Found 1 structure.
Displayed structure 1
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1. Compound ID: 17175
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a-D-Manp-(1-2)-a-D-Manp-(1-3)-+
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a-D-Manp-(1-6)-+ |
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a-D-Manp-(1-3)-a-D-Manp-(1-6)-b-D-Manp-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc1N-(1-4)-Asn |
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Structure type: oligomer
Compound class: N-glycan
Contained glycoepitopes: IEDB_130701,IEDB_135813,IEDB_136104,IEDB_137340,IEDB_137485,IEDB_140116,IEDB_141793,IEDB_141807,IEDB_141828,IEDB_143632,IEDB_144983,IEDB_149158,IEDB_151079,IEDB_151531,IEDB_152206,IEDB_153220,IEDB_164174,IEDB_429156,IEDB_857734,IEDB_983930,SB_136,SB_196,SB_197,SB_198,SB_44,SB_53,SB_67,SB_72,SB_73,SB_77
The structure is contained in the following publication(s):
- Article ID: 6685
Aleshin AE, Hoffmann C, Firsov LM, Honzatko RB "Refined crystal structures of glucoamylase from Aspergillus awamori var. X100" -
Journal of Molecular Biology 238 (1994) 575-591
The refined crystal structures of a proteolytic fragment of glucoamylase from Aspergillus awamori var. X100 have been determined at pH 6 and 4 to a resolution of 2.2 A and 2.4 A, respectively. The models include the equivalent of residues 1 to 471 of glucoamylase from Aspergillus niger and a complete interpretation of the solvent structure. The R-factors of the pH 6 and 4 structures are 0.14 and 0.12, respectively, with root-mean-square deviations of 0.014 A and 0.012 A from expected bondlengths. The enzyme has the general shape of a doughnut. The "hole" of the doughnut consists of a barrier of hydrophobic residues at the center, which separates two water-filled voids, one of which serves as the active site. Three clusters of water molecules extend laterally from the active site. One of the lateral clusters connects the deepest recess of the active site to the surface of the enzyme. The most significant difference in the pH 4 and 6 structures is the thermal parameter of water 500, the putative nucleophile in the hydrolysis of maltooligosaccharides. Water 500 is associated more tightly with the enzyme at pH 4 (the pH of optimum catalysis) than at pH 6. In contrast to water 500, Glu179, the putative catalytic acid of glucoamylase, retains the same conformation in both structures and is in an environment that would favor the ionized, rather than the acid form of the side-chain. Glycosyl chains of 5 and 8 sugar residues are linked to Asparagines 171 and 395, respectively. The conformations of the two glycosyl chains are similar, being superimposable on each other with a root-mean-square discrepancy of 1.9 A. The N-glycosyl chains hydrogen bond to the surface of the protein through their terminal sugars, but otherwise do not interact strongly with the enzyme. The structures have ten serine/threonine residues, to each of which is linked a single mannose sugar. The structure of the ten O-glycosylated residues taken together suggests a well-defined conformation for proteins that have extensive O-glycosylation of their polypeptide chain.
NCBI PubMed ID: 8176747Publication DOI: 10.1006/jmbi.1994.1316Journal NLM ID: 2985088RPublisher: Elsevier
Institutions: Department of Molecular, St Petersburg Nuclear Physics Institute, Russia
Methods: X-ray, SDS-PAGE
- Article ID: 6733
Akiba S, Yamamoto K, Kumagai H "Effects of size of carbohydrate chain on protease digestion of Aspergillus niger endo-b-1,4-glucanase" -
Bioscience, Biotechnology, and Biochemistry 59 (1995) 1048-1051
NCBI PubMed ID: 7612990Journal NLM ID: 9205717Publisher: Japan Society for Bioscience, Biotechnology, and Agrochemistry
- Article ID: 6812
Flores-Carreon A, Balcazar-Orozco R "Biosynthesis of glycoproteins in Candida albicans: Processing of a Man6-GlcNAc2-Asn oligosaccharide by membrane fractions" -
FEMS Microbiology Letters 110 (1993) 121-126
Journal NLM ID: 7705721Publisher: Blackwell Publishing
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