Abstract
Core cross-linking of polymeric micelles has been demonstrated to contribute to enhanced stability that can improve the therapeutic efficacy. Photochemistry has the potential to provide spatial resolution and on-demand drug release. In this study, light-sensitive polypyridyl-ruthenium(ii) complexes were combined with polypept(o)ides for photocleavable core cross-linked polymeric micelles. Block copolymers of polysarcosine-block-poly(glutamic acid) were synthesized by ring-openingN-carboxyanhydride polymerization and modified with aromatic nitrile-groups on the glutamic acid side chain. The modified copolymers self-assembled into micelles and were cross-linked bycis-diaquabis(2,2′-bipyridine)-ruthenium(ii) ([Ru(bpy)2(H2O)2]2+) orcis-diaquabis(2,2′-biquinoline)-ruthenium(ii) ([Ru(biq)2(H2O)2]2+). Depending on the flexibility and hydrophobicity of the nitrile linker, either small spherical structures (Dh45 nm, PDI 0.11) or worm-like micelles were obtained. The cross-linking reaction did not affect the overall size distribution but induced a change in the metal-to-ligand charge transfer peak from 482 to 420 nm and 592 to 548 nm. The cross-linked micelles displayed colloidal stability after incubation with human blood plasma and during gel permeation chromatography in hexafluoroisopropanol. Light-induced cleavage of [Ru(bpy)2(H2O)2]2+was accomplished within 300 s, while [Ru(biq)2(H2O)2]2+could not be completely released. Analysis in HuH-7 cells revealed increased cytotoxicityviamicellar delivery of [Ru(bpy)2(H2O)2]2+but mostly irradiation damage for [Ru(biq)2(H2O)2]2+. Further evaluationin ovoconfirmed stable circulation pointing towards the future development of quick-release complexes.
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CITATION STYLE
Bauer, T. A., Eckrich, J., Wiesmann, N., Kuczelinis, F., Sun, W., Zeng, X., … Barz, M. (2021). Photocleavable core cross-linked polymeric micelles of polypept(o)ides and ruthenium(ii) complexes. Journal of Materials Chemistry B, 9(39), 8211–8223. https://doi.org/10.1039/d1tb01336j
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