Yamada Keita, Kinoshita Mitsuhiro, Hayakawa Takao, Nakaya Shuuichi, Kakehi Kazuaki
School of Pharmacy, Kinki University, Higashi-Osaka, 577-8502 Japan.
J Proteome Res. 2009 Feb;8(2):521-37. doi: 10.1021/pr800710f.
Recently, we developed an automated apparatus for rapid releasing of O-glycans from mucin-type glycoproteins and proteoglycans ( Anal. Biochem. 2007 , 362 , 245 - 251 ; 2007 , 371 , 52 - 61 ). In the present paper, we released O-glycans from some leukemia and epithelial cells using the apparatus, and compared the profiles of O-glycans among these cells after fluorescent labeling of the released glycans with 2-aminobenzoic acid. The fluorescent labeled glycans were analyzed using a combination of HPLC and off-line MALDI-(QIT)TOF mass spectrometry We found that leukemia cells generally showed simple glycan profiles and commonly contained sialyl-T (NeuAcalpha2-3Galbeta1-3GalNAc) and disialyl-T (NeuAcalpha2-3Galbeta1-3(NeuAcalpha2-6)GalNAc) antigens as major O-glycans. In contrast, epithelial cancer cell lines usually showed extremely complex profiles. We found that polylactosamine-type O-glycans were abundantly present in MKN45 cells. Especially, we found characteristic glycans, of which Galbeta1-3 residue of core1 structure is modified with biantennary polylactosamine units. In contrast, this cell line did not contain polylactosamine-type N-glycans ( J. Proteome Res. 2006 , 5 , 88 - 97 ). These results suggest that the different biosynthetic pathways for N- and O-glycans are proposed. The method presented here will accelerate the speed for comprehensive analysis of O-glycans in biological samples and will be a powerful tool for clinical/biochemical analysis in cancer biology.
最近,我们开发了一种用于从粘蛋白型糖蛋白和蛋白聚糖中快速释放O-聚糖的自动化仪器(《分析生物化学》,2007年,第362卷,第245 - 251页;2007年,第371卷,第52 - 61页)。在本文中,我们使用该仪器从一些白血病细胞和上皮细胞中释放O-聚糖,并在用2-氨基苯甲酸对释放的聚糖进行荧光标记后,比较了这些细胞中O-聚糖的谱图。使用HPLC和离线MALDI-(QIT)TOF质谱联用分析荧光标记的聚糖。我们发现白血病细胞通常呈现简单的聚糖谱图,并且通常含有唾液酸-T(NeuAcalpha2-3Galbeta1-3GalNAc)和二唾液酸-T(NeuAcalpha2-3Galbeta1-3(NeuAcalpha2-6)GalNAc)抗原作为主要的O-聚糖。相比之下,上皮癌细胞系通常呈现极其复杂的谱图。我们发现多乳糖胺型O-聚糖在MKN45细胞中大量存在。特别是,我们发现了特征性聚糖,其核心1结构的Galbeta1-3残基被双天线多乳糖胺单元修饰。相比之下,该细胞系不含有多乳糖胺型N-聚糖(《蛋白质组研究杂志》,2006年,第5卷,第88 - 97页)。这些结果表明N-聚糖和O-聚糖存在不同的生物合成途径。本文介绍的方法将加快生物样品中O-聚糖综合分析的速度,并且将成为癌症生物学临床/生化分析的有力工具。