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ACS Nano, ISSN 1936-0851, 02/2017, Volume 11, Issue 2, pp. 2227 - 2238
Poor tumor penetration is a major challenge for the use of nanoparticles in anticancer therapy. Moreover, the inability to reach hypoxic tumor cells that are... 
hypoxia | cancer | nanoparticles | tumor penetration | iRGD | photodynamic therapy | DRUG-DELIVERY | COMBINATION THERAPY | MATERIALS SCIENCE, MULTIDISCIPLINARY | TISSUE | CHEMISTRY, PHYSICAL | TIRAPAZAMINE | NANOSCIENCE & NANOTECHNOLOGY | CHEMISTRY, MULTIDISCIPLINARY | CANCER-THERAPY | PEPTIDE | BREAST-CANCER | MICROENVIRONMENT | EFFICIENT | POLYMER HYBRID NANOPARTICLES | Prodrugs - administration & dosage | Hypoxia - drug therapy | Injections, Intravenous | Photosensitizing Agents - chemistry | Reactive Oxygen Species - metabolism | Nanoparticles - chemistry | Apoptosis - drug effects | Prodrugs - chemistry | Antineoplastic Agents - administration & dosage | Indocyanine Green - pharmacology | Photochemotherapy | Drug Delivery Systems | Tirapazamine - chemistry | Photosensitizing Agents - administration & dosage | Tissue Distribution | Indocyanine Green - chemistry | Photosensitizing Agents - pharmacology | Antineoplastic Agents - pharmacology | Molecular Structure | Tumor Cells, Cultured | Indocyanine Green - administration & dosage | Tirapazamine - administration & dosage | Tirapazamine - pharmacology | Antineoplastic Agents - chemistry | Reactive Oxygen Species - analysis | Animals | Cell Proliferation - drug effects | Mice | Nanoparticles - administration & dosage | Prodrugs - pharmacology | Drug Screening Assays, Antitumor | Nanoparticles | Drugs | Therapy | Drug delivery systems | Photodynamic therapy | Penetration | Tumors | Anticancer properties | Hypoxia | Tumor Penetration | Photodynamic Therapy | Cancer
Journal Article
ACS Nano, ISSN 1936-0851, 08/2015, Volume 9, Issue 8, pp. 7874 - 7885
Smart nanocarriers are of particular interest as nanoscale vehicles of imaging and therapeutic agents in the field of theranostics. Herein, we report dually... 
stimuli-responsive release | cancer imaging | photothermal therapy | synergistic effect | vesicles | INDOCYANINE GREEN | DESIGN | DRUG-DELIVERY | MATERIALS SCIENCE, MULTIDISCIPLINARY | NANOCARRIERS | CHEMISTRY, PHYSICAL | NANOSCIENCE & NANOTECHNOLOGY | POLYMERSOMES | MICELLES | CHEMISTRY, MULTIDISCIPLINARY | NANOPARTICLES | THERAPY | POLYION COMPLEX VESICLES | IN-VIVO | Mammary Neoplasms, Animal - diagnosis | Polyethylene Glycols - chemistry | Doxorubicin - chemistry | Indocyanine Green - pharmacology | Drug Carriers | Photochemical Processes | Indocyanine Green - chemistry | Singlet Oxygen - metabolism | Theranostic Nanomedicine - methods | Female | Fluorescent Dyes - pharmacology | Antineoplastic Agents - pharmacology | Hyperthermia, Induced - methods | Nanostructures - therapeutic use | Optical Imaging - methods | Fluorescent Dyes - chemistry | Nanostructures - ultrastructure | Mammary Neoplasms, Animal - therapy | Oxidation-Reduction | Antineoplastic Agents - chemistry | Acrylic Resins - chemistry | Particle Size | Polyesters - chemistry | Mammary Neoplasms, Animal - pathology | Animals | Mice, Nude | Cell Line, Tumor | Drug Liberation | Nanostructures - chemistry | Mice | Doxorubicin - pharmacology | Hydrogen-Ion Concentration | Drugs | Therapy | Vesicles | Imaging | Fluorescence | pH | Nanostructure | Ablation
Journal Article
Journal Article
Acta Biomaterialia, ISSN 1742-7061, 11/2018, Volume 81, pp. 242 - 255
Indocyanine green (ICG) is an efficient photosensitizer that can facilitate producing cytotoxic reactive oxygen species (ROS). At the same time, ICG also has... 
Photothermal therapy | Synergistic therapeutics | Photodynamic therapy | pH-triggered drug release | PROTON SPONGE | MATERIALS SCIENCE, BIOMATERIALS | ENGINEERING, BIOMEDICAL | TUMOR | MESOPOROUS SILICA NANOPARTICLES | CONTROLLED DRUG-RELEASE | CANCER | DELIVERY | NANOCOMPOSITES | THERMAL THERAPY | Human Umbilical Vein Endothelial Cells | Photosensitizing Agents - chemistry | Humans | Magnetite Nanoparticles - therapeutic use | Indocyanine Green - pharmacology | Photochemotherapy | Calcium Carbonate - chemistry | Indocyanine Green - chemistry | Photosensitizing Agents - pharmacology | Hyperthermia, Induced | Indoles - pharmacology | Calcium Carbonate - pharmacokinetics | Magnetite Nanoparticles - chemistry | Animals | Mice, Nude | Polymers - pharmacokinetics | Polymers - pharmacology | Photosensitizing Agents - pharmacokinetics | Indoles - pharmacokinetics | Polymers - chemistry | Mice | Mice, Inbred BALB C | HeLa Cells | Calcium Carbonate - pharmacology | Indoles - chemistry | Indocyanine Green - pharmacokinetics | Nanoparticles | Green technology | Calcium carbonate | Packaging | Magnetic fields | Cancer | Reactive oxygen species | Calcium | Cytotoxicity | I.R. radiation | Pharmacology | Chemical compounds | Ablation | Light effects | Blood | Near infrared radiation | Blood circulation | Nanocomposites | Light | Antitumor activity | Magnetism | In vivo methods and tests | Iron oxides | Controlled release | Tumors
Journal Article
Journal Article
Acta Biomaterialia, ISSN 1742-7061, 07/2018, Volume 74, pp. 374 - 384
Journal Article
International Journal of Nanomedicine, ISSN 1176-9114, 2018, Volume 13, pp. 5139 - 5158
Background: Cancer is one of the most serious threats to human health. Precision medicine is an innovative approach to treatment, as part of which theranostic... 
Targeted drug-delivery system | Photoacoustic imaging | Ultrasound imaging | Folate-receptor-targeted nanoparticle | Combined anticancer therapy | Nanomedicine | Theranostics | ultrasound imaging | SYSTEM | CONTRAST-ENHANCED ULTRASOUND | LOW-LEVEL LASER | INDOCYANINE GREEN | EFFICACY | nanomedicine | NANOSCIENCE & NANOTECHNOLOGY | CANCER-THERAPY | folate-receptor-targeted nanoparticle | targeted drug-delivery system | photoacoustic imaging | PHOTOTHERMAL THERAPY | TRIGGERED DRUG-DELIVERY | IN-VIVO | theranostics | PHARMACOLOGY & PHARMACY | combined anticancer therapy | PERFLUOROHEXANE | Human Umbilical Vein Endothelial Cells | Paclitaxel - pharmacology | Theranostic Nanomedicine | Nanoparticles - chemistry | Polylactic Acid-Polyglycolic Acid Copolymer | Humans | Polyethylene Glycols - chemistry | Antineoplastic Agents - therapeutic use | Neoplasms - diagnosis | Indocyanine Green - pharmacology | Photoacoustic Techniques | Tissue Distribution | Indocyanine Green - chemistry | Paclitaxel - chemistry | Endocytosis | Neoplasms - therapy | Lasers | Cell Death | Hyperthermia, Induced | Ultrasonography | Female | Antineoplastic Agents - pharmacology | Lactic Acid - chemistry | Folic Acid - chemistry | Nanoparticles - ultrastructure | Folate Receptors, GPI-Anchored - metabolism | Neoplasms - drug therapy | Phototherapy | Animals | Mice, Nude | Polyglycolic Acid - chemistry | Cell Line, Tumor | Drug Liberation | Mice, Inbred BALB C | Neoplasms - pathology | Medical examination | Polyethylene glycol | Cholecystokinin | Health aspects | Polyols | Folic acid | Contrast media | Blood | Medical imaging equipment | Drugs | Edema | Drug delivery systems | Photodynamic therapy | Thyroid gland | Breast cancer | FDA approval | Cancer therapies | Nanoparticles | Biomedical materials | Ultrasonic imaging | Chemotherapy | Vitamin B | Polyvinyl alcohol | targeted drug delivery system | combined anti-cancer therapy | folate receptor-targeted nanoparticle
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