Abstract
For decades, aliphatic polyesters (polycaprolactone (PCL), polylactide (PLA), polyglycolide (PGA)) and their copolymers have been selected for medical applications because of their biodegradability and their biocompatibility. Among their medical applications, we are interested in drug delivery system based on amphiphilic copolymers and tissue engineering. However, aliphatic polyesters suffer from significant hydrophobicity and the absence of functional groups. To overcome these drawbacks, several strategies ofchemical modifications have been reported in literature among which we present: hydrolysis, plasma modification, post polymerization modification by copper catalyzed azide alkyne cycloaddition and thiol-yne post polymerization modification. These modifications have been used to introduce hydrophilic polymers (eg. polyethylene glycol) or functional groups on the polyester chains that can enhance the biodegradability of polyesters. In this manuscript, we are interested in modifying PCL and PLA chains by thiol-yne photochemical route. This method is rapid, versatile, applicable in solution as well as on surface and it does not require the use of a metallic catalyst which can be harmful for medical applications. First, PCL modification was done in solution and amphiphilic copolymers PCL-g-PEG were synthesized. The strategy “grafting to” in two steps has been selected starting from commercial polymers. Conditions optimization of anionic activation, followed by thiol-yne photoaddition, allowed us to obtain copolymers with controlled ratios hydrophilic/hydrophobic. The impact of copolymers hydrophilicity on nanoobjets formulation, critical micelle concentration and sizes was studied. Curcumin encapsulation as an anticancer agent and nanocarriers cytotoxicity towards cancer cells were verified. In addition, these copolymers were then decorated with a targeting peptide and an enzymatically cleavable peptide in the aim of using them in cancer treatment. The biological effect of anticancer loaded copolymer was verified in vitro on target cells expressing more or less integrins or metalloproteases. Second, PLA fibers were modified with inorganic nanoparticles and generate covalent hybrids for purposes in tissue engineering of neuronal cells. Analogously to the solution modification, these hybrids were obtained in two steps by anionic activation of PLA fibers, followed by covalent grafting of iron oxide nanoparticles according to a thiol-yne photochemical strategy.