Inovation and Joint Research Center, Shizuoka University, 836 Ohya, Suruga-ku, Shizuoka 422-8529, Japan.
Glycobiology. 2012 May;22(5):616-29. doi: 10.1093/glycob/cwr187. Epub 2011 Dec 22.
A lectin was purified from the mushroom Hygrophorus russula by affinity chromatography on a Sephadex G-50 column and BioAssist S cation exchange chromatography and designated H. russula lectin (HRL). The results of sodium dodecyl sulfate-polyaclylamidegel electrophoresis, gel filtration and matrix-assisted laser desorption ionization time-of-flight mass spectrometry of HRL indicated that it was composed of four identical 18.5 kDa subunits with no S-S linkage. Isoelectric focusing of the lectin showed bands near pI 6.40. The complete sequence of 175 amino acid residues was determined by amino acid sequencing of intact or enzyme-digested HRL. The sequence showed homology with Grifola frondosa lectin. The cDNA of HRL was cloned from RNA extracted from the mushroom. The open reading frame of the cDNA consisted of 528 bp encoding 176 amino acids. In hemagglutination inhibition assay, α1-6 mannobiose was the strongest inhibitor and isomaltose, Glcα1-6Glc, was the second strongest one, among mono- and oligosaccharides tested. Frontal affinity chromatography indicated that HRL had the highest affinity for Manα1-6(Manα1-3)Manβ1-4GlcNAcβ1-4GlcNAc, and non-reducing terminal Manα1-6 was essential for the binding of HRL to carbohydrate chains. The sugar-binding specificity of HRL was also analyzed by using BIAcore. The result from the analysis exhibited positive correlations with that of the hemagglutination inhibition assay. All the results suggested that HRL recognized the α1-6 linkage of mannose and glucose, especially the Manα1-6 bond. HRL showed a mitogenic activity against spleen lymph cells of an F344 rat. Furthermore, an enzyme-linked immunosorbent assay showed strong binding of HRL to human immunodeficiency virus type-1 gp120.
从红菇属蘑菇 Hygrophorus russula 通过 Sephadex G-50 柱和 BioAssist S 阳离子交换层析的亲和层析纯化了一种凝集素,并将其命名为 H. russula 凝集素(HRL)。HRL 的十二烷基硫酸钠-聚丙烯酰胺凝胶电泳、凝胶过滤和基质辅助激光解吸电离飞行时间质谱的结果表明,它由四个相同的 18.5 kDa 亚基组成,没有 S-S 键。该凝集素的等电聚焦显示在 pI 6.40 附近有带。通过完整或酶消化的 HRL 的氨基酸测序确定了 175 个氨基酸残基的完整序列。该序列与灰树花凝集素有同源性。从蘑菇中提取的 RNA 克隆了 HRL 的 cDNA。cDNA 的开放阅读框由 528bp 组成,编码 176 个氨基酸。在血凝抑制试验中,α1-6 甘露二糖是最强的抑制剂,异麦芽糖、Glcα1-6Glc 是第二强抑制剂,在所测试的单糖和寡糖中。前沿亲和层析表明,HRL 对 Manα1-6(Manα1-3)Manβ1-4GlcNAcβ1-4GlcNAc 具有最高的亲和力,非还原末端 Manα1-6 是 HRL 与碳水化合物结合的必需条件。还通过 BIAcore 分析了 HRL 的糖结合特异性。该分析的结果与血凝抑制试验的结果呈正相关。所有结果表明,HRL 识别甘露糖和葡萄糖的α1-6 键,特别是 Manα1-6 键。HRL 对 F344 大鼠脾淋巴细胞具有有丝分裂活性。此外,酶联免疫吸附试验显示 HRL 与人免疫缺陷病毒 1 型 gp120 具有强烈的结合。