Profiling the N-Glycan Composition of IgG with Lectins and Capillary Nanogel Electrophoresis

被引:35
|
作者
Lu, Grace [1 ]
Holland, Lisa A. [1 ]
机构
[1] West Virginia Univ, C Eugene Bennett Dept Chem, Morgantown, WV 26506 USA
关键词
IMMUNOGLOBULIN-G; GLYCOSYLATION; OLIGOSACCHARIDES; SEPARATION; FC; GLYCOPROTEINS; PROTEINS; CANCER; FAB; ELECTROMIGRATION;
D O I
10.1021/acs.analchem.8b03725
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Glycosylated human IgG contains fucosylated biantennary N-glycans with different modifications including N-acetylglucosamine, which bisects the mannose core. Although only a limited number of IgG N-glycan structures are possible, human IgG N-glycans are predominantly biantennary and fucosylated and contain varying levels of alpha 2-6-linked sialic acid, galactose, and bisected N-acetylglucosamine. Monitoring the relative abundance of bisecting N-acetylglucosamine is relevant to physiological processes. A rapid, inexpensive, and automated method is used to successfully profile N-linked IgG glycans and is suitable to distinguish differences in bisection, galactosylation, and sialylation in N-glycans derived from different sources of human IgG. The separation is facilitated with self-assembled nanogels that also contain a single stationary zone of lectin. When the lectin specificity matches the N-glycan, the peak disappears from the electropherogram, identifying the N-glycan structure. The nanogel electrophoresis generates separation efficiencies of 500 000 plates and resolves the positional isomers of monogalactosylated biantennary N-glycan and the monogalactosylated bisected N-glycan. Aleuria aurantia lectin, Erythrina cristagalli lectin (ECL), Sambucus nigra lectin, and Phaseolus vulgaris Erythroagglutinin (PHA-E) are used to identify fucose, galactose, alpha 2-6-linked sialic acid, and bisected N-acetylglucosamine, respectively. Although PHA-E lectin has a strong binding affinity for bisected N-glycans that also contain a terminal galactose on the alpha l-6-linked mannose branch, this lectin has lower affinity for N-glycans containing terminal galactose and for agalactosylated bisected biantennary N-glycans. The lower affinity to these motifs is observed in the electropherograms as a change in peak width, which when used in conjunction with the results from the ECL lectin authenticates the composition of the agalactosylated bisected biantennary N-glycan. For runs performed at 17 degrees C, the precision in migration time and peak area was less than or equal to 0.08 and 4% relative standard deviation, respectively. The method is compatible with electrokinetic and hydrodynamic injections, with detection limits of 70 and 300 pM, respectively.
引用
收藏
页码:1375 / 1383
页数:9
相关论文
共 50 条
  • [11] Identification of 34 N-glycan isomers in human serum by capillary electrophoresis coupled with laser-induced fluorescence allows improving glycan biomarker discovery
    Schwedler, Christian
    Kaup, Matthias
    Weiz, Stefan
    Hoppe, Maria
    Braicu, Elena Iona
    Sehouli, Jalid
    Hoppe, Berthold
    Tauber, Rudolf
    Berger, Markus
    Blanchard, Veronique
    ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2014, 406 (28) : 7185 - 7193
  • [12] Comprehensive N-Glycan Profiling of Avian Immunoglobulin Y
    Gilgunn, Sarah
    Martin, Silvia Millan
    Wormald, Mark R.
    Zapatero-Rodriguez, Julia
    Conroy, Paul J.
    O'Kennedy, Richard J.
    Rudd, Pauline M.
    Saldova, Radka
    PLOS ONE, 2016, 11 (07):
  • [13] Assessment of new biomarkers for ovarian carcinoma with serum N-glycan profiling
    Gong, Hong-Xia
    Fang, Meng
    Wang, Jing-Wen
    Gao, Chun-Fang
    Xu, Ming-Juan
    INTERNATIONAL JOURNAL OF CLINICAL AND EXPERIMENTAL PATHOLOGY, 2016, 9 (02): : 815 - 827
  • [14] Toward the generation of an aminonaphthalene trisulfonate labeled N-glycan database for capillary gel electrophoresis analysis of carbohydrates
    Kerekgyarto, Marta
    Guttman, Andras
    ELECTROPHORESIS, 2014, 35 (15) : 2222 - 2228
  • [15] Filter-Aided N-Glycan Separation (FANGS): A Convenient Sample Preparation Method for Mass Spectrometric N-Glycan Profiling
    Rahman, Salina Abdul
    Bergstroem, Ed
    Watson, Christopher J.
    Wilson, Katherine M.
    Ashford, David A.
    Thomas, Jerry R.
    Ungar, Daniel
    Thomas-Oates, Jane E.
    JOURNAL OF PROTEOME RESEARCH, 2014, 13 (03) : 1167 - 1176
  • [16] The Effect of Sample Glucose Content on PNGase F-Mediated N-Glycan Release Analyzed by Capillary Electrophoresis
    Torok, Rebeka
    Auer, Felicia
    Farsang, Robert
    Jona, Eszter
    Jarvas, Gabor
    Guttman, Andras
    MOLECULES, 2022, 27 (23):
  • [17] Fast Discrimination of Sialylated N-Glycan Linkage Isomers with One-Step Derivatization by Microfluidic Capillary Electrophoresis-Mass Spectrometry
    Cheng, Mengxia
    Shu, Hong
    Yang, Maohua
    Yan, Guoquan
    Zhang, Lei
    Wang, Liang
    Wang, Wenning
    Lu, Haojie
    ANALYTICAL CHEMISTRY, 2022, 94 (11) : 4666 - 4676
  • [18] Effects of N-Glycan Composition on Structure and Dynamics of IgG1 Fc and Their Implications for Antibody Engineering
    Lee, Hui Sun
    Im, Wonpil
    SCIENTIFIC REPORTS, 2017, 7
  • [19] Differentiation of Cancer Cell Origin and Molecular Subtype by Plasma Membrane N-Glycan Profiling
    Hua, Serenus
    Saunders, Mary
    Dimapasoc, Lauren M.
    Jeong, Seung Hyup
    Kim, Bum Jin
    Kim, Suhee
    So, Minkyung
    Lee, Kwang-Sik
    Kim, Jae Han
    Lam, Kit S.
    Lebrilla, Carlito B.
    An, Hyun Joo
    JOURNAL OF PROTEOME RESEARCH, 2014, 13 (02) : 961 - 968
  • [20] Plasma N-Glycan Profiling by Mass Spectrometry for Congenital Disorders of Glycosylation Type II
    Guillard, Mailys
    Morava, Eva
    van Delft, Floris L.
    Hague, Rosie
    Koerner, Christian
    Adamowicz, Maciej
    Wevers, Ron A.
    Lefeber, Dirk J.
    CLINICAL CHEMISTRY, 2011, 57 (04) : 593 - 602