Solid-phase synthesis for the identification of high-affinity bivalent lectin ligands

被引:18
作者
Debenham, SD [1 ]
Snyder, PW [1 ]
Toone, EJ [1 ]
机构
[1] Duke Univ, Dept Chem, Durham, NC 27708 USA
关键词
D O I
10.1021/jo0207271
中图分类号
O62 [有机化学];
学科分类号
070303 ; 081704 ;
摘要
The development of carbohydrate-based therapeutics has been frustrated by the low affinities that characterize protein-carbohydrate complexation. Because of the oligomeric nature of most lectins, the use of multivalency may offer a successful strategy for the creation of high-affinity ligands. The solid-phase evaluation of libraries of peptide-linked multivalent ligands facilitates rapid examination of a large fraction of linker structure space. If such solid-phase assays are to replicate solution binding behavior, the potential for intermolecular bivalent binding on bead surfaces must be eliminated. Here we report the solid-phase synthesis and analysis of peptide-linked, spatially segregated mono- and bivalent ligands for the legume lectin concanavalin A. Bead shaving protocols were used for the creation of beads displaying spatially segregated binding sequences on the surface of Tentagel resins. The same ligands were also synthesized on PEGA resin to determine the effect of ligand presentation on solid-phase binding. While we set out to determine the lower limit of assay sensitivity, the unexpected observation that intermolecular bivalent ligand binding is enhanced for bivalent ligands relative to monovalent ligands allowed direct observation of the level of surface blocking required to prevent intermolecular bivalent ligand binding. For a protein with binding sites separated by 65 A, approximately 99.9% of Tentagel(1) surface sites and 99.99% of the total sites on a PEGA bead must be blocked to prevent intermolecular bivalent binding. We also report agglutination and calorimetric solution-phase binding studies of mono- and bivalent peptide-linked ligands.
引用
收藏
页码:5805 / 5811
页数:7
相关论文
共 50 条
[1]   SYNTHESIS OF CARBON-LINKED GLYCOPEPTIDES AS STABLE GLYCOPEPTIDE MODELS [J].
BERTOZZI, CR ;
HOEPRICH, PD ;
BEDNARSKI, MD .
JOURNAL OF ORGANIC CHEMISTRY, 1992, 57 (23) :6092-6094
[2]   Lysine-based cluster mannosides that inhibit ligand binding to the human mannose receptor at nanomolar concentration [J].
Biessen, EAL ;
Noorman, F ;
vanTeijlingen, ME ;
Kuiper, J ;
BarrettBergshoeff, M ;
Bijsterbosch, MK ;
Rijken, DC ;
vanBerkel, TJC .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1996, 271 (45) :28024-28030
[3]   INTERACTIONS OF CONCANAVALIN-A WITH A TRIMANNOSYL OLIGOSACCHARIDE FRAGMENT OF COMPLEX AND HIGH MANNOSE TYPE GLYCOPEPTIDES [J].
BREWER, F ;
BHATTACHARYYA, L ;
BROWN, RD ;
KOENIG, SH .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1985, 127 (03) :1066-1071
[4]   A single-bead decode strategy using electrospray ionization mass spectrometry and a new photolabile linker: 3-Amino-3-(2-nitrophenyl)propionic acid [J].
Brown, BB ;
Wagner, DS ;
Geysen, HM .
MOLECULAR DIVERSITY, 1995, 1 (01) :4-12
[5]  
BURKHALTER NF, 2000, OLIGOSACCHARIDES CHE
[6]   A NOVEL LYSINE-PROTECTING PROCEDURE FOR CONTINUOUS-FLOW SOLID-PHASE SYNTHESIS OF BRANCHED PEPTIDES [J].
BYCROFT, BW ;
CHAN, WC ;
CHHABRA, SR ;
HONE, ND .
JOURNAL OF THE CHEMICAL SOCIETY-CHEMICAL COMMUNICATIONS, 1993, (09) :778-779
[7]   CALORIMETRIC ANALYSIS OF THE BINDING OF LECTINS WITH OVERLAPPING CARBOHYDRATE-BINDING LIGAND SPECIFICITIES [J].
CHERVENAK, MC ;
TOONE, EJ .
BIOCHEMISTRY, 1995, 34 (16) :5685-5695
[8]   Analysis of the binding specificities of oligomannoside-binding proteins using methylated monosaccharides [J].
Chervenak, MC ;
Toone, EJ .
BIOORGANIC & MEDICINAL CHEMISTRY, 1996, 4 (11) :1963-1977
[9]  
CHEVERNAK MC, 1994, J AM CHEM SOC, V116, P10533
[10]  
COCKING EC, 1954, BIOCHEM J, V58, pR12