Tuori A, Virtanen I, Uusitalo H
Department of Anatomy, University of Helsinki, Finland.
Histochem J. 1994 Oct;26(10):787-98.
Eleven different fluorescent lectin-conjugates were used to reveal the location of carbohydrate residues in frozen sections of the anterior segment of bovine eyes. The lectins were specific for the following five major carbohydrate groups: (1) glucose/mannose group (Concanavalin A (Con A)); (2) N-acetylglucosamine group (wheat germ agglutinin (WGA)); (3) galactose/N-acetylgalactosamine group (Dolichos biflorus agglutinin (DBA), Helix pomatia agglutinin (HPA), Helix aspersa agglutinin (HAA), Psophocarpus tetragonolobus agglutinin (PTA), Griffonia simplicifolia agglutinin-I-B4 (GSA-I-B4), Artocarpus integrifolia agglutinin (JAC), peanut agglutinin (PNA) and Ricinus communis agglutinin (RCA-I)); (4) L-fucose group (Ulex europaeus agglutinin (UEA-I)); (5) sialic acid group (wheat germ agglutinin (WGA)). All the studied lectins except UEA-I reacted widely with different structures and the results suggest that there are distinct patterns of expression of carbohydrate residues in the anterior segment of the bovine eye. UEA-I bound only to epithelial structures. Some of the lectins reacted very intensely with apical cell surfaces of conjunctival and corneal epithelia suggesting a different glycosylation at the glycocalyx of the epithelia. Also, the binding patterns of conjunctival and corneal epithelia differed with some of the lectins: PNA and RCA-I did not bind at all, and GSA-I-B4 bound only very weakly to the epithelium of the cornea, whereas they bound to the epithelium of the conjunctiva. In addition, HPA, HAA, PNA and WGA did not bind to the corneal basement membrane, but bound to the conjunctiva and vascular basement membranes. This suggests that corneal basement membrane is somehow different from other basement membranes. Lectins with the same carbohydrate specificity (DBA, HPA, HAA and PTA) reacted with the sections almost identically, but some differences were noticed: DBA did not bind to the basement membrane of the conjunctiva and the sclera and did bind to the basement membrane of the cornea, whereas other lectins with same carbohydrate specificities reacted vice versa. Also, the binding of PTA to the trabecular meshwork was negligible, whereas other lectins with the same carbohydrate specificities reacted with the trabecular meshwork. GSA-I-B4 reacted avidly with the endothelium of blood vessels and did not bind to the stroma, so that it made blood vessels very prominent and it might be used as an endothelial marker. This lectin also reacted avidly with the corneal endothelium. Therefore, GSA-I-B4 appears to be a specific marker in bovine tissues for both blood vessel and corneal endothelium cells.
使用了11种不同的荧光凝集素缀合物来揭示牛眼前节冰冻切片中碳水化合物残基的位置。这些凝集素对以下五个主要碳水化合物基团具有特异性:(1) 葡萄糖/甘露糖基团(伴刀豆球蛋白A(Con A));(2) N-乙酰葡糖胺基团(麦胚凝集素(WGA));(3) 半乳糖/N-乙酰半乳糖胺基团(双花扁豆凝集素(DBA)、苹果蜗牛凝集素(HPA)、花园蜗牛凝集素(HAA)、四棱豆凝集素(PTA)、非洲相思子凝集素-I-B4(GSA-I-B4)、面包果凝集素(JAC)、花生凝集素(PNA)和蓖麻凝集素(RCA-I));(4) L-岩藻糖基团(欧洲荆豆凝集素(UEA-I));(5) 唾液酸基团(麦胚凝集素(WGA))。除UEA-I外,所有研究的凝集素都与不同结构广泛反应,结果表明牛眼前节中碳水化合物残基存在明显的表达模式。UEA-I仅与上皮结构结合。一些凝集素与结膜和角膜上皮的顶端细胞表面反应非常强烈,表明上皮细胞糖萼处存在不同的糖基化。此外,结膜和角膜上皮的结合模式在一些凝集素中有所不同:PNA和RCA-I根本不结合,GSA-I-B4仅非常微弱地结合到角膜上皮,而它们结合到结膜上皮。此外,HPA、HAA、PNA和WGA不结合角膜基底膜,但结合到结膜和血管基底膜。这表明角膜基底膜在某种程度上与其他基底膜不同。具有相同碳水化合物特异性的凝集素(DBA、HPA、HAA和PTA)与切片的反应几乎相同,但也注意到一些差异:DBA不结合结膜和巩膜的基底膜,但结合角膜基底膜,而其他具有相同碳水化合物特异性的凝集素反应则相反。此外,PTA与小梁网的结合可以忽略不计,而其他具有相同碳水化合物特异性的凝集素与小梁网反应。GSA-I-B4与血管内皮细胞反应强烈,不结合基质,因此使血管非常突出,它可能用作内皮标记物。这种凝集素也与角膜内皮细胞反应强烈。因此,GSA-I-B4似乎是牛组织中血管和角膜内皮细胞的特异性标记物。