Ishii Akihiro, Ikenaka Kazuhiro, Pfeiffer Steven E
Department of Neuroscience, University of Connecticut Medical School, Farmington, Connecticut, USA.
J Neurochem. 2007 Nov;103 Suppl 1:25-31. doi: 10.1111/j.1471-4159.2007.04823.x.
Understanding the rich complement of sugar chains found in cellular membranes is impeded by the complexity of cell types and membrane diversity. To overcome this, we have analyzed the N-linked sugar chain composition of the glycoproteins of CNS myelin, an elaboration of the plasma membranes of oligodendrocytes (OLs) that result in a multilamellar wrapping of neuronal axons, facilitating nerve conduction with dramatic savings of space and energy. Due to an usually high lipid to protein ratio, myelin can be separated readily from other heavier membranes on sucrose gradients and further fractionated into subdomains related to myelin structure and function, including compact myelin and myelin-associated axolemmal membrane (Menon et al. 2003). We analyzed these fractions for N-linked sugar chains, using 2D HPLC following hydrazinolysis and pyridylamination. Our results indicate that compared with total brain homogenate, the amount of N-glycans is 1.3-fold higher in the myelin-associated axolemmal membranes, but it is 0.5-fold less in CM. M5 [Manalpha1-3((Manalpha1-3)(Manalpha1-6)Manalpha1-6)Manbeta1-4GlcNAcbeta1-4GlcNAc] is the most abundant sugar chain in total brain homogenate, compact myelin, and myelin-associated axolemma, constituting approximately 20% of sugar chains. Although the types of sugar chains are similar among the fractions, their expression levels vary significantly. In addition to high mannose type oligosaccharides, the core fucosylated, biantennary N-glycans with bisecting N-acetylglucosamine (GlcNAc) residue, A2G1(3)FB [Galbeta1-4GlcNAcbeta1-2Manalpha1-3(GlcNAcbeta1-2Manalpha1-6)(GlcNAcbeta1-4)Manbeta1-4GlcNAcbeta1-4(Fucalpha1-6)GlcNAc], A2G1(6)FB [GlcNAcbeta1-2Manalpha1-3(Galbeta1-4GlcNAcbeta1-2Manalpha1-6)(GlcNAcbeta1-4)Manbeta1-4GlcNAcbeta1-4 (Fucalpha1-6)GlcNAc] and BA-1 [Manalpha1-3(GlcNAcbeta1-2Manalpha1-6)(GlcNAcbeta1-4)Manbeta1-4GlcNAcbeta1-4(Fucalpha1-6)GlcNAc], and A1(6)G0F [Manalpha1-3(GlcNAcbeta1-2Manalpha1-6)Manbeta1-4GlcNAcbeta1-4(Fucalpha1-6) GlcNAc] are also present in relatively large proportions in compact myelin. We suggest that these differences may be related to myelin-axolemmal function.
细胞类型的复杂性和膜的多样性阻碍了我们对细胞膜中丰富糖链的理解。为了克服这一问题,我们分析了中枢神经系统髓磷脂糖蛋白的N-连接糖链组成,髓磷脂是少突胶质细胞(OLs)质膜的一种精细结构,它对神经元轴突进行多层包裹,从而显著节省空间和能量,促进神经传导。由于髓磷脂通常具有较高的脂质与蛋白质比例,因此可以很容易地在蔗糖梯度上与其他较重的膜分离,并进一步分离成与髓磷脂结构和功能相关的亚结构域,包括致密髓磷脂和髓磷脂相关轴膜(梅农等人,2003年)。我们使用肼解和吡啶基胺化后的二维高效液相色谱法分析了这些亚结构域中的N-连接糖链。我们的结果表明,与全脑匀浆相比,髓磷脂相关轴膜中N-聚糖的含量高1.3倍,但在致密髓磷脂中则少0.5倍。M5 [Manα1-3((Manα1-3)(Manα1-6)Manα1-6)Manβ1-4GlcNAcβ1-4GlcNAc] 是全脑匀浆、致密髓磷脂和髓磷脂相关轴膜中最丰富的糖链,约占糖链的20%。尽管各亚结构域中糖链的类型相似,但其表达水平差异显著。除了高甘露糖型寡糖外,核心岩藻糖基化的、带有平分N-乙酰葡糖胺(GlcNAc)残基的双天线N-聚糖、A2G1(3)FB [Galβ1-4GlcNAcβ1-2Manα1-3(GlcNAcβ1-2Manα1-6)(GlcNAcβ1-4)Manβ1-4GlcNAcβ1-4(Fucα1-6)GlcNAc]、A2G1(6)FB [GlcNAcβ1-2Manα1-3(Galβ1-4GlcNAcβ1-2Manα1-6)(GlcNAcβ1-4)Manβ1-4GlcNAcβ1-4 (Fucα1-6)GlcNAc] 和BA-1 [Manα1-3(GlcNAcβ1-2Manα1-6)(GlcNAcβ1-4)Manβ1-4GlcNAcβ1-4(Fucα1-6)GlcNAc],以及A1(6)G0F [Manα1-3(GlcNAcβ1-2Manα1-6)Manβ1-4GlcNAcβ1-4(Fucα1-6) GlcNAc] 在致密髓磷脂中也以相对较大的比例存在。我们认为这些差异可能与髓磷脂 - 轴膜功能有关。