Poola I, Narasimhan S
Department of Biochemistry and Molecular Biology, SUNY Health Science Center, Syracuse 13210.
Biochem J. 1988 Feb 15;250(1):117-24. doi: 10.1042/bj2500117.
The carbohydrate-binding specificity of rice (Oryza sativa) lectin was investigated by testing the ability of radioactively labelled glycopeptides and oligosaccharides to bind to a rice lectin-Sepharose 4B column. Rice lectin binds asparagine-linked oligosaccharides through the core NN'-diacetylchitobiose moiety. Whereas beta 1-4-mannose enhances the binding strength only to a small extent, alpha 1-3-linked core mannose increases it considerably. A core alpha 1-6-linked mannose residue has a slightly inhibitory effect. Binding is not affected when one or both of the alpha-mannose residues are substituted with mannose at C-2, C-3 and C-6 or with N-acetylglucosamine (GlcNAc) at C-2 positions. The presence of an alpha 1-6-fucose residue attached to the asparagine-linked GlcNAc also does not affect the binding. The binding of complex biantennary glycopeptides is not altered by the presence of one or two galactose residues in the non-reducing terminus, but the presence of one or two sialic acid residues decreases the binding capacity. A bisecting beta 1-4-linked GlcNAc attached to beta-linked mannose residue enhances the binding of sialo, asialo and asialoagalacto complex biantennary-type glycopeptides. Bisected hybrid-type glycopeptides bind very tightly to a rice lectin-Sepharose 4B column: Substitution of alpha 1-3-mannose residue at C-2 and C-4 with GlcNAc completely inhibits the binding of both bisected and non-bisected complex asparagine-linked glycopeptides. O-Glycosidically linked oligosaccharides containing GlcNAc bind very weakly to a rice lectin column. The applicability of immobilized rice lectin columns in the fractionation of asparagine-linked oligosaccharides is discussed.
通过检测放射性标记的糖肽和寡糖与水稻凝集素-琼脂糖4B柱结合的能力,研究了水稻(Oryza sativa)凝集素的碳水化合物结合特异性。水稻凝集素通过核心NN'-二乙酰壳二糖部分结合天冬酰胺连接的寡糖。虽然β1-4-甘露糖仅在很小程度上增强结合强度,但α1-3连接的核心甘露糖会显著增强结合强度。核心α1-6连接的甘露糖残基具有轻微的抑制作用。当α-甘露糖残基中的一个或两个在C-2、C-3和C-6处被甘露糖取代,或在C-2位置被N-乙酰葡糖胺(GlcNAc)取代时,结合不受影响。连接到天冬酰胺连接的GlcNAc上的α1-6-岩藻糖残基的存在也不影响结合。在非还原末端存在一个或两个半乳糖残基不会改变复杂双天线糖肽的结合,但存在一个或两个唾液酸残基会降低结合能力。连接到β连接的甘露糖残基上的平分β1-4连接的GlcNAc增强了唾液酸化、去唾液酸化和去唾液酸半乳糖化复杂双天线型糖肽的结合。平分的杂合型糖肽与水稻凝集素-琼脂糖4B柱紧密结合:在C-2和C-4处用GlcNAc取代α1-3-甘露糖残基完全抑制了平分和未平分的复杂天冬酰胺连接糖肽的结合。含有GlcNAc的O-糖苷连接的寡糖与水稻凝集素柱的结合非常弱。讨论了固定化水稻凝集素柱在天冬酰胺连接的寡糖分级分离中的适用性。