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1UHG

Crystal Structure of S-Ovalbumin At 1.9 Angstrom Resolution

Summary for 1UHG
Entry DOI10.2210/pdb1uhg/pdb
DescriptorOvalbumin, 2-acetamido-2-deoxy-beta-D-glucopyranose-(1-4)-2-acetamido-2-deoxy-beta-D-glucopyranose, SULFATE ION, ... (5 entities in total)
Functional Keywordsallergen, egg white protein, serpin
Biological sourceGallus gallus (chicken)
Cellular locationSecreted: P01012
Total number of polymer chains4
Total formula weight173974.32
Authors
Yamasaki, M.,Takahashi, N.,Hirose, M. (deposition date: 2003-07-03, release date: 2003-07-22, Last modification date: 2024-11-20)
Primary citationYamasaki, M.,Takahashi, N.,Hirose, M.
Crystal Structure of S-ovalbumin as a Non-loop-inserted Thermostabilized Serpin Form
J.Biol.Chem., 278:35524-35530, 2003
Cited by
PubMed Abstract: Ovalbumin, a non-inhibitory member of serine proteinase inhibitors (serpin), is transformed into a heat-stabilized form, S-ovalbumin, under elevated pH conditions. The structural mechanism for the S-ovalbumin formation has long been a puzzling question in food science and serpin structural biology. On the basis of the commonly observed serpin thermostabilization by insertion of the reactive center loop into the proximal beta-sheet, the most widely accepted hypothetical model has included partial loop insertion. Here we demonstrate, for the first time, the crystal structure of S-ovalbumin at 1.9-A resolution. This structure unequivocally excludes the partial loop insertion mechanism; the overall structure, including the reactive center loop structure, is almost the same as that of native ovalbumin, except for the significant motion of the preceding loop of strand 1A away from strand 2A. The most striking finding is that Ser-164, Ser-236, and Ser-320 take the d-amino acid residue configuration. These chemical inversions can be directly related to the irreversible and stepwise nature of the transformation from native ovalbumin to S-ovalbumin. As conformational changes of the side chains, significant alternations are found in the values of the chi 1 of Phe-99 and the chi 3 of Met-241. The former conformational change leads to the decreased solvent accessibility of the hydrophobic core around Phe-99, which includes Phe-180 and Phe-378, the highly conserved residues in serpin. This may give a thermodynamic advantage to the structural stability of S-ovalbumin.
PubMed: 12840013
DOI: 10.1074/jbc.M305926200
PDB entries with the same primary citation
Experimental method
X-RAY DIFFRACTION (1.9 Å)
Structure validation

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数据于2025-06-18公开中

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