Stuike-Prill R, Meyer B
Complex Carbohydrate Research Center, University of Georgia, Athens 30602.
Eur J Biochem. 1990 Dec 27;194(3):903-19. doi: 10.1111/j.1432-1033.1990.tb19485.x.
Energetically favored conformations of glycopeptide 1 were calculated using the newly developed force-field program, GEGOP (geometry of glycopeptides). The three-dimensional structure of glycopeptide 1, which is part of the Fc fragment of IgG1, has been calculated. 1 contains 27 amino acid residues from Pro291 to Lys317 and a biantennary decasaccharide N-linked to Asn297. The conformations of the peptide and the carbohydrate parts are shown to be mutually dependent. Single glycosyl residues of 1 exhibit interaction energies of up to -31.8 kJ/mol with the peptide portion. Generally, only a few of the glycosyl residues of the oligosaccharide moiety express significant interaction energies with the peptide part. No easy prediction is possible of glycosyl residues which exhibit favorable interaction energies. However, in all of the calculated structures, the glycosyl residues of the 1-6-linked branches show strong attractive forces for the peptide part. 1-6-glycosidically linked branches can adopt a larger number of conformations than other linkages due to their high flexibility which allows more favorable interactions with proteins. We developed the GEGOP program in order to be able to study the preferred conformations of large glycopeptides. The program is based on the GESA (geometry of saccharides) program and utilizes the HSEA (hard sphere exo anomeric) force field for the carbohydrate part and the ECEPP/2 (empirical conformation energy program for peptides) force field [Némethy, G., Pottle, M. S. & Scheraga, H. A. (1983) J. Phys. Chem. 87, 1883-1887] for the peptide part. The GEGOP program allows the simultaneous relaxation of all rotational degrees of freedom of these glycoconjugates during the energy optimization process. Thus, mutual interactions between glycosyl and amino acid residues can be studied in detail.
使用新开发的力场程序GEGOP(糖肽几何结构)计算了糖肽1的能量有利构象。已计算出作为IgG1 Fc片段一部分的糖肽1的三维结构。1包含从Pro291到Lys317的27个氨基酸残基以及与Asn297 N-连接的双触角十糖。肽部分和碳水化合物部分的构象显示出相互依赖。1的单个糖基残基与肽部分的相互作用能高达-31.8 kJ/mol。一般来说,寡糖部分只有少数糖基残基与肽部分表现出显著的相互作用能。对于表现出有利相互作用能的糖基残基,无法轻易预测。然而,在所有计算结构中,1-6连接分支的糖基残基对肽部分表现出强大的吸引力。由于其高灵活性,1-6糖苷键连接的分支比其他连接方式能采用更多的构象,这使得它们能与蛋白质有更有利的相互作用。我们开发GEGOP程序是为了能够研究大型糖肽的优选构象。该程序基于GESA(糖类几何结构)程序,对碳水化合物部分使用HSEA(硬球外端基异构)力场,对肽部分使用ECEPP/2(肽的经验构象能量程序)力场 [内梅蒂,G.,波特,M. S. & 谢拉加,H. A.(1983年)《物理化学杂志》87,1883 - 1887]。GEGOP程序允许在能量优化过程中同时放松这些糖缀合物所有旋转自由度。因此,可以详细研究糖基和氨基酸残基之间的相互作用。