Literature DB >> 27318477

Novel interactions of complex carbohydrates with peanut (PNA), Ricinus communis (RCA-I), Sambucus nigra (SNA-I) and wheat germ (WGA) agglutinins as revealed by the binding specificities of these lectins towards mucin core-2 O-linked and N-linked glycans and related structures.

E V Chandrasekaran1, Jun Xue2, Jie Xia2, Siraj D Khaja2, Conrad F Piskorz2, Robert D Locke2, Sriram Neelamegham3, Khushi L Matta4,5.   

Abstract

Plant lectins through their multivalent quaternary structures bind intrinsically flexible oligosaccharides. They recognize fine structural differences in carbohydrates and interact with different sequences in mucin core 2 or complex-type N-glycan chain and also in healthy and malignant tissues. They are used in characterizing cellular and extracellular glycoconjugates modified in pathological processes. We study here, the complex carbohydrate-lectin interactions by determining the effects of substituents in mucin core 2 tetrasaccharide Galβ1-4GlcNAcβ1-6(Galβ1-3)GalNAcα-O-R and fetuin glycopeptides on their binding to agarose-immobilized lectins PNA, RCA-I, SNA-I and WGA. Briefly, in mucin core 2 tetrasaccharide (i) structures modified by α2-3/6-Sialyl LacNAc, LewisX and α1-3-Galactosyl LacNAc resulted in regular binding to PNA whereas compounds with 6-sulfo LacNAc displayed no-binding; (ii) strucures bearing α2-6-sialyl 6-sulfo LacNAc, or 6-sialyl LacdiNAc carbohydrates displayed strong binding to SNA-I; (iii) structures with α2-3/6-sialyl, α1-3Gal LacNAc or LewisX were non-binder to RCA-I and compounds with 6-sulfo LacNAc only displayed weak binding; (iv) structures containing LewisX, 6-Sulfo LewisX, α2-3/6-sialyl LacNAc, α2-3/6-sialyl 6-sulfo LacNAc and GalNAc Lewis-a were non-binding to WGA, those with α1-2Fucosyl, α1-3-Galactosyl LacNAc, α2-3-sialyl T-hapten plus 3'/6'sulfo LacNAc displayed weak binding, and compounds with α2-3-sialyl T-hapten, α2.6-Sialyl LacdiNAc, α2-3-sialyl D-Fucβ1-3 GalNAc and Fucα-1-2 D-Fucβ-1-3GalNAc displaying regular binding and GalNAc LewisX and LacdiNAc plus D-Fuc β-1-3 GalNAcα resulting in tight binding. RCA-I binds Fetuin triantennary asialoglycopeptide 100 % after α-2-3 and 25 % after α-2-6 sialylation, 30 % after α-1-2 and 100 % after α-1-3 fucosylation, and 50 % after α-1-3 galactosylation. WGA binds 3-but not 6-Fucosyl chitobiose core. Thus, information on the influence of complex carbohydrate chain constituents on lectin binding is apparently essential for the potential application of lectins in glycoconjugate research.

Entities:  

Keywords:  Binding specificities; Carbohydrate chain constituents; Complex glycans; Mucin core-2 compounds; N-linked glycans; Plant lectins

Mesh:

Substances:

Year:  2016        PMID: 27318477     DOI: 10.1007/s10719-016-9678-y

Source DB:  PubMed          Journal:  Glycoconj J        ISSN: 0282-0080            Impact factor:   2.916


  64 in total

1.  Precipitation and carbohydrate-binding specificity studies on wheat germ agglutinin.

Authors:  I J Goldstein; S Hammarström; G Sundblad
Journal:  Biochim Biophys Acta       Date:  1975-09-09

Review 2.  Diversity of cell glycoconjugates shown histochemically: a perspective.

Authors:  S S Spicer; B A Schulte
Journal:  J Histochem Cytochem       Date:  1992-01       Impact factor: 2.479

3.  Reversible sialylation: synthesis of cytidine 5'-monophospho-N-acetylneuraminic acid from cytidine 5'-monophosphate with alpha2,3-sialyl O-glycan-, glycolipid-, and macromolecule-based donors yields diverse sialylated products.

Authors:  E V Chandrasekaran; Jun Xue; Jie Xia; Robert D Locke; Khushi L Matta; Sriram Neelamegham
Journal:  Biochemistry       Date:  2007-12-08       Impact factor: 3.162

4.  Characterization of the carbohydrate binding specificity and kinetic parameters of lectins by using surface plasmon resonance.

Authors:  S R Haseley; P Talaga; J P Kamerling; J F Vliegenthart
Journal:  Anal Biochem       Date:  1999-10-15       Impact factor: 3.365

5.  Imparting exquisite specificity to peanut agglutinin for the tumor-associated Thomsen-Friedenreich antigen by redesign of its combining site.

Authors:  V Sharma; M Vijayan; A Surolia
Journal:  J Biol Chem       Date:  1996-08-30       Impact factor: 5.157

6.  Oligosaccharide specificities of Phaseolus vulgaris leukoagglutinating and erythroagglutinating phytohemagglutinins. Interactions with N-glycanase-released oligosaccharides.

Authors:  E D Green; J U Baenziger
Journal:  J Biol Chem       Date:  1987-09-05       Impact factor: 5.157

7.  A motif-based analysis of glycan array data to determine the specificities of glycan-binding proteins.

Authors:  Andrew Porter; Tingting Yue; Lee Heeringa; Steven Day; Edward Suh; Brian B Haab
Journal:  Glycobiology       Date:  2009-11-29       Impact factor: 4.313

8.  Specificity analysis of three clonal and five non-clonal alpha 1,3-L-fucosyltransferases with sulfated, sialylated, or fucosylated synthetic carbohydrates as acceptors in relation to the assembly of 3'-sialyl-6'-sulfo Lewis x (the L-selectin ligand) and related complex structures.

Authors:  E V Chandrasekaran; R K Jain; R D Larsen; K Wlasichuk; R A DiCioccio; K L Matta
Journal:  Biochemistry       Date:  1996-07-09       Impact factor: 3.162

9.  Specificity of isolectins of wheat germ agglutinin for sialyloligosaccharides: a 360-MHz proton nuclear magnetic resonance binding study.

Authors:  K A Kronis; J P Carver
Journal:  Biochemistry       Date:  1982-06-22       Impact factor: 3.162

Review 10.  Biological roles of oligosaccharides: all of the theories are correct.

Authors:  A Varki
Journal:  Glycobiology       Date:  1993-04       Impact factor: 4.313

View more
  5 in total

1.  Exploring the In situ pairing of human galectins toward synthetic O-mannosylated core M1 glycopeptides of α-dystroglycan.

Authors:  Lareno L Villones; Anna-Kristin Ludwig; Hiroyuki Kumeta; Seiya Kikuchi; Rika Ochi; Tomoyasu Aizawa; Shin-Ichiro Nishimura; Hans-Joachim Gabius; Hiroshi Hinou
Journal:  Sci Rep       Date:  2022-10-23       Impact factor: 4.996

2.  A biotechnological tool for glycoprotein desialylation based on immobilized neuraminidase from Clostridium perfringens.

Authors:  Lucía Bidondo; Mercedes Landeira; Florencia Festari; Teresa Freire; Cecilia Giacomini
Journal:  Biochem Biophys Rep       Date:  2021-03-02

3.  The differential role of Leydig cells in the skin and gills of Lissotriton italicus larvae.

Authors:  Elvira Brunelli; Rachele Macirella; Vittoria Curcio; Biagio D'Aniello; Anna Di Cosmo
Journal:  Microsc Res Tech       Date:  2022-01-29       Impact factor: 2.893

4.  Chemoenzymatic modular assembly of O-GalNAc glycans for functional glycomics.

Authors:  Shuaishuai Wang; Congcong Chen; Madhusudhan Reddy Gadi; Varma Saikam; Ding Liu; He Zhu; Roni Bollag; Kebin Liu; Xi Chen; Fengshan Wang; Peng George Wang; Peixue Ling; Wanyi Guan; Lei Li
Journal:  Nat Commun       Date:  2021-06-11       Impact factor: 14.919

5.  Role of IGF-1R in ameliorating apoptosis of GNE deficient cells.

Authors:  Reema Singh; Priyanka Chaudhary; Ranjana Arya
Journal:  Sci Rep       Date:  2018-05-09       Impact factor: 4.379

  5 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.