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RESEARCH PRODUCT

MRI-Visible Poly(ε-caprolactone) with Controlled Contrast Agent Ratios for Enhanced Visualization in Temporary Imaging Applications

Laurent LemaireXavier GarricSarah El HabnouniJean CoudaneVincent DarcosFlorence FranconiBenjamin NotteletBarbara Porsio

subject

Gadolinium DTPAPolymers and PlasticsMacromolecular SubstancesPolyestersContrast MediaBiocompatible MaterialsBioengineering02 engineering and technology010402 general chemistrybiomedical01 natural sciencesImagingBiomaterialsMicechemistry.chemical_compoundPoly(ε-caprolactone)Polymer chemistryMaterials ChemistryCopolymerAnimalsmacromolecularCell Proliferationchemistry.chemical_classificationMolecular Structure[CHIM.ORGA]Chemical Sciences/Organic chemistryMRI; Poly(ε-caprolactone); ImagingSpin–lattice relaxationFibroblastsHydrophobic[CHIM.ORGA] Chemical Sciences/Organic chemistry021001 nanoscience & nanotechnologyGraftingMagnetic Resonance ImagingvisibleCycloaddition0104 chemical sciencescopolymerizationchemistryPropargylDTPA0210 nano-technologyCaprolactoneLactoneMacromoleculeMRI

description

International audience; Hydrophobic macromolecular contrast agents (MMCAs) are highly desirable to provide safe and efficient magnetic resonance (MR) visibility to implantable medical devices. In this study, we report on the synthesis and evaluation of novel biodegradable poly(ε-caprolactone)-based MMCAs. Poly(α-propargyl-ε-caprolactone-co-ε-caprolactone)s containing 2, 5, and 10 mol % of propargyl groups have been prepared by ring-opening copolymerization of ε-caprolactone and the corresponding propargylated lactone. In parallel, a diazido derivative of the clinically used diethylenetriaminepentaacetic acid (DTPA)/Gd3+ complex has been synthesized. Finally, MRI-visible poly(ε-caprolactone)s (PCLs) were obtained by the efficient click ligation of these compounds via a CuI-catalyzed [3 + 2] cycloaddition. ICP-MS analyses confirmed the efficient coupling of the complex on the PCL backbone with the MRI-visible PCLs containing 1.0, 2.6, and 3.6 wt % of Gd3+. The influence of the Gd3+ grafting density on the T1 relaxation times and on the MRI visibility of the novel biodegradable MMCAs was evaluated. Finally, their stability and cytocompatibility were assessed with regard to their potential as innovative MRI-visible biomaterials for biomedical applications.

http://hdl.handle.net/10447/105911