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本文引用的文献

1
Quantitative estimation of sialic acids. II. A colorimetric resorcinol-hydrochloric acid method.唾液酸的定量测定。II. 比色间苯二酚 - 盐酸法。
Biochim Biophys Acta. 1957 Jun;24(3):604-11. doi: 10.1016/0006-3002(57)90254-8.
2
Helicobacter pylori SabA adhesin in persistent infection and chronic inflammation.幽门螺杆菌唾液酸结合黏附素在持续性感染和慢性炎症中的作用
Science. 2002 Jul 26;297(5581):573-8. doi: 10.1126/science.1069076.
3
Lactotetraosylceramide, a novel glycosphingolipid receptor for Helicobacter pylori, present in human gastric epithelium.乳糖四糖神经酰胺,一种存在于人类胃上皮中的新型幽门螺杆菌糖鞘脂受体。
J Biol Chem. 2002 May 31;277(22):19709-19. doi: 10.1074/jbc.M201113200. Epub 2002 Mar 25.
4
Helicobacter pylori-binding gangliosides of human gastric adenocarcinoma.人胃腺癌中幽门螺杆菌结合神经节苷脂
Glycobiology. 2001 Nov;11(11):935-44. doi: 10.1093/glycob/11.11.935.
5
Living dangerously: how Helicobacter pylori survives in the human stomach.险境求生:幽门螺杆菌如何在人类胃部存活。
Nat Rev Mol Cell Biol. 2001 Jun;2(6):457-66. doi: 10.1038/35073084.
6
Flow cytometric analysis of the localization of Helicobacter pylori antigens during different growth phases.幽门螺杆菌抗原在不同生长阶段定位的流式细胞术分析。
FEMS Immunol Med Microbiol. 2001 Apr;30(3):173-9. doi: 10.1111/j.1574-695X.2001.tb01567.x.
7
Inhibition of nonopsonic Helicobacter pylori-induced activation of human neutrophils by sialylated oligosaccharides.唾液酸化寡糖对非调理素性幽门螺杆菌诱导的人中性粒细胞活化的抑制作用。
Glycobiology. 2000 Nov;10(11):1171-81. doi: 10.1093/glycob/10.11.1171.
8
The neutrophil-activating protein (HP-NAP) of Helicobacter pylori is a protective antigen and a major virulence factor.幽门螺杆菌的中性粒细胞激活蛋白(HP-NAP)是一种保护性抗原和主要毒力因子。
J Exp Med. 2000 May 1;191(9):1467-76. doi: 10.1084/jem.191.9.1467.
9
Treatment of Helicobacter pylori infection in rhesus monkeys using a novel antiadhesion compound.使用新型抗黏附化合物治疗恒河猴幽门螺杆菌感染
Gastroenterology. 1999 Dec;117(6):1316-25. doi: 10.1016/s0016-5085(99)70282-9.
10
Helicobacter pylori and neutrophils: sialic acid-dependent binding to various isolated glycoconjugates.幽门螺杆菌与中性粒细胞:唾液酸依赖性结合各种分离的糖缀合物。
Infect Immun. 1999 Dec;67(12):6309-13. doi: 10.1128/IAI.67.12.6309-6313.1999.

幽门螺杆菌与复合神经节苷脂

Helicobacter pylori and complex gangliosides.

作者信息

Roche Niamh, Angström Jonas, Hurtig Marina, Larsson Thomas, Borén Thomas, Teneberg Susann

机构信息

Institute of Medical Biochemistry, Göteborg University, SE 405 30 Göteborg, Sweden.

出版信息

Infect Immun. 2004 Mar;72(3):1519-29. doi: 10.1128/IAI.72.3.1519-1529.2004.

DOI:10.1128/IAI.72.3.1519-1529.2004
PMID:14977958
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC356016/
Abstract

Recognition of sialic acid-containing glycoconjugates by the human gastric pathogen Helicobacter pylori has been repeatedly demonstrated. To investigate the structural requirements for H. pylori binding to complex gangliosides, a large number of gangliosides were isolated and characterized by mass spectrometry and proton nuclear magnetic resonance. Ganglioside binding of sialic acid-recognizing H. pylori strains (strains J99 and CCUG 17874) and knockout mutant strains with the sialic acid binding adhesin SabA or the NeuAcalpha3Galbeta4GlcNAcbeta3Galbeta4GlcNAcbeta-binding neutrophil-activating protein HPNAP deleted was investigated using the thin-layer chromatogram binding assay. The wild-type bacteria bound to N-acetyllactosamine-based gangliosides with terminal alpha3-linked NeuAc, while gangliosides with terminal NeuGcalpha3, NeuAcalpha6, or NeuAcalpha8NeuAcalpha3 were not recognized. The factors affecting binding affinity were identified as (i) the length of the N-acetyllactosamine carbohydrate chain, (ii) the branches of the carbohydrate chain, and (iii) fucose substitution of the N-acetyllactosamine core chain. While the J99/NAP(-) mutant strain displayed a ganglioside binding pattern identical to that of the parent J99 wild-type strain, no ganglioside binding was obtained with the J99/SabA(-) mutant strain, demonstrating that the SabA adhesin is the sole factor responsible for the binding of H. pylori bacterial cells to gangliosides.

摘要

人类胃部病原体幽门螺杆菌对含唾液酸糖缀合物的识别已得到反复证实。为了研究幽门螺杆菌与复合神经节苷脂结合的结构要求,通过质谱和质子核磁共振对大量神经节苷脂进行了分离和表征。使用薄层色谱结合试验研究了识别唾液酸的幽门螺杆菌菌株(J99和CCUG 17874菌株)以及缺失唾液酸结合黏附素SabA或Neuα3Galβ4GlcNAcβ3Galβ4GlcNAcβ结合的中性粒细胞激活蛋白HPNAP的基因敲除突变菌株的神经节苷脂结合情况。野生型细菌与具有末端α3连接的NeuAc的N-乙酰乳糖胺基神经节苷脂结合,而具有末端NeuGcα3、Neuα6或Neuα8Neuα3的神经节苷脂则未被识别。影响结合亲和力的因素被确定为:(i)N-乙酰乳糖胺碳水化合物链的长度;(ii)碳水化合物链的分支;(iii)N-乙酰乳糖胺核心链的岩藻糖取代。虽然J99/NAP(-)突变菌株显示出与亲本J99野生型菌株相同的神经节苷脂结合模式,但J99/SabA(-)突变菌株未获得神经节苷脂结合,这表明SabA黏附素是幽门螺杆菌细菌细胞与神经节苷脂结合的唯一负责因素。