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銆€銆€References:
銆€銆€1. Dutta, R., et al., Pharmacokinetics and Biodistribution of GDC-0449 Loaded Micelles in Normal and Liver Fibrotic Mice, Pharmaceutical research, 2017, 34(3):564-78.
銆€銆€2. Jaskula-Sztul, R., et al., Thailandepsin A-loaded and octreotide-functionalized unimolecular micelles for targeted neuroendocrine cancer therapy, Biomaterials, 2016, 91:1-0.
銆€銆€3. Chen, G., et al., KE108-conjugated unimolecular micelles loaded with a novel HDAC inhibitor thailandepsin-A for targeted neuroendocrine cancer therapy, Biomaterials, 2016, 97, p. 22-33.
銆€銆€4. Liang, K., et al., Peptide-Tunable Drug Cytotoxicity via One-Step Assembled Polymer Nanoparticles, Advanced Materials, 2014, 26(15), p: 2398–2402.
銆€銆€5. Xu, W., Aptamer-conjugated and doxorubicin-loaded unimolecular micelles for targeted therapy of prostate cancer, Biomaterials, 2013, 34(21) p: 5244-5253.
銆€銆€6. Lak, A., et al., Highly stable monodisperse PEGylated iron oxide nanoparticle aqueous suspensions: a nontoxic tracer for homogeneous magnetic bioassays, Nanoscale, 2013, 5, p: 11447-11455.
銆€銆€7. Xu, W., et al., Octreotide-functionalized and resveratrol-loaded unimolecular micelles for targeted neuroendocrine cancer therapy, Nanoscale, 2013, 5.20 : 9924-9933.
銆€銆€8.Wang, Y., et al., A pH-responsive silica–metal–organic framework hybrid nanoparticle for the delivery of hydrophilic drugs, nucleic acids, and CRISPR-Cas9 genome-editing machineries, Journal of Controlled Release, 2020.
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