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Synthesis of neoglycopolymers by a combination of "click chemistry" and living radical polymerization.

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TLDR
The synthesis of novel well-defined alkyne side chain functional polymers featuring narrow molecular weight distributions (PDI = 1.09-1.17) by living radical polymerization is described, providing an extremely powerful tool for the synthesis of libraries of materials that differ only in the nature of the sugar moiety presented on a well- defined polymer scaffold.
Abstract
The synthesis of novel well-defined alkyne side chain functional polymers featuring narrow molecular weight distributions (PDI = 1.09−1.17) by living radical polymerization is described. Grafting of protected and unprotected carbohydrates is achieved via either a C-6 or an anomeric azide (α or β) onto these polymers by Cu(I)-catalyzed “click chemistry”, providing a simple and efficient route to synthetic glycopolymers. The strategy provides an extremely powerful tool for the synthesis of libraries of materials that differ only in the nature of the sugar moiety presented on a well-defined polymer scaffold. A library of multivalent ligands were then prepared following a “coclicking” synthetic protocol, and the reactivity of these glycopolymers in the presence of concanavalin A and Ricinus communis agglutinin, model lectins able to selectively bind appropriate mannose and galactose derivatives, respectively, was assessed.

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Journal ArticleDOI

Cu-catalyzed azide-alkyne cycloaddition.

TL;DR: The basis for the unique properties and rate enhancement for triazole formation under Cu(1) catalysis should be found in the high ∆G of the reaction in combination with the low character of polarity of the dipole of the noncatalyzed thermal reaction, which leads to a considerable activation barrier.
Journal ArticleDOI

The growing applications of click chemistry

TL;DR: This tutorial review examines the copper(I)-catalysed 1,2,3-triazole forming reaction between azides and terminal alkynes, which has become the gold standard of click chemistry due to its reliability, specificity and biocompatibility.
Journal ArticleDOI

‘Click’ Chemistry in Polymer and Materials Science

TL;DR: The metal catalyzed azide/alkyne "click" reaction (a variation of the Huisgen 1,3-dipolar cycloaddition reaction between terminal acetylenes and azides) represents an important contribution towards this endeavor.
Journal ArticleDOI

1,3‐Dipolar Cycloadditions of Azides and Alkynes: A Universal Ligation Tool in Polymer and Materials Science

TL;DR: The Minireview discusses whether click chemistry is a miracle tool or an ephemeral trend, and the number of publications dealing with click chemistry has grown exponentially over the last two years.
Journal ArticleDOI

Transition metal-catalyzed living radical polymerization : toward perfection in catalysis and precision polymer synthesis

TL;DR: Catalytic Solvents: Catalyst Disproportionation 4981 2.2.1.
References
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Journal ArticleDOI

Peptidotriazoles on solid phase: [1,2,3]-triazoles by regiospecific copper(i)-catalyzed 1,3-dipolar cycloadditions of terminal alkynes to azides.

TL;DR: A novel regiospecific copper(I)-catalyzed 1,3-dipolar cycloaddition of terminal alkynes to azides on solid-phase is reported, and the X-ray structure of 2-azido-2-methylpropanoic acid has been solved, to yield structural information on the 1, 3-dipoles entering the reaction.
Journal ArticleDOI

Intracellular functions of N-linked glycans.

Ari Helenius, +1 more
- 23 Mar 2001 - 
TL;DR: The division of synthesis and processing between the ER and the Golgi complex represents an evolutionary adaptation that allows efficient exploitation of the potential of oligosaccharides.
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