Thermo-triggered drug release from actively targeting polymer micelles.
暂无分享,去创建一个
Xing Guo | Shaobing Zhou | Shaobing Zhou | Guang Yang | Xing Guo | Chunli Shi | Jie Wang | Jie Wang | Guang Yang | Zhaomin Tang | Dan Li | Chunli Shi | Dan Li | Zhaomin Tang
[1] Yong Hu,et al. Preparation, characterization, and drug release behaviors of drug nimodipine‐loaded poly(ε‐caprolactone)‐poly(ethylene oxide)‐poly(ε‐caprolactone) amphiphilic triblock copolymer micelles , 2002 .
[2] Jinwoo Cheon,et al. On-demand drug release system for in vivo cancer treatment through self-assembled magnetic nanoparticles. , 2013, Angewandte Chemie.
[3] Ying Li,et al. Temperature-responsive magnetite/PEO-PPO-PEO block copolymer nanoparticles for controlled drug targeting delivery. , 2007, Langmuir : the ACS journal of surfaces and colloids.
[4] Hong Yang,et al. Micelles assembled with carbocyanine dyes for theranostic near-infrared fluorescent cancer imaging and photothermal therapy. , 2013, Biomaterials.
[5] Xing Guo,et al. pH-triggered intracellular release from actively targeting polymer micelles. , 2013, Biomaterials.
[6] Feng Yan,et al. Target-cell-specific delivery, imaging, and detection of intracellular microRNA with a multifunctional SnO2 nanoprobe. , 2012, Angewandte Chemie.
[7] Hanry Yu,et al. Galactosylated PVDF membrane promotes hepatocyte attachment and functional maintenance. , 2003, Biomaterials.
[8] H. Maeda,et al. The EPR effect for macromolecular drug delivery to solid tumors: Improvement of tumor uptake, lowering of systemic toxicity, and distinct tumor imaging in vivo. , 2013, Advanced drug delivery reviews.
[9] Li Li,et al. Cationic thermosensitive liposomes: a novel dual targeted heat-triggered drug delivery approach for endothelial and tumor cells. , 2013, Nano letters.
[10] María Vallet-Regí,et al. Smart drug delivery through DNA/magnetic nanoparticle gates. , 2011, ACS nano.
[11] R K Jain,et al. Noninvasive measurement of interstitial pH profiles in normal and neoplastic tissue using fluorescence ratio imaging microscopy. , 1994, Cancer research.
[12] Y. Chen,et al. Self-assembling PVA-F127 thermosensitive nanocarriers with highly sensitive magnetically-triggered drug release for epilepsy therapy in vivo , 2012 .
[13] T. Park,et al. Thermally sensitive cationic polymer nanocapsules for specific cytosolic delivery and efficient gene silencing of siRNA: swelling induced physical disruption of endosome by cold shock. , 2008, Journal of controlled release : official journal of the Controlled Release Society.
[14] R. Kanaar,et al. Mild hyperthermia inhibits homologous recombination, induces BRCA2 degradation, and sensitizes cancer cells to poly (ADP-ribose) polymerase-1 inhibition , 2011, Proceedings of the National Academy of Sciences.
[15] Jianbin Tang,et al. Tumor Redox Heterogeneity‐Responsive Prodrug Nanocapsules for Cancer Chemotherapy , 2013, Advanced materials.
[16] K. Ulbrich,et al. Polymeric anticancer drugs with pH-controlled activation. , 2004, Advanced drug delivery reviews.
[17] V. Torchilin,et al. Enhanced anticancer activity of nanopreparation containing an MMP2-sensitive PEG-drug conjugate and cell-penetrating moiety , 2013, Proceedings of the National Academy of Sciences.
[18] Gregory J. Czarnota,et al. Tumor radiation response enhancement by acoustical stimulation of the vasculature , 2012, Proceedings of the National Academy of Sciences.
[19] T. Allen. Ligand-targeted therapeutics in anticancer therapy , 2002, Nature Reviews Cancer.
[20] D. Weitz,et al. Thermally Switched Release from Nanoparticle Colloidosomes , 2013 .
[21] Z. Guan,et al. Multifunctional dendronized peptide polymer platform for safe and effective siRNA delivery. , 2013, Journal of the American Chemical Society.
[22] 矢原 敏郎. Relationship between microvessel density and thermographic hot areas in breast cancer , 2003 .
[23] Dieter Haemmerich,et al. Mild hyperthermia triggered doxorubicin release from optimized stealth thermosensitive liposomes improves intratumoral drug delivery and efficacy. , 2013, Journal of controlled release : official journal of the Controlled Release Society.
[24] Qiang Yan,et al. Voltage-responsive vesicles based on orthogonal assembly of two homopolymers. , 2010, Journal of the American Chemical Society.
[25] Emanuel Fleige,et al. Stimuli-responsive polymeric nanocarriers for the controlled transport of active compounds: concepts and applications. , 2012, Advanced drug delivery reviews.
[26] Younan Xia,et al. A liposomal system capable of generating CO2 bubbles to induce transient cavitation, lysosomal rupturing, and cell necrosis. , 2012, Angewandte Chemie.
[27] Patrick Couvreur,et al. Stimuli-responsive nanocarriers for drug delivery. , 2013, Nature materials.
[28] Shirui Mao,et al. Smart pH-sensitive and temporal-controlled polymeric micelles for effective combination therapy of doxorubicin and disulfiram. , 2013, ACS nano.
[29] Chi‐Chang Lin,et al. Stability and Release Performance of a Series of Pegylated Copolymeric Micelles , 2003, Pharmaceutical Research.
[30] C. Song. Effect of local hyperthermia on blood flow and microenvironment: a review. , 1984, Cancer research.
[31] S. M. Robinson,et al. Polypeptide point modifications with fatty acid and amphiphilic block copolymers for enhanced brain delivery. , 2005, Bioconjugate chemistry.
[32] R. Issels. Hyperthermia adds to chemotherapy. , 2008, European journal of cancer.
[33] Anzar Khan,et al. Enzyme sensitive synthetic polymer micelles based on the azobenzene motif. , 2013, Journal of the American Chemical Society.
[34] P. Hammond,et al. Fluorescent Multiblock π‐Conjugated Polymer Nanoparticles for In Vivo Tumor Targeting , 2013, Advanced materials.
[35] Ananth Annapragada,et al. Controlled targeting of liposomal doxorubicin via the folate receptor in vitro. , 2003, Journal of controlled release : official journal of the Controlled Release Society.
[36] V. Singh,et al. In vivo temperature measurements in brain tumors using proton MR spectroscopy. , 2002, Neurology India.
[37] R. J. Lee,et al. Targeted drug delivery via the folate receptor. , 2000, Advanced drug delivery reviews.
[38] S. Wise. Nanocarriers as an emerging platform for cancer therapy , 2007 .
[39] Liangzhu Feng,et al. Polyethylene glycol and polyethylenimine dual-functionalized nano-graphene oxide for photothermally enhanced gene delivery. , 2013, Small.
[40] J. Ho,et al. Photocontrolled targeted drug delivery: photocaged biologically active folic acid as a light-responsive tumor-targeting molecule. , 2012, Angewandte Chemie.
[41] Hua Yang,et al. Biodegradable poly(epsilon-caprolactone)-poly(ethylene glycol) block copolymers: characterization and their use as drug carriers for a controlled delivery system. , 2003, Biomaterials.
[42] Jeffrey A. Hubbell,et al. Enhancing Drug Function , 2003, Science.
[43] Qiang Zhang,et al. Self-assembly cationic nanoparticles based on cholesterol-grafted bioreducible poly(amidoamine) for siRNA delivery. , 2013, Biomaterials.
[44] Xing-jie Liang,et al. Functionalized nanoscale micelles improve drug delivery for cancer therapy in vitro and in vivo. , 2013, Nano letters.