Abstract

Biodegradable amphiphilic diblock copolymers based on an aliphatic ester block and various hydrophilic methacrylic monomers were synthesized using a novel hydroxyl-functionalized trithiocarbonate-based chain transfer agent. One protocol involved the one-pot simultaneous ring-opening polymerization (ROP) of the biodegradable monomer (3S)-cis-3,6-dimethyl-1,4-dioxane-2,5-dione (L-lactide, LA) and reversible addition–fragmentation chain transfer (RAFT) polymerization of 2-(dimethylamino)ethyl methacrylate (DMA) or oligo(ethylene glycol) methacrylate (OEGMA) monomer, with 4-dimethylaminopyridine being used as the ROP catalyst and 2,2′-azobis(isobutyronitrile) as the initiator for the RAFT polymerization. Alternatively, a two-step protocol involving the initial polymerization of LA followed by the polymerization of DMA, glycerol monomethacrylate or 2-(methacryloyloxy)ethyl phosphorylcholine using 4,4′-azobis(4-cyanovaleric acid) as a RAFT initiator was also explored. Using a solvent switch processing step, these amphiphilic diblock copolymers self-assemble in dilute aqueous solution. Their self-assembly provides various copolymer morphologies depending on the block compositions, as judged by transmission electron microscopy and dynamic light scattering. Two novel disulfide-functionalized PLA-branched block copolymers were also synthesized using simultaneous ROP of LA and RAFT copolymerization of OEGMA or DMA with a disulfide-based dimethacrylate. The disulfide bonds were reductively cleaved using tributyl phosphine to generate reactive thiol groups. Thiol–ene chemistry was utilized for further derivatization with thiol-based biologically important molecules and heavy metals for tissue engineering or bioimaging applications, respectively.

Highlights

  • Block copolymers based on the same type of monomer are traditionally prepared using a single “living” polymerization technique.[1]

  • Amphiphilic diblock copolymers were synthesized consisting of a hydrolyzable aliphatic polyester block (PLA) and a methacrylic polymer block consisting of PDMA, POEGMA, PGMA or PMPC

  • A combined ring-opening polymerization (ROP)–reversible addition–fragmentation chain transfer (RAFT) agent 1 containing a Scheme 1 (a) Synthesis of hydroxyl-functional RAFT chain transfer agent (CTA) for use as a ROP–RAFT dual agent in polymerizations. (b) Simultaneous ROP– RAFT copolymerization of (3S)-cis-3,6-dimethyl-1,4-dioxane-2,5dione (L-lactide, LA) with 2-(dimethylamino)ethyl methacrylate (DMA) or oligo(ethylene glycol) methacrylate (OEGMA) at 74 C in 1,2dichloroethane to produce amphiphilic polylactide–methacrylic block copolymers 2. (c) Two-step ROP–RAFT polymerization; ROP of LA at 74 C in 1,2-dichloroethane to synthesize PLA macro-CTAs that are subsequently used in the RAFT polymerization of DMA and glycerol monomethacrylate (GMA) at 74 C in 1,2-dichloroethane or 2(methacryloyloxy)ethyl phosphorylcholine (PMPC) at 78 C in anhydrous ethanol for the preparation of amphiphilic polylactide–methacrylic block copolymers 3a and 3b, respectively

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Summary

Introduction

Block copolymers based on the same type of monomer (e.g. either vinyl or cyclic monomers) are traditionally prepared using a single “living” polymerization technique.[1]. The combination of ring-opening polymerization (ROP)[34] for the controlled synthesis of biodegradable aliphatic polyesters[35,36] and reversible addition-fragmentation chain transfer (RAFT) polymerization,[37,38,39,40] allows the synthesis of de ned block copolymer architectures (for a wide range of vinyl monomers).[9,11,15,41,42,43,44] This approach bodes well for the synthesis of block copolymers for biomedical applications such as sutures, implants for bone xation, drug delivery vehicles and tissue engineering scaffolds.[45]

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