秋霞,罗茂林,李茹柳,等. 紧密连接蛋白ZO-1研究概述[J].广州中医药大学学报,2007,24(6):523-526. LI Q X, LUO M L, LI R L, et al.Summary of tight junction protein ZO-1[J]. [38] 关莉莉,宫德正,田楠,等. 胰高血糖素样肽-2 对小鼠小肠缺血/再灌注损伤的保护作用[J]. 中国应用生理学杂志,2005,21(2):192-195. GUAN L L, GUAN D Z, TIAN N, et al.Protective effects of glucagon-like peptide 2 on intestinal ischemia/reperfusion injury in mice[J]. [39] WEILER F, MARBE T, SCHEPPACH W, et al.Influence of protein kinase C on transcription of the tight junction elements ZO-1 and occluding[J]. Journal of cellular physiology, 2005, 204(1):83-86. [40] 王丽姣,周国华.肠黏膜机械屏障的研究进展[J]. 医学综述,2011,17(24):3702-3704. WANG L J, ZHOU G H.Research progress of intestinal mucosal mechanical barrier[J]. [41] 叶强,欧希龙.应激致肠道屏障功能损伤的机制[J]. 现代医学, 2011,39(5):619-621. YE Q, OU X L.Mechanism of stress-induced intestinal barrier dysfunction[J]. [42] 罗涵,周其全. 紧密连接蛋白 claudins 磷酸化在胃肠屏障功能中的作用[J]. 胃肠病学,2011,16(7):438-441. LUO H, ZHOU Q Q.Role of tight junction protein Claudins phosphorylation in gastrointestinal barrier function[J]. [43] 徐胤, 王璞, 沈才飞, 等. 食管鳞癌及癌前病变组织中紧密连接蛋白claudin3和4的表达及临床病理意义[J]. 第三军医大学学报, 2014, 36(9):873-877. XU Y, WANG P, SHEN C F, et al.Expression and clinicopathological significance of claudin 3 and 4 in esophageal squamous carcinoma and precancerous lesion[J]. [44] SUZUKI A, OHNO S.The PAR-aPKC system: lessons in polarity[J]. Journal of Cell Science, 2006, 119(6):979-987. [45] 曹景利,朱学良. 上皮细胞极性的建立和维持[J]. 中国细胞生物学学报,2010,32(2):163-168. CAO J L, ZHU X L.The epithelial cell polarity[J]. [46] YONEMURA S, ITOH M, NAGAFUCHI A, et al.Cell-to-cell adherens junction formation and actin filament organization: similarities and differences between non-polarized fibroblasts and polarized epithelial cells[J]. Journal of Cell Science, 1995, 108(1):127-142. [47] FANNING A S, MA T Y, ANDERSON J M.Isolation and functional characterization of the actin binding region in the tight junction protein ZO-1[J]. The FASEB Journal, 2002, 16(13):1835-1837. [48] WEBB P G, SPILLMAN M A, BAUMGARTNER H K.Claudins play a role in normal and tumor cell motility[J]. BMC Cell Biology, 2013, 14(1):19. [49] ANDO-AKATSUKA Y, YONEMURA S, ITOH M, et al.Differential behavior of E-cadherin and occludin in their colocalization with ZO-1 during the establishment of epithelial cell polarity[J]. Journal of Cellular Physiology, 1999, 179(2):115-125. [50] SILJAMAKI E, RAIKO L, TORISEVA M, et al.p38δ mitogen-activated protein kinase regulates the expression of tight junction protein ZO-1 in differentiating human epidermal keratinocytes[J]. Archives of Dermatological Research, 2014, 306(2):131-141. [51] SMALLEY K S, BRAFFORD P, HAASS N K, et al.Up-regulated expression of zonula occludens protein-1 in human melanoma associates with N-cadherin and contributes to invasion and adhesion[J]. The American Journal of Pathology, 2005, 166(5):1541-1554. [52] SASAKI K, KOKAI Y, ATSUMI S, et al.Difference in the expression of three tight junction proteins, barmotin, occludin, and ZO-1, in phenotypically different human colon cancer cell lines[J]. Medical Electron Microscopy, 1998, 31(2):61-67. [53] ITO S, YANAI M, YAMAGUCHI S, et al.Regulation of tight-junction integrity by insulin in an [54] WOLBURG H, WOLBURG-BUCHHOLZ K, KRAUS J, et al.Localization of claudin-3 in tight junctions of the blood-brain barrier is selectively lost during experimental autoimmune encephalomyelitis and human glioblastoma multiforme[J]. Acta Neuropathologica, 2003, 105(6):586-592. [55] JIA W, LU R, MARTIN T A, et al.The role of claudin5 in bloodbrain barrier (BBB) and brain metastases[J]. Molecular Medicine Reports, 2014, 9(3):779-785. [56] HAWKINS B T, DAVIS T P.The blood-brain barrier/neurovascular unit in health and disease[J]. Pharmacological Reviews, 2005, 57(2):173-185. [57] YOUAKIM A, AHDIEH M.Interferon-gamma decreases barrier function in T84 cells by reducing ZO-1 levels and disrupting apical actin[J]. American Journal of Physiology-Gastrointestinal and Liver Physiology, 1999, 276(5):G1279-G1288. [58] 刘海萍,胡彩虹,徐勇. 早期断奶对仔猪肠通透性和肠上皮紧密连接蛋白Occludin mRN表达的影响[J]. 动物营养学报,2008,20(4):442-446. LIU H P, HU C H, XU Y.Effects of early weaning on intestinal permeability and tight junction protein occludin mRNA expression levels of piglets[J]. [59] 夏天. 紧密连接蛋白Claudin-1在大肠杆菌性腹泻仔猪胃肠组织中的表达及意义[D]. 武汉:华中农业大学,2010. XIA T.Expression and significance of Claudin-1 in the gastrointestinal tract of diarrhea piglets infected with the [60] YU C, JIA G, DENG Q, et al.The effects of glucagon-like peptide-2 on the tight junction and barrier function in IPEC-J2 cells through phosphatidylinositol 3-kinase-protein kinase B-mammalian target of rapamycin signaling pathway[J]. Asian-Australasian Journal of Animal Sciences, 2016, 29(5):731-738. [61] ZHANG B, GUO Y.Supplemental zinc reduced intestinal permeability by enhancing occludin and zonula occludens protein-1 (ZO-1) expression in weaning piglets[J]. British Journal of Nutrition, 2009, 102(5):687-693. [62] 吴善斌,王学清,郭鸿飞,等. Occludin 蛋白在重症急性胰腺炎小鼠肠上皮细胞的表达[J]. 中国医科大学学报, 2011, 40(3):217-219. WU S B, WANG X Q, GUO H F, et al.Expression of occludin protein in intestinal epithelial cells in mice model of severe acute pancreatitis[J]. [63] SHIN T K, YI Y J, KIM J C, et al.Reducing the dietary omega-6 to omega-3 polyunsaturated fatty acid ratio attenuated inflammatory indices and sustained epithelial tight junction integrity in weaner pigs housed in a poor sanitation condition[J]. Animal Feed Science and Technology, 2017, 22(4):1-9. [64] FAN P, TAN Y, JIN K, et al.Supplemental lipoic acid relieves post-weaning diarrhoea by decreasing intestinal permeability in rats[J]. Journal of Animal Physiology and Animal Nutrition, 2017, 101(1):136-146. [65] PEARCE S C, SCHWEER W P, SCHWARTZ K J, et al.Pig jejunum protein profile changes in response to a porcine epidemic diarrhea virus challenge[J]. Journal of Animal Science, 2016, 94(3):412-415. [66] UKENA S N, SINGH A, DRINGENBERG U, et al.Probiotic [67] 张影超,王希彪,崔世泉,等. 肠上皮紧密连接蛋白mRNA的表达与仔猪断奶腹泻关系的研究[J]. 中国畜牧兽医,2014,41(9):221-224. ZHANG Y C, WANG X B, CUI S Q, et al.Study on relationship between intestinal epithelium tight junction proteins mRNA expression and piglets weaning diarrhea[J]. [68] 王改. 姜黄素对肠单层上皮氧化应激损伤的保护作用[D].石家庄:河北医科大学,2010. WANG G.The protective effect of curcumin on disruption of tight junctions and barrier dysfunctions[D]. Shijiazhuang: Hebei Medical University, 2010. (in Chinese with English abstract) [69] 荀文娟,周汉林,侯冠彧,等. 姜黄素对早期断奶仔猪回肠黏膜形态, 紧密连接蛋白和炎性因子基因表达以及血清免疫球蛋白水平的影响[J]. 动物营养学报,2016,28(3):826-833. GOU W J, ZHOU H L, HOU G Y, et al.Effects of curcumin on ileum mucosal morphology, gene expression of tight junction proteins and inflammatory cytokines, and serum immunoglobulin levels of early weaning piglets[J]. [70] 蒙洪娇,姜海龙,朱世馨,等. 氧化锌影响断奶仔猪肠道屏障功能的研究进展[J]. 黑龙江畜牧兽医,2017 (5):77-79. MENG H Q, JIANG H L, ZHU S X, et al.The study of the effect of zinc oxide on intestinal barrier function in weaned piglets[J]. [71] KATHI S.Bioenergy from phytoremediated phytomass of aquatic plants via gasification[M]// PRASAD M N V. Bioremediation and Bioeconomy, Elsevier, 2016: 111-128. [72] PIEPER R, MARTIN L, SCHUNTER N, et al.Impact of high dietary zinc on zinc accumulation, enzyme activity and proteomic profiles in the pancreas of piglets[J]. Journal of Trace Elements in Medicine and Biology, 2015, 30: 30-36. [73] 胡彩虹,钱仲仓,刘海萍,等. 高锌对早期断奶仔猪肠黏膜屏障和肠上皮细胞紧密连接蛋白表达的影响[J]. 畜牧兽医学报,2009,40(11):1638-1644. HU C H, QIAN Q C, LIU H P, et al.Effect of high level of zinc oxide on tight junction protein expression in intestinal epithelial cells and intestinal mucosal barrier in early weaning piglets[J]. [74] 邓宸玺,王自蕊,游金明,等. 丙氨酰-谷氨酰胺二肽对仔猪小肠上皮细胞间紧密连接蛋白occludin定位与表达的影响[J]. 动物营养学报,2014,26(3):694-700. DENG C X, WANG Z X, YOU J M, et al.Effects of alanyl-glutamine dipeptide on localization and expression of tight junction protein occludin in small intestinal epithelial cells from piglets[J]. [75] 张中伟,秦环龙. 乳酸菌对感染肠上皮细胞通透性及紧密连接蛋白表达的影响[J]. 肠外与肠内营养,2007,14(4):193-196. ZHANG Z W, QIN H L.Effect of lactobacillus plantarun onlly regulating intestinal epithelial permeability and tight junction response to pathogenic bacteria[J]. |
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