Konozy Emadeldin H E, Mulay Ranjana, Faca Vitor, Ward Richard John, Greene Lewis Joel, Roque-Barriera Maria Cristina, Sabharwal Sushma, Bhide Shobhana V
Departamento de Biologia Celular, Faculdade de Medicina de Ribeirão Preto, Universidade de São Paulo, 14049-900 Ribeirão Preto, Brazil.
Biochimie. 2002 Oct;84(10):1035-43. doi: 10.1016/s0300-9084(02)00003-2.
Lectin from a leaf of Erythrina indica was isolated by affinity chromatography on Lactamyl-Seralose 4B. Lectin gave a single band in polyacrylamide gel electrophoresis (PAGE). In SDS-gel electrophoresis under reducing and non-reducing conditions Erythrina indica leaf lectin (EiLL) split into two bands with subunit molecular weights of 30 and 33 kDa, whereas 58 kDa was obtained for the intact lectin by gel filtration on Sephadex G-100. EiLL agglutinated all human RBC types, with a slight preference for the O blood group. Lectin was found to be a glycoprotein with a neutral sugar content of 9.5%. The carbohydrate specificity of lectin was directed towards D-galactose and its derivatives with pronounced preference for lactose. EiLL had pH optima at pH 7.0; above and below this pH lectin lost sugar-binding capability rapidly. Lectin showed broad temperature optima from 25 to 50 degrees C; however, at 55 degrees C EiLL lost more than 90% of its activity and at 60 degrees C it was totally inactivated. The pI of EiLL was found to be 7.6. The amino acid analysis of EiLL indicated that the lectin was rich in acidic as well as hydrophobic amino acids and totally lacked cysteine and methionine. The N-terminal amino acids were Val-Glu-Thr-IIe-Ser-Phe-Ser-Phe-Ser-Glu-Phe-Glu-Ala-Gly-Asn-Asp-X-Leu-Thr-Gln-Glu-Gly-Ala-Ala-Leu-. Chemical modification studies of both EiLL and Erythrina indica seed lectin (EiSL) with phenylglyoxal, DEP and DTNB revealed an absence of arginine, histidine and cysteine, respectively, in or near the ligand-binding site of both lectins. Modification of tyrosine with NAI led to partial inactivation of EiLL and EiSL; however, total inactivation was observed upon NBS-modification of two tryptophan residues in EiSL. Despite the apparent importance of these tryptophan residues for lectin activity they did not seem to have a direct role in binding haptenic sugar as D-galactose did not protect lectin from inactivation by NBS.
通过在乳酰胺 - 丝氨酸琼脂糖4B上进行亲和层析,从刺桐叶中分离出凝集素。凝集素在聚丙烯酰胺凝胶电泳(PAGE)中呈现单一条带。在还原和非还原条件下的SDS - 凝胶电泳中,刺桐叶凝集素(EiLL)分裂成两条带,亚基分子量分别为30 kDa和33 kDa,而通过Sephadex G - 100凝胶过滤法测得完整凝集素的分子量为58 kDa。EiLL能凝集所有人类红细胞类型,对O血型略有偏好。发现凝集素是一种糖蛋白,中性糖含量为9.5%。凝集素的碳水化合物特异性针对D - 半乳糖及其衍生物,对乳糖有明显偏好。EiLL在pH 7.0时具有最佳活性;高于或低于此pH值,凝集素会迅速丧失糖结合能力。凝集素在25至50摄氏度范围内表现出较宽的温度最佳活性范围;然而,在55摄氏度时,EiLL丧失了超过90%的活性,在60摄氏度时则完全失活。EiLL的pI值为7.6。EiLL的氨基酸分析表明,该凝集素富含酸性和疏水性氨基酸,完全不含半胱氨酸和甲硫氨酸。N端氨基酸序列为Val - Glu - Thr - Ile - Ser - Phe - Ser - Phe - Ser - Glu - Phe - Glu - Ala - Gly - Asn - Asp - X - Leu - Thr - Gln - Glu - Gly - Ala - Ala - Leu - 。用苯乙二醛、DEP和DTNB对EiLL和刺桐种子凝集素(EiSL)进行化学修饰研究表明,两种凝集素的配体结合位点内或附近分别不存在精氨酸、组氨酸和半胱氨酸。用NAI对酪氨酸进行修饰导致EiLL和EiSL部分失活;然而,对EiSL中的两个色氨酸残基用NBS进行修饰后观察到完全失活。尽管这些色氨酸残基对凝集素活性显然很重要,但它们似乎在结合半抗原糖方面没有直接作用,因为D - 半乳糖并不能保护凝集素不被NBS灭活。