Found 47 structures.
Displayed structures from 1 to 15
Next 15 structure(s)
Expand all compounds
Collapse all compounds
Show all as text (SweetDB notation)
Show all graphically (SNFG notation)
1. Compound ID: 153
|
a-D-Glcp-(1-4)-+
|
a-D-Glcp-(1-6)-+ | P-6)-+ P-2)-+ a-Kdop-(2-4)-+ P-4)-+
| | | | | |
a-8eLegp-(2-3)-a-L-FucpN-(1-3)-b-D-QuipN(20%)Ac-(1-3)-a-L-Rhap-(1-3)-b-D-Glcp-(1-3)-a-D-GalpN-(1-3)-L-gro-a-D-manHepp-(1-3)-L-gro-a-D-manHepp-(1-5)-a-Kdop-(2-6)-b-D-GlcpN-(1-6)-a-D-GlcpN-(1-P
|
P-4)-+ |
Show graphically |
Structure type: oligomer
Trivial name: glycoform 2 core oligosaccharide with O-unit
Contained glycoepitopes: IEDB_130650,IEDB_130659,IEDB_1330403,IEDB_135394,IEDB_136105,IEDB_137473,IEDB_140088,IEDB_141807,IEDB_142488,IEDB_144998,IEDB_146664,IEDB_150908,IEDB_151531,IEDB_189517,IEDB_2189047,IEDB_225177,IEDB_885823,IEDB_983931,SB_192
The structure is contained in the following publication(s):
- Article ID: 33
Bystrova OV, Lindner B, Moll H, Kocharova NA, Knirel YA, Zähringer U, Pier GB "Structure of the lipopolysaccharide of Pseudomonas aeruginosa O-12 with a randomly O-acetylated core region" -
Carbohydrate Research 338(18) (2003) 1895-1905
The lipopolysaccharide of Pseudomonas aeruginosa O-12 was studied by strong alkaline and mild acid degradations and dephosphorylation followed by fractionation of the products by GPC and high-performance anion-exchange chromatography and analyses by ESI FT-MS and NMR spectroscopy. The structures of the lipopolysaccharide core and the O-polysaccharide repeating unit were elucidated and the site and the configuration of the linkage between the O-polysaccharide and the core established. The core was found to be randomly O-acetylated, most O-acetyl groups being located on the terminal rhamnose residue of the outer core region
Lipopolysaccharide, Pseudomonas aeruginosa, core structures, O-antigen repeating unit, O-acetylation
NCBI PubMed ID: 12932374Publication DOI: 10.1016/S0008-6215(03)00290-8Journal NLM ID: 0043535Publisher: Elsevier
Correspondence: knirel@ioc.ac.ru
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia, Research Center Borstel, Center for Medicine and Biosciences, Borstel, Germany, Channing Laboratory, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, MA, USA
Methods: 13C NMR, 1H NMR, NMR-2D, dephosphorylation, 31P NMR, ESI-MS, GLC, mild acid hydrolysis, alkaline degradation, HPAEC
Expand this compound
Collapse this compound
2. Compound ID: 154
Structure type: polymer biological repeating unit
Compound class: O-polysaccharide, O-antigen
The structure is contained in the following publication(s):
- Article ID: 33
Bystrova OV, Lindner B, Moll H, Kocharova NA, Knirel YA, Zähringer U, Pier GB "Structure of the lipopolysaccharide of Pseudomonas aeruginosa O-12 with a randomly O-acetylated core region" -
Carbohydrate Research 338(18) (2003) 1895-1905
The lipopolysaccharide of Pseudomonas aeruginosa O-12 was studied by strong alkaline and mild acid degradations and dephosphorylation followed by fractionation of the products by GPC and high-performance anion-exchange chromatography and analyses by ESI FT-MS and NMR spectroscopy. The structures of the lipopolysaccharide core and the O-polysaccharide repeating unit were elucidated and the site and the configuration of the linkage between the O-polysaccharide and the core established. The core was found to be randomly O-acetylated, most O-acetyl groups being located on the terminal rhamnose residue of the outer core region
Lipopolysaccharide, Pseudomonas aeruginosa, core structures, O-antigen repeating unit, O-acetylation
NCBI PubMed ID: 12932374Publication DOI: 10.1016/S0008-6215(03)00290-8Journal NLM ID: 0043535Publisher: Elsevier
Correspondence: knirel@ioc.ac.ru
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia, Research Center Borstel, Center for Medicine and Biosciences, Borstel, Germany, Channing Laboratory, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, MA, USA
Methods: 13C NMR, 1H NMR, NMR-2D, dephosphorylation, 31P NMR, ESI-MS, GLC, mild acid hydrolysis, alkaline degradation, HPAEC
- Article ID: 3490
King JD, Mulrooney EF, Vinogradov E, Kneidinger B, Mead K, Lam JS "lfnA from Pseudomonas aeruginosa O12 and wbuX from Escherichia coli O145 encode membrane-associated proteins and are required for expression of 2,6-dideoxy-2-acetamidino-L-galactose in lipopolysaccharide O antigen" -
Journal of Bacteriology 190(5) (2008) 1671-1679
The rare sugar 2,6-dideoxy-2-acetamidino-L-galactose (L-FucNAm) is found only in bacteria and is a component of cell surface glycans in a number of pathogenic species, including the O antigens of Pseudomonas aeruginosa serotype O12 and Escherichia coli O145. P. aeruginosa is an important opportunistic pathogen, and the O12 serotype is associated with multidrug-resistant epidemic outbreaks. O145 is one of the classic non-O157 serotypes associated with Shiga toxin-producing, enterohemorrhagic E. coli. The acetamidino (NAm) moiety of L-FucNAm is of interest, because at neutral pH it contributes a positive charge to the cell surface, and we aimed to characterize the biosynthesis of this functional group. The pathway is not known, but expression of NAm-modified sugars coincides with the presence of a pseA homologue in the relevant biosynthetic locus. PseA is a putative amidotransferase required for synthesis of a NAm-modified sugar in Campylobacter jejuni. In P. aeruginosa O12 and E. coli O145, the pseA homologues are lfnA and wbuX, respectively, and we hypothesized that these genes function in L-FucNAm biosynthesis. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis, Western blotting, and nuclear magnetic resonance analysis of the lfnA mutant O-antigen structure indicated that the mutant expresses 2,6-dideoxy-2-acetamido-L-galactose (L-FucNAc) in place of L-FucNAm. The mutation could be complemented by expression of either His(6)-tagged lfnA or wbuX in trans, confirming that these genes are functional homologues and that they are required for NAm moiety synthesis. Both proteins retained their activity when fused to a His(6) tag and localized to the membrane fraction. These data will assist future biochemical investigation of this pathway.
biosynthesis, O-antigen, Pseudomonas aeruginosa, Membrane Proteins, lfnA, wbuX
NCBI PubMed ID: 18156256Journal NLM ID: 2985120RPublisher: American Society for Microbiology
Correspondence: jlam@uoguelph.ca
Institutions: Department of Molecular and Cellular Biology, University of Guelph, Guelph, Ontario N1G 2W1, Canada
Methods: 13C NMR, 1H NMR, GLC-MS, NMR-2D, SDS-PAGE, sugar analysis, mild acid hydrolysis, Western blotting, genetic methods
Expand this compound
Collapse this compound
3. Compound ID: 1241
|
4HOBut-(1-5)-+
|
b-D-GlcpNAc-(1-4)-+ |
| |
-3)-a-L-FucpNAm-(1-3)-a-D-GlcpNAc-(1-8)-8eLegp7Ac-(2- |
Show graphically |
Structure type: polymer chemical repeating unit
Compound class: O-polysaccharide, O-antigen
Contained glycoepitopes: IEDB_135813,IEDB_137340,IEDB_141807,IEDB_151531,SB_74,SB_85
The structure is contained in the following publication(s):
- Article ID: 381
Skurnik M, Zhang L "Molecular genetics and biochemistry of Yersinia lipopolysaccharide" -
APMIS: Acta Pathologica, Microbiologica, et Immunologica Scandinavica 104(12) (1996) 849-872
Studies on the molecular genetics of bacterial LPS serve at least two main purposes: (i) to help develop an understanding of the biology, biochemistry and genetics of this bacterial surface macromolecule, and (ii) to provide a basis for both vaccine development and virulence experiments. Both of these goals have been the driving force in studies of Yersinia LPS carried out during the last decade. Here we will review the progress made in the molecular genetics and biochemistry of Yersinia LPS. A deep understanding has been achieved with respect to Y. enterocolitica serotype O:3, reaching as far as a detailed analysis of the gene clusters directing the biosynthesis of the outer core oligosaccharide and of the O-ag. The O-ag gene clusters of Y. enterocolitica serotype O:8 and Y. pseudotuberculosis serotypes O:2a and O:5a have also been cloned and partially characterized LPS biosynthesis of these Yersinia species includes examples of the two major variations recognized in the biosynthesis of this macromolecule: (i) homopolymeric or O-antigen polymerase-independent biosynthesis, and (ii) heteropolymeric or O-antigen polymerase-dependent biosynthesis.
Lipopolysaccharide, genetic, gene, genetics, O-antigen, biochemistry, Yersinia, molecular genetics
NCBI PubMed ID: 9048864Publication DOI: 10.1111/j.1699-0463.1996.tb04951.xJournal NLM ID: 8803400Publisher: Copenhagen: Munksgaard
Institutions: Turku Centre for Biotechnology, University of Turku, Finland, department of Medical Microbiology, University of Turku, Turku, Finland
- Article ID: 2299
Beynon LM, Richards JC, Perry MB "The structure of the lipopolysaccharide O antigen from Yersinia ruckeri serotype O1" -
Carbohydrate Research 256 (1994) 303-317
The O antigen obtained from the lipopolysaccharide of Yersinia ruckeri serotype 01, by mild acid hydrolysis, is composed of a branched tetrasaccharide repeating unit containing 2-acetamidino-2,6-dideoxy-l-galactose (l-FucAm), 2-acetamido-2-deoxy-d-glucose (D-GlcNac), and 7-acetamido-3,5,7,9-tetradeoxy-5-(4-hydroxybutyramido)-d-glycero-l-galacto-nonulosonic acid (l-Sug). Partial hydrolysis of the O antigen with 0.1 M HClafforded a trisaccharide and a tetrasaccharide having nonulosonic acid at their reducing ends. Cleavage of the O antigen with anhydrous methanolic hydrogen fluoride afforded the methyl glycoside derivatives of a trisaccharide and a tetrasaccharide. 1H and 13C NMR analysis, including 1H-13C heteronuclear multiple bond correlation spectroscopy to locate the N-acyl substituents, together with mass spectrometric analysis of the above oligosaccharides, allowed the structure of the O-specific polysaccharide to be assigned as: [formula: see text].
NCBI PubMed ID: 7514497Publication DOI: 10.1016/0008-6215(94)84215-9Journal NLM ID: 0043535Publisher: Elsevier
Institutions: Institute for Biological Sciences, National Research Council of Canada, Ottawa, Ontario
- Article ID: 6301
Qin CJ, Ding MR, Tian GZ, Zou XP, Fu JJ, Hu J, Yin J "Chemical approaches towards installation of rare functional groups in bacterial surface glycans" -
Chinese Journal of Natural Medicines = Zhongguo Tianran Yaowu 20(6) (2022) 401-420
Bacterial surface glycans perform a diverse and important set of biological roles, and have been widely used in the treatment of bacterial infectious diseases. The majority of bacterial surface glycans are decorated with diverse rare functional groups, including amido, acetamidino, carboxamido and pyruvate groups. These functional groups are thought to be important constituents for the biological activities of glycans. Chemical synthesis of glycans bearing these functional groups or their variants is essential for the investigation of structure-activity relationships by a medicinal chemistry approach. To date, a broad choice of synthetic methods is available for targeting the different rare functional groups in bacterial surface glycans. This article reviews the structures of naturally occurring rare functional groups in bacterial surface glycans, and the chemical methods used for installation of these groups.
chemical synthesis, acetamidino group, amido group, bacterial surface glycan, carboxamido group, pyruvyl ketal
NCBI PubMed ID: 35750381Publication DOI: 10.1016/S1875-5364(22)60177-8Journal NLM ID: 101504416Publisher: Beijing: Science Press; Elsevier
Correspondence: J. Yin
Institutions: Key Laboratory of Carbohydrate Chemistry and Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi, China, Wuxi School of Medicine, Jiangnan University, Wuxi, China
Expand this compound
Collapse this compound
4. Compound ID: 2256
|
-8)-a-8eLegp5Am7Ac-(2-3)-b-Shewanellosef-(1-
Shewanellose = 2-acetamido-4-C-(3'-carboxamide-2',2'-dihydroxypropyl)-2,6-dideoxy-D-galactose |
Show graphically |
Structure type: polymer chemical repeating unit
Compound class: O-polysaccharide
The structure is contained in the following publication(s):
- Article ID: 747
Kilcoyne M, Shashkov AS, Senchenkova SN, Knirel YA, Vinogradov EV, Radziejewska-Lebrecht J, Galimska-Stypa R, Savage AV "Structural investigation of the O-specific polysaccharides of Morganella morganii consisting of two higher sugars" -
Carbohydrate Research 337(18) (2002) 1697-1702
The lipopolysaccharide of the bacterium Morganella morganii (strain KF 1676, RK 4222) yielded two polysaccharides, PS1 and PS2, when subjected to mild acid degradation followed by GPC. The polysaccharides were studied by 1H and 13C NMR spectroscopy, including two-dimensional COSY, TOCSY, NOESY, 1H,(13)C HMQC, and HMBC experiments. Each polysaccharide was found to contain a disaccharide repeating unit consisting of two higher sugars, 5-acetamidino-7-acetamido-3,5,7,9-tetradeoxy-L-glycero-D-galacto-non-2-ulosonic acid (a derivative of 8-epilegionaminic acid, 8eLeg5Am7Ac) and 2-acetamido-4-C-(3'-carboxamide-2',2'-dihydroxypropyl)-2,6-dideoxy-D-galactose (shewanellose, She). The two polysaccharides differ only in the ring size of shewanellose and have the following structures:Shewanellose has been previously identified in a phenol-soluble polysaccharide from Shewanella putrefaciens A6, which shows a close structural similarity to PS2.
chemistry, structural, polysaccharide, carbohydrate, group, O-specific, O-specific polysaccharide, sugar, polysaccharides, 5, 7-diamino-3, 7, sugars, O-specific polysaccharides, higher sugar, Morganella, Morganella morganii, branched monosaccharide, 9-teradeoxy-L-glycero-D-galacto-non-2-ulosonic acid, shewanellose, 8-epilegionaminic acid
NCBI PubMed ID: 12423973Journal NLM ID: 0043535Publisher: Elsevier
Correspondence: angela.savage@nuigalway.ie
Institutions: Department of Chemistry, National University of Ireland, Galway, Ireland
Methods: NMR
- Article ID: 1470
Knirel YA, Shashkov AS, Tsvetkov YE, Jansson P, Zähringer U "5,7-Diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids in bacterial glycopolymers: chemistry and biochemistry" -
Book: Advances in Carbohydrate Chemistry and Biochemistry (2003) Vol. 58, 371-417
This chapter provides an overview of the chemistry of 5,7-diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids in bacterial glycopolymers. Ald-2-ulosonic acids are the important components of natural glycoconjugates. Sialic acids—namely, N- and O-acyl derivatives of 5-amino-3,5-dideoxy-D-glycero-D-galacto-non-2-ulosonic acid (neuraminic acid, Neu), generally occur in glycoconjugates of vertebrates and play a significant role in their recognition, regulation, and protection. A deamino analogue of neuraminic acid—3-deoxy-D-glycero-D-galacto-non-2-ulosonic acid (Kdn)—has also been found in a variety of animal tissues. 3-Deoxy-D-manno-oct-2-ulosonic acid (Kdo) is an essential component of lipopolysaccharides (LPSs) of Gram-negative bacteria that functions to link the carbohydrate portion to the lipid moiety. In rare cases, Kdo in LPS is replaced with a 3-hydroxylated analogue—D-glycero-D-talo-oct-2-ulosonic acid. The chapter focuses on the occurrence and characterization of derivatives of 5,7-diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids and presents experimental approaches that are used to identify them and to elucidate the structures of the bacterial polysaccharides that contain the nonulosonic acids. It also presents the recent data on the biosynthesis of these sugars and discusses their role in immune recognition.
Lipopolysaccharide, LPS, structure, polysaccharide, Bacterial polysaccharide, 5, 7-diamino-3, 7, higher sugar, 9-tetradeoxynonulosonic acid
NCBI PubMed ID: 14719362Publication DOI: 10.1016/S0065-2318(03)58007-6Publisher: Elsevier Inc.
Correspondence: knirel@ioc.ac.ru
Editors: Horton D
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia, Research Center Borstel, Center for Medicine and Biosciences, Borstel, Germany, Karolinska Institute, Clinical Research Center, Huddinge University Hospital, Huddinge, Sweden
- Article ID: 4329
Knirel YA "Structure of O-antigens" -
Book: Bacterial lipopolysaccharides: Structure, chemical synthesis, biogenesis and interaction with host cells (2011) Chapter 3, 41-115
The lipopolysaccharide (LPS) is the major constituent of the outer leaflet of the outer membrane of Gram-negative bacteria. Its lipid A moiety is embedded in the membrane and serves as an anchor for the rest of the LPS molecule. The outermost repetitive glycan region of the LPS is linked to the lipid A through a core oligosaccharide (OS), and is designated as the O-specific polysaccharide (O-polysaccharide, OPS) or O-antigen. The O-antigen is the most variable portion of the LPS and provides serological specificity, which is used for bacterial serotyping. The OPS also provides protection to the microorganisms from host defenses such as complement mediated killing and phagocytosis, and is involved in interactions of bacteria with plants and bacteriophages. Studies of the OPSs ranging from the elucidation of their chemical structures and conformations to their biological and physico-chemical properties help improving classification schemes of Gram-negative bacteria. Furthermore, these studies contributed to a better understanding of the mechanisms of pathogenesis of infectious diseases, as well as provided information to develop novel vaccines and diagnostic reagents.
Lipopolysaccharide, synthesis, lipopolysaccharides, structure, Bacterial, host, O-antigen, O antigen, cell, O antigens, O-antigens, chemical, interaction, cells, PDF, chemical synthesis, biogenesis
Publication DOI: 10.1007/978-3-7091-0733-1_3Publisher: Springer
Correspondence: knirel@ioc.ac.ru
Editors: Knirel YA, Valvano MA
Institutions: Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia
Expand this compound
Collapse this compound
5. Compound ID: 2257
|
-8)-a-8eLegp5Am7Ac-(2-3)-b-Shewanellosep-(1-
Shewanellose = 2-acetamido-4-C-(3'-carboxamide-2',2'-dihydroxypropyl)-2,6-dideoxy-D-galactose |
Show graphically |
Structure type: polymer chemical repeating unit
Compound class: O-polysaccharide
The structure is contained in the following publication(s):
- Article ID: 747
Kilcoyne M, Shashkov AS, Senchenkova SN, Knirel YA, Vinogradov EV, Radziejewska-Lebrecht J, Galimska-Stypa R, Savage AV "Structural investigation of the O-specific polysaccharides of Morganella morganii consisting of two higher sugars" -
Carbohydrate Research 337(18) (2002) 1697-1702
The lipopolysaccharide of the bacterium Morganella morganii (strain KF 1676, RK 4222) yielded two polysaccharides, PS1 and PS2, when subjected to mild acid degradation followed by GPC. The polysaccharides were studied by 1H and 13C NMR spectroscopy, including two-dimensional COSY, TOCSY, NOESY, 1H,(13)C HMQC, and HMBC experiments. Each polysaccharide was found to contain a disaccharide repeating unit consisting of two higher sugars, 5-acetamidino-7-acetamido-3,5,7,9-tetradeoxy-L-glycero-D-galacto-non-2-ulosonic acid (a derivative of 8-epilegionaminic acid, 8eLeg5Am7Ac) and 2-acetamido-4-C-(3'-carboxamide-2',2'-dihydroxypropyl)-2,6-dideoxy-D-galactose (shewanellose, She). The two polysaccharides differ only in the ring size of shewanellose and have the following structures:Shewanellose has been previously identified in a phenol-soluble polysaccharide from Shewanella putrefaciens A6, which shows a close structural similarity to PS2.
chemistry, structural, polysaccharide, carbohydrate, group, O-specific, O-specific polysaccharide, sugar, polysaccharides, 5, 7-diamino-3, 7, sugars, O-specific polysaccharides, higher sugar, Morganella, Morganella morganii, branched monosaccharide, 9-teradeoxy-L-glycero-D-galacto-non-2-ulosonic acid, shewanellose, 8-epilegionaminic acid
NCBI PubMed ID: 12423973Journal NLM ID: 0043535Publisher: Elsevier
Correspondence: angela.savage@nuigalway.ie
Institutions: Department of Chemistry, National University of Ireland, Galway, Ireland
Methods: NMR
- Article ID: 1470
Knirel YA, Shashkov AS, Tsvetkov YE, Jansson P, Zähringer U "5,7-Diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids in bacterial glycopolymers: chemistry and biochemistry" -
Book: Advances in Carbohydrate Chemistry and Biochemistry (2003) Vol. 58, 371-417
This chapter provides an overview of the chemistry of 5,7-diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids in bacterial glycopolymers. Ald-2-ulosonic acids are the important components of natural glycoconjugates. Sialic acids—namely, N- and O-acyl derivatives of 5-amino-3,5-dideoxy-D-glycero-D-galacto-non-2-ulosonic acid (neuraminic acid, Neu), generally occur in glycoconjugates of vertebrates and play a significant role in their recognition, regulation, and protection. A deamino analogue of neuraminic acid—3-deoxy-D-glycero-D-galacto-non-2-ulosonic acid (Kdn)—has also been found in a variety of animal tissues. 3-Deoxy-D-manno-oct-2-ulosonic acid (Kdo) is an essential component of lipopolysaccharides (LPSs) of Gram-negative bacteria that functions to link the carbohydrate portion to the lipid moiety. In rare cases, Kdo in LPS is replaced with a 3-hydroxylated analogue—D-glycero-D-talo-oct-2-ulosonic acid. The chapter focuses on the occurrence and characterization of derivatives of 5,7-diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids and presents experimental approaches that are used to identify them and to elucidate the structures of the bacterial polysaccharides that contain the nonulosonic acids. It also presents the recent data on the biosynthesis of these sugars and discusses their role in immune recognition.
Lipopolysaccharide, LPS, structure, polysaccharide, Bacterial polysaccharide, 5, 7-diamino-3, 7, higher sugar, 9-tetradeoxynonulosonic acid
NCBI PubMed ID: 14719362Publication DOI: 10.1016/S0065-2318(03)58007-6Publisher: Elsevier Inc.
Correspondence: knirel@ioc.ac.ru
Editors: Horton D
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia, Research Center Borstel, Center for Medicine and Biosciences, Borstel, Germany, Karolinska Institute, Clinical Research Center, Huddinge University Hospital, Huddinge, Sweden
- Article ID: 4329
Knirel YA "Structure of O-antigens" -
Book: Bacterial lipopolysaccharides: Structure, chemical synthesis, biogenesis and interaction with host cells (2011) Chapter 3, 41-115
The lipopolysaccharide (LPS) is the major constituent of the outer leaflet of the outer membrane of Gram-negative bacteria. Its lipid A moiety is embedded in the membrane and serves as an anchor for the rest of the LPS molecule. The outermost repetitive glycan region of the LPS is linked to the lipid A through a core oligosaccharide (OS), and is designated as the O-specific polysaccharide (O-polysaccharide, OPS) or O-antigen. The O-antigen is the most variable portion of the LPS and provides serological specificity, which is used for bacterial serotyping. The OPS also provides protection to the microorganisms from host defenses such as complement mediated killing and phagocytosis, and is involved in interactions of bacteria with plants and bacteriophages. Studies of the OPSs ranging from the elucidation of their chemical structures and conformations to their biological and physico-chemical properties help improving classification schemes of Gram-negative bacteria. Furthermore, these studies contributed to a better understanding of the mechanisms of pathogenesis of infectious diseases, as well as provided information to develop novel vaccines and diagnostic reagents.
Lipopolysaccharide, synthesis, lipopolysaccharides, structure, Bacterial, host, O-antigen, O antigen, cell, O antigens, O-antigens, chemical, interaction, cells, PDF, chemical synthesis, biogenesis
Publication DOI: 10.1007/978-3-7091-0733-1_3Publisher: Springer
Correspondence: knirel@ioc.ac.ru
Editors: Knirel YA, Valvano MA
Institutions: Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia
Expand this compound
Collapse this compound
6. Compound ID: 3339
|
-4)-a-8eLegp5Ac7Am8Ac-(2-3)-b-Shewanellosep-(1-
Shewanellose = 2-acetamido-4-C-(3'-carboxamide-2',2'-dihydroxypropyl)-2,6-dideoxy-D-galactose |
Show graphically |
Structure type: polymer chemical repeating unit
Trivial name: repeating unit of the phenol-soluble polysaccharide
Compound class: O-polysaccharide
The structure is contained in the following publication(s):
- Article ID: 1231
Shashkov AS, Torgov VI, Nazarenko EL, Zubkov VA, Gorshkova NM, Gorshkova RP, Widmalm G "Structure of the phenol-soluble polysaccharide from Shewanella putrefaciens strain A6" -
Carbohydrate Research 337(12) (2002) 1119-1127
The structure of the phenol-soluble polysaccharide from Shewanella putrefaciens strain A6 has been elucidated. Chemical modifications of the polymer in conjunction with 1H and 13C NMR spectroscopy, including 2D techniques, were employed in the analysis. It is concluded that the repeating unit is composed of two nine-carbon sugars as follows: →4)-α-NonpA-(2→3)-β-Sugp-(1→ where α-NonpA is 5-acetamido-7-acetamidino-8-O-acetyl-3,5,7,9-tetradeoxy-L-glycero-α-D-galacto-non-2-ulosonic acid (8eLeg) and β-Sugp is 2-acetamido-2,6-dideoxy-4-C-(3'-carboxamide-2',2'-dihydroxypropyl)-β-D-galactopyranose, with the proposed name Shewanellose (She).
biosynthesis, polysaccharide, NMR spectroscopy, nonulosonic acid, shewanellose, Shewanella putrefaciens
NCBI PubMed ID: 12062527Publication DOI: 10.1016/S0008-6215(02)00101-5Journal NLM ID: 0043535Publisher: Elsevier
Correspondence: G. Widmalm
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia, Pacific Institute of Bioorganic Chemistry, Far East Branch of the Russian Academy of Sciences, Vladivostok 690022, Russian Federation, Arrhenius Laboratory, Department of Organic Chemistry, Stockholm University, Stockholm, Sweden
Methods: NMR
- Article ID: 1470
Knirel YA, Shashkov AS, Tsvetkov YE, Jansson P, Zähringer U "5,7-Diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids in bacterial glycopolymers: chemistry and biochemistry" -
Book: Advances in Carbohydrate Chemistry and Biochemistry (2003) Vol. 58, 371-417
This chapter provides an overview of the chemistry of 5,7-diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids in bacterial glycopolymers. Ald-2-ulosonic acids are the important components of natural glycoconjugates. Sialic acids—namely, N- and O-acyl derivatives of 5-amino-3,5-dideoxy-D-glycero-D-galacto-non-2-ulosonic acid (neuraminic acid, Neu), generally occur in glycoconjugates of vertebrates and play a significant role in their recognition, regulation, and protection. A deamino analogue of neuraminic acid—3-deoxy-D-glycero-D-galacto-non-2-ulosonic acid (Kdn)—has also been found in a variety of animal tissues. 3-Deoxy-D-manno-oct-2-ulosonic acid (Kdo) is an essential component of lipopolysaccharides (LPSs) of Gram-negative bacteria that functions to link the carbohydrate portion to the lipid moiety. In rare cases, Kdo in LPS is replaced with a 3-hydroxylated analogue—D-glycero-D-talo-oct-2-ulosonic acid. The chapter focuses on the occurrence and characterization of derivatives of 5,7-diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids and presents experimental approaches that are used to identify them and to elucidate the structures of the bacterial polysaccharides that contain the nonulosonic acids. It also presents the recent data on the biosynthesis of these sugars and discusses their role in immune recognition.
Lipopolysaccharide, LPS, structure, polysaccharide, Bacterial polysaccharide, 5, 7-diamino-3, 7, higher sugar, 9-tetradeoxynonulosonic acid
NCBI PubMed ID: 14719362Publication DOI: 10.1016/S0065-2318(03)58007-6Publisher: Elsevier Inc.
Correspondence: knirel@ioc.ac.ru
Editors: Horton D
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia, Research Center Borstel, Center for Medicine and Biosciences, Borstel, Germany, Karolinska Institute, Clinical Research Center, Huddinge University Hospital, Huddinge, Sweden
- Article ID: 4435
Nazarenko EL, Komandrova NA, Gorshkova RP, Tomshich SV, Zubkov VA, Kilcoyne M, Savage AV "Structures of polysaccharides and oligosaccharides of some Gram-negative marine Proteobacteria" -
Carbohydrate Research 338(23) (2003) 2449-2457
The chemical structures of polysaccharides and LPS core oligosaccharides, isolated from various Gram-negative marine bacteria from the genera Pseudoalteromonas and Shewanella belonging to the Alteromonadaceae family and gamma-subclass of Proteobacteria, are reviewed. The polysaccharides are distinguished by the acidic character (e.g., due to the presence of hexuronic and aldulosonic acids and their derivatives) and the occurrence of unusual sugars, including N-acyl derivatives of 6-deoxyamino sugars, such as N-acetyl-D-quinovosamine, N-acetyl-L-fucosamine and N-acetyl-6-deoxy-L-talosamine, and higher sugars like 2,6-dideoxy-2-acetamido-4-C-(3'-carboxamide-2',2'-dihydroxypropyl)-D-galac topyranose (shewanellose). Many constituent sugars have various uncommon non-sugar substituents, such as alanine, formic, lactic and hydroxybutyric acids, sulfate, phosphate, and 2-aminopropane-1,3-diol.
Lipopolysaccharide, oligosaccharide structure, O-antigen, polysaccharide structure, Shewanella, Pseudoalteromonas, Proteobacteria
NCBI PubMed ID: 14670708Publication DOI: 10.1016/j.carres.2003.06.004Journal NLM ID: 0043535Publisher: Elsevier
Correspondence: A.V. Savage
Institutions: Department of Chemistry, National University of Ireland, Galway, Ireland, Pacific Institute of Bioorganic Chemistry, Far East Branch of the Russian Academy of Sciences, Vladivostok 690022, Russian Federation
Expand this compound
Collapse this compound
7. Compound ID: 3340
|
-4)-a-8eLegp5Ac7Ac-(2-3)-b-Shewanellosep-(1-
Shewanellose = 2-acetamido-4-C-(3'-carboxamide-2',2'-dihydroxypropyl)-2,6-dideoxy-D-galactose |
Show graphically |
Structure type: polymer chemical repeating unit
Trivial name: repeating unit of the phenol-soluble polysaccharide
The structure is contained in the following publication(s):
- Article ID: 1231
Shashkov AS, Torgov VI, Nazarenko EL, Zubkov VA, Gorshkova NM, Gorshkova RP, Widmalm G "Structure of the phenol-soluble polysaccharide from Shewanella putrefaciens strain A6" -
Carbohydrate Research 337(12) (2002) 1119-1127
The structure of the phenol-soluble polysaccharide from Shewanella putrefaciens strain A6 has been elucidated. Chemical modifications of the polymer in conjunction with 1H and 13C NMR spectroscopy, including 2D techniques, were employed in the analysis. It is concluded that the repeating unit is composed of two nine-carbon sugars as follows: →4)-α-NonpA-(2→3)-β-Sugp-(1→ where α-NonpA is 5-acetamido-7-acetamidino-8-O-acetyl-3,5,7,9-tetradeoxy-L-glycero-α-D-galacto-non-2-ulosonic acid (8eLeg) and β-Sugp is 2-acetamido-2,6-dideoxy-4-C-(3'-carboxamide-2',2'-dihydroxypropyl)-β-D-galactopyranose, with the proposed name Shewanellose (She).
biosynthesis, polysaccharide, NMR spectroscopy, nonulosonic acid, shewanellose, Shewanella putrefaciens
NCBI PubMed ID: 12062527Publication DOI: 10.1016/S0008-6215(02)00101-5Journal NLM ID: 0043535Publisher: Elsevier
Correspondence: G. Widmalm
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia, Pacific Institute of Bioorganic Chemistry, Far East Branch of the Russian Academy of Sciences, Vladivostok 690022, Russian Federation, Arrhenius Laboratory, Department of Organic Chemistry, Stockholm University, Stockholm, Sweden
Methods: NMR
Expand this compound
Collapse this compound
8. Compound ID: 3341
|
a-8eLegp5Ac7Am8Ac-(2-3)-b-Shewanellosef-(1-1)-Me
Shewanellose = 2-acetamido-4-C-(3'-carboxamide-2',2'-dihydroxypropyl)-2,6-dideoxy-D-galactose |
Show graphically |
Structure type: oligomer
The structure is contained in the following publication(s):
- Article ID: 1231
Shashkov AS, Torgov VI, Nazarenko EL, Zubkov VA, Gorshkova NM, Gorshkova RP, Widmalm G "Structure of the phenol-soluble polysaccharide from Shewanella putrefaciens strain A6" -
Carbohydrate Research 337(12) (2002) 1119-1127
The structure of the phenol-soluble polysaccharide from Shewanella putrefaciens strain A6 has been elucidated. Chemical modifications of the polymer in conjunction with 1H and 13C NMR spectroscopy, including 2D techniques, were employed in the analysis. It is concluded that the repeating unit is composed of two nine-carbon sugars as follows: →4)-α-NonpA-(2→3)-β-Sugp-(1→ where α-NonpA is 5-acetamido-7-acetamidino-8-O-acetyl-3,5,7,9-tetradeoxy-L-glycero-α-D-galacto-non-2-ulosonic acid (8eLeg) and β-Sugp is 2-acetamido-2,6-dideoxy-4-C-(3'-carboxamide-2',2'-dihydroxypropyl)-β-D-galactopyranose, with the proposed name Shewanellose (She).
biosynthesis, polysaccharide, NMR spectroscopy, nonulosonic acid, shewanellose, Shewanella putrefaciens
NCBI PubMed ID: 12062527Publication DOI: 10.1016/S0008-6215(02)00101-5Journal NLM ID: 0043535Publisher: Elsevier
Correspondence: G. Widmalm
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia, Pacific Institute of Bioorganic Chemistry, Far East Branch of the Russian Academy of Sciences, Vladivostok 690022, Russian Federation, Arrhenius Laboratory, Department of Organic Chemistry, Stockholm University, Stockholm, Sweden
Methods: NMR
Expand this compound
Collapse this compound
9. Compound ID: 3342
|
a-8eLegp5Ac7Ac-(2-3)-b-Shewanellosef-(1-1)-Me
Shewanellose = 2-acetamido-4-C-(3'-carboxamide-2',2'-dihydroxypropyl)-2,6-dideoxy-D-galactose |
Show graphically |
Structure type: oligomer
The structure is contained in the following publication(s):
- Article ID: 1231
Shashkov AS, Torgov VI, Nazarenko EL, Zubkov VA, Gorshkova NM, Gorshkova RP, Widmalm G "Structure of the phenol-soluble polysaccharide from Shewanella putrefaciens strain A6" -
Carbohydrate Research 337(12) (2002) 1119-1127
The structure of the phenol-soluble polysaccharide from Shewanella putrefaciens strain A6 has been elucidated. Chemical modifications of the polymer in conjunction with 1H and 13C NMR spectroscopy, including 2D techniques, were employed in the analysis. It is concluded that the repeating unit is composed of two nine-carbon sugars as follows: →4)-α-NonpA-(2→3)-β-Sugp-(1→ where α-NonpA is 5-acetamido-7-acetamidino-8-O-acetyl-3,5,7,9-tetradeoxy-L-glycero-α-D-galacto-non-2-ulosonic acid (8eLeg) and β-Sugp is 2-acetamido-2,6-dideoxy-4-C-(3'-carboxamide-2',2'-dihydroxypropyl)-β-D-galactopyranose, with the proposed name Shewanellose (She).
biosynthesis, polysaccharide, NMR spectroscopy, nonulosonic acid, shewanellose, Shewanella putrefaciens
NCBI PubMed ID: 12062527Publication DOI: 10.1016/S0008-6215(02)00101-5Journal NLM ID: 0043535Publisher: Elsevier
Correspondence: G. Widmalm
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia, Pacific Institute of Bioorganic Chemistry, Far East Branch of the Russian Academy of Sciences, Vladivostok 690022, Russian Federation, Arrhenius Laboratory, Department of Organic Chemistry, Stockholm University, Stockholm, Sweden
Methods: NMR
Expand this compound
Collapse this compound
10. Compound ID: 3980
Structure type: polymer chemical repeating unit
Compound class: O-polysaccharide, O-antigen
The structure is contained in the following publication(s):
- Article ID: 1470
Knirel YA, Shashkov AS, Tsvetkov YE, Jansson P, Zähringer U "5,7-Diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids in bacterial glycopolymers: chemistry and biochemistry" -
Book: Advances in Carbohydrate Chemistry and Biochemistry (2003) Vol. 58, 371-417
This chapter provides an overview of the chemistry of 5,7-diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids in bacterial glycopolymers. Ald-2-ulosonic acids are the important components of natural glycoconjugates. Sialic acids—namely, N- and O-acyl derivatives of 5-amino-3,5-dideoxy-D-glycero-D-galacto-non-2-ulosonic acid (neuraminic acid, Neu), generally occur in glycoconjugates of vertebrates and play a significant role in their recognition, regulation, and protection. A deamino analogue of neuraminic acid—3-deoxy-D-glycero-D-galacto-non-2-ulosonic acid (Kdn)—has also been found in a variety of animal tissues. 3-Deoxy-D-manno-oct-2-ulosonic acid (Kdo) is an essential component of lipopolysaccharides (LPSs) of Gram-negative bacteria that functions to link the carbohydrate portion to the lipid moiety. In rare cases, Kdo in LPS is replaced with a 3-hydroxylated analogue—D-glycero-D-talo-oct-2-ulosonic acid. The chapter focuses on the occurrence and characterization of derivatives of 5,7-diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids and presents experimental approaches that are used to identify them and to elucidate the structures of the bacterial polysaccharides that contain the nonulosonic acids. It also presents the recent data on the biosynthesis of these sugars and discusses their role in immune recognition.
Lipopolysaccharide, LPS, structure, polysaccharide, Bacterial polysaccharide, 5, 7-diamino-3, 7, higher sugar, 9-tetradeoxynonulosonic acid
NCBI PubMed ID: 14719362Publication DOI: 10.1016/S0065-2318(03)58007-6Publisher: Elsevier Inc.
Correspondence: knirel@ioc.ac.ru
Editors: Horton D
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia, Research Center Borstel, Center for Medicine and Biosciences, Borstel, Germany, Karolinska Institute, Clinical Research Center, Huddinge University Hospital, Huddinge, Sweden
- Article ID: 1831
Knirel YA, Vinogradov EV, Shashkov AS, Dmitriev BA, Kochetkov NK "Structure of Pseudomonas aeruginosa O13 O-specific polysaccharide containing 5,7-diacetamido-3,5,7,9-tetradeoxy-D-glycero-L-galacto-nonulosonic acid and 2-acetamidino-2,6-dideoxy-L-galactose" -
Bioorganicheskaya Khimia = Bioorganic Chemistry [Russian] 12 (1986) 848-851
O-Specific polysaccharide chain of P. aeruginosa 013 (Lányi) lipopolysaccharide is composed of N-acetyl-D-quinovosamine (QuiNAc), acetamidino derivative of L-fucosamine (FucNAm), and 5,7-diacetamido-3,5,7,9-tetradeoxy-D-glycero-L-galacto-nonulosonic acid (Sug). On solvolysis with HF in methanol, the polysaccharide afforded methylglycosides of a disaccharide and a trisaccharide both containing fucosamine and ulosonic acid derivatives. Chemical transformations (alkaline hydrolysis, reductive deamination, acetylation accompanied by intramolecular acylation of acetamidino group by ulosonic acid), 1H and 13C NMR analysis and mass spectral data proved the following structure of the trisaccharide unit of the polysaccharide: -8)-β-Sug-(1-3)-α-L-FucNAm-(1-3)-α-D-QuiNAc -(1-
NCBI PubMed ID: 2430578Journal NLM ID: 7804941Publisher: Moskva: Nauka
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Academy of Sciences of the USSR, Moscow, Russia
Methods: 13C NMR
- Article ID: 2213
Vinogradov EV, Shashkov AS, Knirel YA, Kochetkov NK, Dabrowski J, Grosskurth H, Stanislavsky ES, Kholodkova EV "The structure of the O-specific polysaccharide chain of the lipopolysaccharide of Salmonella arizonae O61" -
Carbohydrate Research 231 (1992) 1-11
The O-specific polysaccharide was obtained by mild degradation of the Salmonella arizonae O61 lipopolysaccharide with acid. It contained 2-acetamido-2-deoxy-D-glucose, 2-acetamidino-2,6-dideoxy-L-galactose (FucAm), and 7-acetamido-3,5,7,9-tetradeoxy-5-[(R)-3-hydroxybutyramido]-D- glycero-L-galacto-nonulosonic acid (Sug). On the basis of partial acid hydrolysis with 0.1 M HCl, solvolysis with anhydrous HF in methanol, and 1H- and 13C-NMR analysis (including 1H/13C inversely correlated spectroscopy for localisation of N-acyl substituents), it was concluded that the O-specific polysaccharide had the following structure. →3)-α-L-FucAm-(1→3)-α-D-GlcNAc-(1→8)-β-Sug-(2→. The O-antigen of S. arizonae O61 is structurally related to that of Pseudomonas aeruginosa O12, thus explaining the known serological cross-reactivity between these micro-organisms.
NCBI PubMed ID: 1394306Publication DOI: 10.1016/0008-6215(92)84002-AJournal NLM ID: 0043535Publisher: Elsevier
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia, Max Planck Institute for Medical Research, Heidelberg Germany, I.I. Mechnikov Institute of Vaccines and Sera, Moscow Russia
Methods: 13C NMR, 1H NMR, NMR-2D, partial acid hydrolysis, HF solvolysis, sugar analysis, acid hydrolysis, GPC
- Article ID: 3207
Knirel YA, Bystrova OV, Kocharova NA, Zähringer U, Pier GB "Conserved and variable structural features of the Pseudomonas aeruginosa lipopolysaccharide" -
Journal of Endotoxin Research 12(6) (2006) 324-336
The review is devoted to recent progress in the structural elucidation of the lipopolysaccharide of the bacterium Pseudomonas aeruginosa, including O-antigen biological repeats, core oligosaccharide, and lipid A. Data on biosynthesis, genetics and serology of the lipopolysaccharide isolated from various P. aeruginosa O-serogroups are discussed in relation to the chemical structures.
O-antigen, Pseudomonas aeruginosa, lipid A, core oligosaccharide, lipopolysaccharide structure, serologic activity
NCBI PubMed ID: 17254386Publication DOI: 10.1179/096805106X118906Journal NLM ID: 9433350Publisher: Maney Publishing
Correspondence: knirel@ioc.ac.ru
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia, Research Center Borstel, Leibniz-Center for Medicine and Biosciences, Borstel, Germany, Channing Laboratory, Brigham and Women’s Hospital, Harvard Medical School, Boston, Massachusetts, USA
Methods: NMR, chemical methods, MS, serological methods, genetic methods
- Article ID: 3711
King JD, Kocincova D, Westman EL, Lam JS "Lipopolysaccharide biosynthesis in Pseudomonas aeruginosa" -
Innate Immunity 15(5) (2009) 261-312
Pseudomonas aeruginosa causes serious nosocomial infections, and an important virulence factor produced by this organism is lipopolysaccharide (LPS). This review summarizes knowledge about biosynthesis of all three structural domains of LPS - lipid A, core oligosaccharide, and O polysaccharides. In addition, based on similarities with other bacterial species, this review proposes new hypothetical pathways for unstudied steps in the biosynthesis of P. aeruginosa LPS. Lipid A biosynthesis is discussed in relation to Escherichia coli and Salmonella, and the biosyntheses of core sugar precursors and core oligosaccharide are summarised. Pseudomonas aeruginosa attaches a Common Polysaccharide Antigen and O-Specific Antigen polysaccharides to lipid A-core. Both forms of O polysaccharide are discussed with respect to their independent synthesis mechanisms. Recent advances in understanding O-polysaccharide biosynthesis since the last major review on this subject, published nearly a decade ago, are highlighted. Since P. aeruginosa O polysaccharides contain unusual sugars, sugar-nucleotide biosynthesis pathways are reviewed in detail. Knowledge derived from detailed studies in the O5, O6 and O11 serotypes is applied to predict biosynthesis pathways of sugars in poorly-studied serotypes, especially O1, O4, and O13/O14. Although further work is required, a full understanding of LPS biosynthesis in P. aeruginosa is almost within reach.
Lipopolysaccharide, core, O-antigen, Pseudomonas aeruginosa, lipid A
NCBI PubMed ID: 19710102Publication DOI: 10.1177/1753425909106436Journal NLM ID: 101469670Publisher: Sage Publications
Correspondence: jlam@uoguelph.ca
Institutions: Department of Molecular and Cellular Biology, University of Guelph, Guelph, Ontario, Canada
- Article ID: 3873
Knirel YA, Bystrova OV, Kocharova NA, Zähringer U, Pier GB "Corrigendum: Conserved and variable structural features in the lipopolysaccharide of Pseudomonas aeruginosa" -
Innate Immunity 16(4) (2010) 274
The review is devoted to recent progress in the structural elucidation of the lipopolysaccharide of the bacterium Pseudomonas aeruginosa, including O-antigen biological repeats, core oligosaccharide, and lipid A. Data on biosynthesis, genetics and serology of the lipopolysaccharide isolated from various P. aeruginosa O-serogroups are discussed in relation to the chemical structures.
Lipopolysaccharide, structure, Pseudomonas aeruginosa, core oligosaccharide, variable
Publication DOI: 10.1177/1753425910369459Journal NLM ID: 101469670Publisher: Sage Publications
Correspondence: knirel@ioc.ac.ru
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia
- Article ID: 4062
Lam JS, Taylor VL, Islam ST, Hao Y, Kocincova D "Genetic and Functional Diversity of Pseudomonas aeruginosa Lipopolysaccharide" -
Frontiers in Microbiology 2 (2011) 118
Lipopolysccharide (LPS) is an integral component of the Pseudomonas aeruginosa cell envelope, occupying the outer leaflet of the outer membrane in this Gram-negative opportunistic pathogen. It is important for bacterium-host interactions and has been shown to be a major virulence factor for this organism. Structurally, P. aeruginosa LPS is composed of three domains, namely, lipid A, core oligosaccharide, and the distal O antigen (O-Ag). Most P. aeruginosa strains produce two distinct forms of O-Ag, one a homopolymer of D-rhamnose that is a common polysaccharide antigen (CPA, formerly termed A band), and the other a heteropolymer of three to five distinct (and often unique dideoxy) sugars in its repeat units, known as O-specific antigen (OSA, formerly termed B band). Compositional differences in the O units among the OSA from different strains form the basis of the International Antigenic Typing Scheme for classification via serotyping of different strains of P. aeruginosa. The focus of this review is to provide state-of-the-art knowledge on the genetic and resultant functional diversity of LPS produced by P. aeruginosa. The underlying factors contributing to this diversity will be thoroughly discussed and presented in the context of its contributions to host-pathogen interactions and the control/prevention of infection.
Lipopolysaccharide, biosynthesis, virulence, serotyping, bacteriophage, motility, seroconversion, nucleotide sugars
NCBI PubMed ID: 21687428Publication DOI: 10.3389/fmicb.2011.00118Journal NLM ID: 101548977Publisher: Lausanne: Frontiers Research Foundation
Correspondence: jlam@uoguelph.ca
Institutions: Department of Molecular and Cellular Biology, University of Guelph Guelph, ON, Canada
- Article ID: 4684
Islam ST, Lam JS "Synthesis of bacterial polysaccharides via the Wzx/Wzy-dependent pathway" -
Canadian Journal of Microbiology 60(11) (2014) 697-716
The surfaces of bacteria mediate a multitude of functions in the environment and in an infected host, including adhesion to both biotic and abiotic substrata, motility, immune system interaction and (or) activation, biofilm formation, and cell-cell communication, with many of these features directly influenced by cell-surface glycans. In both Gram-negative and Gram-positive bacteria, the majority of cell-surface polysaccharides are produced via the Wzx/Wzy-dependent assembly pathway; these glycans include heteropolymeric O-antigen, enterobacterial common antigen, exopolysaccharide, spore coat, and capsule in diverse bacteria. The key components of this assembly pathway are the integral inner membrane Wzx flippase, Wzy polymerase, and Wzz chain-length regulator proteins, which until recently have resisted detailed structural and functional characterization. In this review, we have provided a comprehensive synthesis of the latest structural and mechanistic data for each protein, as well as an examination of substrate specificity for each assembly step and complex formation between the constituent proteins. To complement the unprecedented explosion of genomic-sequencing data for bacteria, we have also highlighted both classical and state-of-the-art methods by which encoded Wzx, Wzy, and Wzz proteins can be reliably identified and annotated, using the model Gram-negative bacterium Pseudomonas aeruginosa as an example data set. Lastly, we outline future avenues of research, with the aim of stimulating researchers to take the next steps in investigating the function of, and interplay between, the constituents of this widespread assembly scheme.
Membrane Proteins, lipopolysaccharide (LPS), Wzx flippase, Wzy polymerase, Wzz polysaccharide copolymerase
NCBI PubMed ID: 25358682Publication DOI: 10.1139/cjm-2014-0595Journal NLM ID: 0372707Publisher: National Research Council of Canada
Correspondence: sislam@imm.cnrs.fr; jlam@uoguelph.ca
Institutions: Department of Molecular and Cellular Biology, University of Guelph, Guelph, ON N1G 2W1, Canada
Methods: SDS-PAGE, genetic methods, cloning
- Article ID: 4735
Vinogradov E, MacLean L, Xu HH, Chen W "The structure of the polysaccharide isolated from Acinetobacter baumannii strain LAC-4" -
Carbohydrate Research 390 (2014) 42-45
The structure of the surface polysaccharide from a hypervirulent for mice Acinetobacter baumannii strain LAC-4 was studied. The polysaccharide was built of trisaccharide repeating units containing α-l-fucosamine, α-d-glucosamine, and α-8-epi-legionaminic acid. The structure interpretation was based mostly on NMR data. Polysaccharide was obtained using a procedure of LPS O-chain preparation, although whether it is an LPS O-chain or capsular polysaccharide remained unclear.
NMR, LPS, structure, strain, polysaccharide, Acinetobacter, Acinetobacter baumannii, O-polysaccharide, PDF
NCBI PubMed ID: 24690675Publication DOI: 10.1016/j.carres.2014.03.001Journal NLM ID: 0043535Publisher: Elsevier
Correspondence: E. Vinogradov
; L. MacLean ; H.H. Xu ; W. Chen
Institutions: Human Health Therapeutics Portfolio, National Research Council Canada, 100 Sussex Drive, Ottawa, Ontario K1A 0R6, Canada, Department of Biological Sciences, California State University, 5151 State University Dr., Los Angeles, CA 90032-8201, USA
Methods: 13C NMR, 1H NMR, NMR-2D, GC-MS, sugar analysis, mild acid hydrolysis, de-O-acylation with hydrazine, NMR-1D
- Article ID: 6301
Qin CJ, Ding MR, Tian GZ, Zou XP, Fu JJ, Hu J, Yin J "Chemical approaches towards installation of rare functional groups in bacterial surface glycans" -
Chinese Journal of Natural Medicines = Zhongguo Tianran Yaowu 20(6) (2022) 401-420
Bacterial surface glycans perform a diverse and important set of biological roles, and have been widely used in the treatment of bacterial infectious diseases. The majority of bacterial surface glycans are decorated with diverse rare functional groups, including amido, acetamidino, carboxamido and pyruvate groups. These functional groups are thought to be important constituents for the biological activities of glycans. Chemical synthesis of glycans bearing these functional groups or their variants is essential for the investigation of structure-activity relationships by a medicinal chemistry approach. To date, a broad choice of synthetic methods is available for targeting the different rare functional groups in bacterial surface glycans. This article reviews the structures of naturally occurring rare functional groups in bacterial surface glycans, and the chemical methods used for installation of these groups.
chemical synthesis, acetamidino group, amido group, bacterial surface glycan, carboxamido group, pyruvyl ketal
NCBI PubMed ID: 35750381Publication DOI: 10.1016/S1875-5364(22)60177-8Journal NLM ID: 101504416Publisher: Beijing: Science Press; Elsevier
Correspondence: J. Yin
Institutions: Key Laboratory of Carbohydrate Chemistry and Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi, China, Wuxi School of Medicine, Jiangnan University, Wuxi, China
Expand this compound
Collapse this compound
11. Compound ID: 3982
|
b-D-GlcpNAc-(1-4)-+ 4HOBut-(1-5)-+
| |
-3)-a-D-GlcpNAc-(1-8)-a-8eLegp7Ac-(2-3)-a-L-FucpNAm-(1- |
Show graphically |
Structure type: polymer chemical repeating unit
Compound class: O-polysaccharide
Contained glycoepitopes: IEDB_135813,IEDB_137340,IEDB_141807,IEDB_151531,SB_74,SB_85
The structure is contained in the following publication(s):
- Article ID: 1470
Knirel YA, Shashkov AS, Tsvetkov YE, Jansson P, Zähringer U "5,7-Diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids in bacterial glycopolymers: chemistry and biochemistry" -
Book: Advances in Carbohydrate Chemistry and Biochemistry (2003) Vol. 58, 371-417
This chapter provides an overview of the chemistry of 5,7-diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids in bacterial glycopolymers. Ald-2-ulosonic acids are the important components of natural glycoconjugates. Sialic acids—namely, N- and O-acyl derivatives of 5-amino-3,5-dideoxy-D-glycero-D-galacto-non-2-ulosonic acid (neuraminic acid, Neu), generally occur in glycoconjugates of vertebrates and play a significant role in their recognition, regulation, and protection. A deamino analogue of neuraminic acid—3-deoxy-D-glycero-D-galacto-non-2-ulosonic acid (Kdn)—has also been found in a variety of animal tissues. 3-Deoxy-D-manno-oct-2-ulosonic acid (Kdo) is an essential component of lipopolysaccharides (LPSs) of Gram-negative bacteria that functions to link the carbohydrate portion to the lipid moiety. In rare cases, Kdo in LPS is replaced with a 3-hydroxylated analogue—D-glycero-D-talo-oct-2-ulosonic acid. The chapter focuses on the occurrence and characterization of derivatives of 5,7-diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids and presents experimental approaches that are used to identify them and to elucidate the structures of the bacterial polysaccharides that contain the nonulosonic acids. It also presents the recent data on the biosynthesis of these sugars and discusses their role in immune recognition.
Lipopolysaccharide, LPS, structure, polysaccharide, Bacterial polysaccharide, 5, 7-diamino-3, 7, higher sugar, 9-tetradeoxynonulosonic acid
NCBI PubMed ID: 14719362Publication DOI: 10.1016/S0065-2318(03)58007-6Publisher: Elsevier Inc.
Correspondence: knirel@ioc.ac.ru
Editors: Horton D
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia, Research Center Borstel, Center for Medicine and Biosciences, Borstel, Germany, Karolinska Institute, Clinical Research Center, Huddinge University Hospital, Huddinge, Sweden
- Article ID: 4329
Knirel YA "Structure of O-antigens" -
Book: Bacterial lipopolysaccharides: Structure, chemical synthesis, biogenesis and interaction with host cells (2011) Chapter 3, 41-115
The lipopolysaccharide (LPS) is the major constituent of the outer leaflet of the outer membrane of Gram-negative bacteria. Its lipid A moiety is embedded in the membrane and serves as an anchor for the rest of the LPS molecule. The outermost repetitive glycan region of the LPS is linked to the lipid A through a core oligosaccharide (OS), and is designated as the O-specific polysaccharide (O-polysaccharide, OPS) or O-antigen. The O-antigen is the most variable portion of the LPS and provides serological specificity, which is used for bacterial serotyping. The OPS also provides protection to the microorganisms from host defenses such as complement mediated killing and phagocytosis, and is involved in interactions of bacteria with plants and bacteriophages. Studies of the OPSs ranging from the elucidation of their chemical structures and conformations to their biological and physico-chemical properties help improving classification schemes of Gram-negative bacteria. Furthermore, these studies contributed to a better understanding of the mechanisms of pathogenesis of infectious diseases, as well as provided information to develop novel vaccines and diagnostic reagents.
Lipopolysaccharide, synthesis, lipopolysaccharides, structure, Bacterial, host, O-antigen, O antigen, cell, O antigens, O-antigens, chemical, interaction, cells, PDF, chemical synthesis, biogenesis
Publication DOI: 10.1007/978-3-7091-0733-1_3Publisher: Springer
Correspondence: knirel@ioc.ac.ru
Editors: Knirel YA, Valvano MA
Institutions: Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia
Expand this compound
Collapse this compound
12. Compound ID: 3983
|
R-3HOBut-(1-5)-+
|
-3)-a-D-GlcpNAc-(1-8)-b-8eLegp7Ac-(2-3)-a-L-FucpNAm-(1- |
Show graphically |
Structure type: polymer chemical repeating unit
Compound class: O-polysaccharide, O-antigen
Contained glycoepitopes: IEDB_137340,IEDB_141807,IEDB_151531
The structure is contained in the following publication(s):
- Article ID: 1470
Knirel YA, Shashkov AS, Tsvetkov YE, Jansson P, Zähringer U "5,7-Diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids in bacterial glycopolymers: chemistry and biochemistry" -
Book: Advances in Carbohydrate Chemistry and Biochemistry (2003) Vol. 58, 371-417
This chapter provides an overview of the chemistry of 5,7-diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids in bacterial glycopolymers. Ald-2-ulosonic acids are the important components of natural glycoconjugates. Sialic acids—namely, N- and O-acyl derivatives of 5-amino-3,5-dideoxy-D-glycero-D-galacto-non-2-ulosonic acid (neuraminic acid, Neu), generally occur in glycoconjugates of vertebrates and play a significant role in their recognition, regulation, and protection. A deamino analogue of neuraminic acid—3-deoxy-D-glycero-D-galacto-non-2-ulosonic acid (Kdn)—has also been found in a variety of animal tissues. 3-Deoxy-D-manno-oct-2-ulosonic acid (Kdo) is an essential component of lipopolysaccharides (LPSs) of Gram-negative bacteria that functions to link the carbohydrate portion to the lipid moiety. In rare cases, Kdo in LPS is replaced with a 3-hydroxylated analogue—D-glycero-D-talo-oct-2-ulosonic acid. The chapter focuses on the occurrence and characterization of derivatives of 5,7-diamino-3,5,7,9-tetradeoxynon-2-ulosonic acids and presents experimental approaches that are used to identify them and to elucidate the structures of the bacterial polysaccharides that contain the nonulosonic acids. It also presents the recent data on the biosynthesis of these sugars and discusses their role in immune recognition.
Lipopolysaccharide, LPS, structure, polysaccharide, Bacterial polysaccharide, 5, 7-diamino-3, 7, higher sugar, 9-tetradeoxynonulosonic acid
NCBI PubMed ID: 14719362Publication DOI: 10.1016/S0065-2318(03)58007-6Publisher: Elsevier Inc.
Correspondence: knirel@ioc.ac.ru
Editors: Horton D
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia, Research Center Borstel, Center for Medicine and Biosciences, Borstel, Germany, Karolinska Institute, Clinical Research Center, Huddinge University Hospital, Huddinge, Sweden
- Article ID: 3847
Gajdus J, Glosnicka R, Szafranek J "Primary structure of Salmonella spp. O-antigens" -
Wiadomosci Chemiczne [Polish] 60(9-10) (2006) 621-653
Salmonella spp. are pathogenic Gram-negative bacteria that belong to Enterobacteriaceae family with lipopolysaccharide (LPS) as a constituent of cell wall. This is an integral component of the outer membrane of the wall. Salmonella smooth (S) forms produce LPS, which is composed of three parts, chemically bonded together viz. polysaccharide O-antigen, oligosaccharide core region and lipid A. Antigens O (O-PS) together with H flagella antigens are the foundation of serological classification of these bacteria. O-chain, which is built with up to 50 oligosaccharide repeating units, is one of the products of mild acidic hydrolysis of LPS. Due to the fact that polysaccharide antigens are the sites of specific antibody complexing, any difference in primary and secondary structures of O-antigens reflect serological specificity of bacteria. Taking this fact into consideration, we can distinguish about 2541 Salmonella serotypes with O and H antigenic formulas defined [4]. In this review we present 55 chemical structures of O-antigenic repeating units of Salmonella strains including their heterogeneity structures. The structures can have 22 different monosaccharide residues usually in 3 to 6 sugar repeating units. We describe here selected chemical and spectroscopic (MS, NMR) methods for primary structure examination of these bacterial O-PS. Enzymatic and immunochemical methods are also described. Cross-reactions of Salmonella spp. with any other bacteria or blood group A, B, 0 antigens are explained on the molecular level. Thus, structural assignments of somatic antigens of Salmonella spp. allow us to understand the molecular level of the classification system of these bacteria.
NMR spectroscopy, O-antigens, Salmonella, MS, primary structure
WWW link: http://baztech.icm.edu.pl/baztech/cgi-bin/btgetdoc.cgi?BUS2-0016-0014Publisher: Polish Chemical Society
Correspondence: jerzyg@chemik.chem.univ.gda.pl
Institutions: Wydzial Chemii, Uniwersytet Gdanski, ul. Sobieskiego 18, 80-952 Gdansk
Expand this compound
Collapse this compound
13. Compound ID: 4626
Structure type: polymer chemical repeating unit
Compound class: O-polysaccharide, O-antigen
The structure is contained in the following publication(s):
- Article ID: 1778
Knirel YA, Kochetkov NK "The structure of lipopolysaccharides of gram-negative bacteria. III. The structure of O-antigens: A review" -
Biochemistry (Moscow) 59(12) (1994) 1325-1383
This review summarizes data on the composition and structure of the O-antigens, the polysaccharide chains of the outer-membrane lipopolysaccharides (LPS) of Gram-negative bacteria defining the immunospecificity of these microbial cells. Special reference is given to some structural features of the O-antigens, such as the presence of unique monosaccharides and noncarbohydrate components, masked regularity, and the occurrence in one microorganism of LPS with structurally different polysaccharide chains. Antigenic relationships between microorganisms belonging to different taxonomic groups are discussed.
structure, O-antigen, chemical composition, bacterial lipopolysaccharides, Salmonella livingstone C1
NCBI PubMed ID: 7533007Journal NLM ID: 0376536Publisher: Nauka/Interperiodica
Institutions: Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Moscow, Russia
- Article ID: 2402
Knirel YA, Vinogradov EV, Shashkov AS, Dmitriev BA, Kochetkov NK, Stanislavsky ES, Mashilova GM "Somatic antigens of Pseudomonas aeruginosa. The structure of the O-specific polysaccharide chain of the lipopolysaccharide from P. aeruginosa O13 (Lányi)" -
European Journal of Biochemistry 163 (1987) 627-637
The O-specific polysaccharide, obtained on mild acid degradation of lipopolysaccharide of Pseudomonas aeruginosa O13 (Lányi classification), is built up of trisaccharide repeating units involving 2-acetamidino-2,6-dideoxy-D-glucose (N-acetyl-D-quinovosamine, D-QuiNAc), 2-acetamidino-2,6-dideoxy-L-galactose (L-fucosacetamidine, L-FucAm), and a new sialic-acid-like sugar, 5,7-diacetamido-3,5,7,9-tetradeoxy-D-glycero-L-galacto-nonulosonic acid (Sug), and thus contains simultaneously both acidic and basic functions. Cleavage of the polysaccharide with hydrogen fluoride in methanol revealed the high stability of the glycosidic linkage of the ulosonic acid and afforded methyl glycosides of a disaccharide and a trisaccharide. The structures of the new ulosonic acid and acetamidino group were established by analysing the oligosaccharide fragments by 1H, 13C nuclear magnetic resonance spectrometry, as well as on the basis of their chemical conversions: alkaline hydrolysis of the acetamidino group into acetamido group, reductive deamination with lithium borohydride into the ethylamino group and acetylation with acetic anhydride in pyridine accompanied by intramolecular acylation of the acetamidino function by the ulosonic acid to form a six-membered lactam ring. Identification of the oligosaccharide fragments and comparative analysis of the 13C nuclear magnetic resonance spectra of the oligosaccharides and polysaccharide revealed the following structure of the repeating unit: →3)D-QuiNAcp(α1→3)Sugp(α2→3)L-FucAmp(α1→.
NCBI PubMed ID: 3104040Publication DOI: 10.1111/j.1432-1033.1987.tb10912.xJournal NLM ID: 0107600Publisher: Oxford, UK: Blackwell Science Ltd. on behalf of the Federation of European Biochemical Societies
Methods: 13C NMR
- Article ID: 5748
Chidwick HS, Fascione MA "Mechanistic and structural studies into the biosynthesis of the bacterial sugar pseudaminic acid (Pse5Ac7Ac)" -
Organic and Biomolecular Chemistry 18(5) (2020) 799-809
The non-mammalian nonulosonic acid sugar pseudaminic acid (Pse) is present on the surface of a number of human pathogens including Campylobacter jejuni and Helicobacter pylori and other bacteria such as multidrug resistant Acinetobacter baumannii. It is likely important for evasion of the host immune sysyem, and also plays a role in bacterial motility through flagellin glycosylation. Herein we review the mechanistic and structural characterisation of the enzymes responsible for the biosynthesis of the Pse parent structure, Pse5Ac7Ac in bacteria.
biosynthesis, structure, Acinetobacter baumannii, Campylobacter jejuni, pseudaminic acid, nonulosonic acid, Helicobacter pylori, structural studies, Enzymes, glycosylation, immune, Flagellin
NCBI PubMed ID: 31913385Publication DOI: 10.1039/c9ob02433fJournal NLM ID: 101154995Publisher: The Royal Society of Chemistry
Correspondence: martin.fascione@york.ac.uk
Institutions: Department of Chemistry, University of York, York, YO10 5DD, UK
- Article ID: 6301
Qin CJ, Ding MR, Tian GZ, Zou XP, Fu JJ, Hu J, Yin J "Chemical approaches towards installation of rare functional groups in bacterial surface glycans" -
Chinese Journal of Natural Medicines = Zhongguo Tianran Yaowu 20(6) (2022) 401-420
Bacterial surface glycans perform a diverse and important set of biological roles, and have been widely used in the treatment of bacterial infectious diseases. The majority of bacterial surface glycans are decorated with diverse rare functional groups, including amido, acetamidino, carboxamido and pyruvate groups. These functional groups are thought to be important constituents for the biological activities of glycans. Chemical synthesis of glycans bearing these functional groups or their variants is essential for the investigation of structure-activity relationships by a medicinal chemistry approach. To date, a broad choice of synthetic methods is available for targeting the different rare functional groups in bacterial surface glycans. This article reviews the structures of naturally occurring rare functional groups in bacterial surface glycans, and the chemical methods used for installation of these groups.
chemical synthesis, acetamidino group, amido group, bacterial surface glycan, carboxamido group, pyruvyl ketal
NCBI PubMed ID: 35750381Publication DOI: 10.1016/S1875-5364(22)60177-8Journal NLM ID: 101504416Publisher: Beijing: Science Press; Elsevier
Correspondence: J. Yin
Institutions: Key Laboratory of Carbohydrate Chemistry and Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi, China, Wuxi School of Medicine, Jiangnan University, Wuxi, China
Expand this compound
Collapse this compound
14. Compound ID: 4826
Structure type: oligomer
Compound class: O-polysaccharide, O-antigen
The structure is contained in the following publication(s):
- Article ID: 1831
Knirel YA, Vinogradov EV, Shashkov AS, Dmitriev BA, Kochetkov NK "Structure of Pseudomonas aeruginosa O13 O-specific polysaccharide containing 5,7-diacetamido-3,5,7,9-tetradeoxy-D-glycero-L-galacto-nonulosonic acid and 2-acetamidino-2,6-dideoxy-L-galactose" -
Bioorganicheskaya Khimia = Bioorganic Chemistry [Russian] 12 (1986) 848-851
O-Specific polysaccharide chain of P. aeruginosa 013 (Lányi) lipopolysaccharide is composed of N-acetyl-D-quinovosamine (QuiNAc), acetamidino derivative of L-fucosamine (FucNAm), and 5,7-diacetamido-3,5,7,9-tetradeoxy-D-glycero-L-galacto-nonulosonic acid (Sug). On solvolysis with HF in methanol, the polysaccharide afforded methylglycosides of a disaccharide and a trisaccharide both containing fucosamine and ulosonic acid derivatives. Chemical transformations (alkaline hydrolysis, reductive deamination, acetylation accompanied by intramolecular acylation of acetamidino group by ulosonic acid), 1H and 13C NMR analysis and mass spectral data proved the following structure of the trisaccharide unit of the polysaccharide: -8)-β-Sug-(1-3)-α-L-FucNAm-(1-3)-α-D-QuiNAc -(1-
NCBI PubMed ID: 2430578Journal NLM ID: 7804941Publisher: Moskva: Nauka
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Academy of Sciences of the USSR, Moscow, Russia
Methods: 13C NMR
Expand this compound
Collapse this compound
15. Compound ID: 4829
Structure type: oligomer
Compound class: O-polysaccharide, O-antigen
The structure is contained in the following publication(s):
- Article ID: 1831
Knirel YA, Vinogradov EV, Shashkov AS, Dmitriev BA, Kochetkov NK "Structure of Pseudomonas aeruginosa O13 O-specific polysaccharide containing 5,7-diacetamido-3,5,7,9-tetradeoxy-D-glycero-L-galacto-nonulosonic acid and 2-acetamidino-2,6-dideoxy-L-galactose" -
Bioorganicheskaya Khimia = Bioorganic Chemistry [Russian] 12 (1986) 848-851
O-Specific polysaccharide chain of P. aeruginosa 013 (Lányi) lipopolysaccharide is composed of N-acetyl-D-quinovosamine (QuiNAc), acetamidino derivative of L-fucosamine (FucNAm), and 5,7-diacetamido-3,5,7,9-tetradeoxy-D-glycero-L-galacto-nonulosonic acid (Sug). On solvolysis with HF in methanol, the polysaccharide afforded methylglycosides of a disaccharide and a trisaccharide both containing fucosamine and ulosonic acid derivatives. Chemical transformations (alkaline hydrolysis, reductive deamination, acetylation accompanied by intramolecular acylation of acetamidino group by ulosonic acid), 1H and 13C NMR analysis and mass spectral data proved the following structure of the trisaccharide unit of the polysaccharide: -8)-β-Sug-(1-3)-α-L-FucNAm-(1-3)-α-D-QuiNAc -(1-
NCBI PubMed ID: 2430578Journal NLM ID: 7804941Publisher: Moskva: Nauka
Institutions: N.D. Zelinsky Institute of Organic Chemistry, Academy of Sciences of the USSR, Moscow, Russia
Methods: 13C NMR
Expand this compound
Collapse this compound
Next 15 structure(s)
Total list of structure IDs on all result pages of the current query:
Total list of corresponding CSDB IDs (permanent record IDs):
Execution: 1 sec