Shoji Hiroki, Ikenaka Kazuhiro, Nakakita Shin-ichi, Hayama Koh, Hirabayashi Jun, Arata Yoichiro, Kasai Ken-ichi, Nishi Nozomu, Nakamura Takanori
Department of Endocrinology, Kagawa University, 1750-1 Ikenobe, Kita-gun, Kagawa 761-0793, Japan.
Glycobiology. 2005 Jul;15(7):709-20. doi: 10.1093/glycob/cwi051. Epub 2005 Mar 10.
We have identified members of the Xenopus cortical granule lectin (xCGL) family as candidate target glycoproteins of Xenopus galectin-VIIa (xgalectin-VIIa) in Xenopus embryos. In addition to the original xCGL, we also identified a novel member of the xCGL family, xCGL2. Expression of the mRNAs of xCGL and xCGL2, as well as that of xgalectin-VIIa, was observed throughout early embryogenesis. Two and three potential N-glycosylation sites were deduced from the amino acid sequences of xCGL and xCGL2, respectively, and xgalectin-VIIa recognizes N-glycans linked to a common site in xCGL and xCGL2 and also recognizes N-glycans linked to a site specific to xCGL2. However, interaction between xgalectin-Ia and xCGLs was not detectable. We also obtained consistent results on surface plasmon resonance analysis involving xCGLs as ligands and xgalectins as analytes. The Kd value of the interaction between xgalectin-VIIa and xCGLs was calculated to be 35.9 nM. The structures of the N-glycans of xCGLs, which were recognized by xgalectin-VIIa, were analyzed by the two-dimensional sugar map method, and three kinds of N-acetyllactosamine type, biantennary N-glycans were identified as the major neutral N-glycans. The binding specificity of oligosaccharides for xgalectin-VIIa was analyzed by frontal affinity chromatography (FAC). The oligosaccharide specificity pattern of xgalectin-VIIa was similar to that of the human homolog galectin-3, and it was also shown that the N-acetyllactosamine type, biantennary N-glycans exhibit high affinity for xgalectin-VIIa (Kd = 11 microM). These results suggest that xgalectin-VIIa interacts with xCGLs through binding to N-acetyllactosamine type N-glycans and that this interaction might make it possible to organize a lectin network involving members of different lectin families.
我们已将非洲爪蟾皮质颗粒凝集素(xCGL)家族成员鉴定为非洲爪蟾胚胎中非洲爪蟾半乳糖凝集素-VIIa(xgalectin-VIIa)的候选靶糖蛋白。除了原始的xCGL,我们还鉴定出xCGL家族的一个新成员xCGL2。在整个早期胚胎发育过程中均观察到xCGL和xCGL2以及xgalectin-VIIa的mRNA表达。分别从xCGL和xCGL2的氨基酸序列中推导得出两个和三个潜在的N-糖基化位点,并且xgalectin-VIIa识别与xCGL和xCGL2中共同位点相连的N-聚糖,还识别与xCGL2特定位点相连的N-聚糖。然而,未检测到xgalectin-Ia与xCGL之间的相互作用。我们在以xCGL作为配体、xgalectins作为分析物的表面等离子体共振分析中也获得了一致的结果。计算得出xgalectin-VIIa与xCGL之间相互作用的Kd值为35.9 nM。采用二维糖图法分析了被xgalectin-VIIa识别的xCGL的N-聚糖结构,鉴定出三种N-乙酰乳糖胺型双天线N-聚糖为主要的中性N-聚糖。通过前沿亲和色谱(FAC)分析了寡糖对xgalectin-VIIa的结合特异性。xgalectin-VIIa的寡糖特异性模式与人同源物半乳糖凝集素-3相似,并且还表明N-乙酰乳糖胺型双天线N-聚糖对xgalectin-VIIa表现出高亲和力(Kd = 11 microM)。这些结果表明,xgalectin-VIIa通过与N-乙酰乳糖胺型N-聚糖结合而与xCGL相互作用,并且这种相互作用可能使得构建一个涉及不同凝集素家族成员的凝集素网络成为可能。