From glycophenotyping by (plant) lectin histochemistry to defining functionality of glycans by pairing with endogenous lectins

被引:35
作者
Kaltner, Herbert [1 ]
Caballero, Gabriel Garcia [1 ]
Ludwig, Anna-Kristin [1 ]
Manning, Joachim C. [1 ]
Gabius, Hans-Joachim [1 ]
机构
[1] Ludwig Maximilians Univ Munchen, Inst Physiol Chem, Fac Vet Med, Vet Str 13, D-80539 Munich, Germany
关键词
Galectin; Glycocalyx; Glycosylation; Haemagglutinin; Sugar code; ADHESION/GROWTH-REGULATORY GALECTINS; NEUROBLASTOMA-CELL-GROWTH; HAMSTER-KIDNEY CELLS; PROTEIN GLYCOSYLATION; COLON-CANCER; GM1; GANGLIOSIDE; DOWN-REGULATION; CARBOHYDRATE COMPONENTS; LINKED GLYCOSYLATION; TUMORAL CALCINOSIS;
D O I
10.1007/s00418-018-1676-7
中图分类号
Q2 [细胞生物学];
学科分类号
071013 [干细胞生物学];
摘要
About 60 years ago, the efforts to identify blood group-specific haemagglutinins in plant extracts by broad-scale testing were beginning to make a large panel of these proteins available as laboratory tools. Their ability to 'read' cell surface signals like antibodies do was the reason for W. C. Boyd to call them lectins, from Latin legere (to read). These proteins turned out to be as widely present in nature as glycans (polysaccharides or carbohydrate chains of cellular glycoconjugates) are. Since carbohydrates have the virtue to facilitate high-density coding in a minimum of space and lectins (initially mostly from plants called phytohaemagglutinins) turned out to be receptors for glycans, their pairing made many applications possible. Most prominently, these proteins were instrumental to map glycome complexity and sites of product generation during glycan assembly in the cell. The detection of mammalian (tissue) lectins and the emerging evidence for intimate molecular recognition between this class of receptors and their (glycoconjugate) counterreceptors substantiate that understanding the rules of the sugar code is presently a major challenge.
引用
收藏
页码:547 / 568
页数:22
相关论文
共 203 条
[1]
AGRAWAL BBL, 1965, BIOCHEM J, V96, pC23
[2]
ALLEN NK, 1969, J IMMUNOL, V102, P1295
[3]
Tumour suppressor p16INK4a-anoikis-favouring decrease in N/O-glycan/cell surface sialylation by down-regulation of enzymes in sialic acid biosynthesis in tandem in a pancreatic carcinoma model [J].
Amano, Maho ;
Eriksson, Hanna ;
Manning, Joachim C. ;
Detjen, Katharina M. ;
Andre, Sabine ;
Nishimura, Shin-Ichiro ;
Lehtio, Janne ;
Gabius, Hans-Joachim .
FEBS JOURNAL, 2012, 279 (21) :4062-4080
[4]
André S, 2014, FOLIA BIOL-PRAGUE, V60, P95
[5]
Tumor suppressor p16INK4a -: modulator of glycomic profile and galectin-1 expression to increase susceptibility to carbohydrate-dependent induction of anoikis in pancreatic carcinoma cells [J].
Andre, Sabine ;
Sanchez-Ruderisch, Hugo ;
Nakagawa, Hiroaki ;
Buchholz, Malte ;
Kopitz, Jurgen ;
Forberich, Pia ;
Kemmner, Wolfgang ;
Boeck, Corina ;
Deguchi, Kisaburo ;
Detjen, Katharia M. ;
Wiedenmann, Bertram ;
von Knebel Doeberitz, Magnus ;
Gress, Thomas M. ;
Nishimura, Shin-Ichiro ;
Rosewicz, Stefan ;
Gabius, Hans-Joachim .
FEBS JOURNAL, 2007, 274 (13) :3233-3256
[6]
Merging carbohydrate chemistry with lectin histochemistry to study inhibition of lectin binding by glycoclusters in the natural tissue context [J].
Andre, Sabine ;
Kaltner, Herbert ;
Kayser, Klaus ;
Murphy, Paul V. ;
Gabius, Hans-Joachim .
HISTOCHEMISTRY AND CELL BIOLOGY, 2016, 145 (02) :185-199
[7]
From structural to functional glycomics: core substitutions as molecular switches for shape and lectin affinity of N-glycans [J].
Andre, Sabine ;
Kozar, Tibor ;
Kojima, Shuji ;
Unverzagt, Carlo ;
Gabius, Hans-Joachim .
BIOLOGICAL CHEMISTRY, 2009, 390 (07) :557-565
[8]
I-type lectins [J].
Angata, T ;
Brinkman-Van der Linden, ECM .
BIOCHIMICA ET BIOPHYSICA ACTA-GENERAL SUBJECTS, 2002, 1572 (2-3) :294-316
[9]
[Anonymous], 2009, SUGAR CODE
[10]
[Anonymous], 2009, SUGAR CODE FUNDAMENT