Molecular design of outermost surface functionalized thermoresponsive polymeric micelles with biodegradable cores |
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Authors: | Jun Akimoto Masamichi Nakayama Kiyotaka Sakai Teruo Okano |
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Affiliation: | 1. Institute of Advanced Biomedical Engineering and Science, Tokyo Women's Medical University, TWIns, Kawada‐cho 8‐1, Shinjuku‐ku, Tokyo 162‐8666, Japan;2. Department of Applied Chemistry, Waseda University, Ohkubo 3‐4‐1, Shinjuku‐ku, Tokyo 169‐8555, Japan |
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Abstract: | We prepared well‐defined diblock copolymers of thermoresponsive poly(N‐isopropylacrylamide‐co‐N,N‐dimethylacrylamide) blocks and biodegradable poly(D ,L ‐lactide) blocks by combination of reversible addition‐fragmentation chain transfer radical (RAFT) polymerization and ring‐opening polymerization. α‐Hydroxyl, ω‐dithiobenzoate thermoresponsive polymers were synthesized by RAFT polymerization using hydroxyl RAFT agents. Biodegradable blocks were prepared by ring‐opening polymerization of D ,L ‐lactide initiated by α‐hydroxyl groups of thermoresponsive polymers, which inhibit the thermal decomposition of ω‐dithioester groups. Terminal dithiobenzoate (DTBz) groups of thermoresponsive blocks were easily reduced to thiol groups and reacted with maleimide (Mal). In aqueous media, diblock copolymer products formed surface‐functionalized thermoresponsive micelles. These polymeric micelles had a low critical micelle concentration of 22 μg/L. In thermoresponsive studies of the micelles, hydrophobic DTBz‐surface micelles demonstrated a significant shift in lower critical solution temperature (LCST) to a lower temperature of 30.7 °C than that for Mal‐surface micelles (40.0 °C). In addition, micellar LCST was controlled by changing bulk mixture ratios of respective heterogeneous end‐functional diblock copolymers. Micellar disruption at acidic condition (pH 5.0) was completed within 5 days due to hydrolytic degradation of PLA cores, regardless of showing a slow disruption rate at physiological condition. Furthermore, we successfully improved water‐solubility of hydrophobic drug, paclitaxel by incorporating into the micellar cores. © Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 46: 7127–7137, 2008 |
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Keywords: | biodegradable block copolymers micelles reversible addition fragmentation chain transfer (RAFT) stimuli‐responsive polymers |
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