Involvement of disulfide bonds and histidine 172 in a unique β-sheet to α-helix transition of α1-acid glycoprotein at the biomembrane interface

被引:12
|
作者
Nishi, K [1 ]
Komine, Y [1 ]
Fukunaga, N [1 ]
Maruyama, T [1 ]
Suenaga, A [1 ]
Otagiri, M [1 ]
机构
[1] Kumamoto Univ, Grad Sch Pharmaceut Sci, Dept Biopharmaceut, Kumamoto 8620973, Japan
关键词
conformational transition; folding process; CD spectra; drug binding; intermediate diate state;
D O I
10.1002/prot.20923
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Human alpha(1)-acid glycoprotein (AGP), which is comprised of 183 amino acid residues and 5 carbohydrate chains, is a major plasma protein that binds to basic and neutral drugs as well as to steroid hormones. It has a beta-sheet-rich structure in aqueous solution. Our previous findings suggest that AGP forms an alpha-helix structure through an interaction with biomembranes. We report herein on a study of the mechanism of alpha-helix formation in AGP using various modified AGPs. The disulfide reduced AGP (R-AGP) was extensively unfolded, whereas asialylated AGP (A-AGP) maintained the native structure. Intriguingly, reduced and asialylated AGP (RA-AGP) increased the alpha-helix content as observed in the presence of biomembrane models, and showed a significant decrease in ligand binding capacity. This suggests that AGP has an innate tendency to form an alpha-helix structure, and disulfide bonds are a key factor in the conformational transition between the beta-sheet and alpha-helix structures. However, RA-AGP with all histidine residues chemically modified (HRA-AGP) was found to lose the intrinsic ability to form an alpha-helix structure. Furthermore, disulfide reduction of the H172A mutant expressed in Pichia pastoris also caused a similar loss of folding ability. The present results indicate that disulfide bonds and the C-terminal region, including H172 of AGP, play important roles in alpha-helix formation in the interaction of the protein with biomembranes.
引用
收藏
页码:611 / 620
页数:10
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