Nanotechnology as a Platform for the Development of Injectable Parenteral Formulations: A Comprehensive Review of the Know-Hows and State of the Art
暂无分享,去创建一个
Dirk Dietrich | Maryam A Shetab Boushehri | Alf Lamprecht | D. Dietrich | A. Lamprecht | Maryam A. Shetab Boushehri
[1] J. Desbrières,et al. Modulated release from liposomes entrapped in chitosan/gelatin hydrogels. , 2014, Materials science & engineering. C, Materials for biological applications.
[2] Waleed Faisal,et al. Somatostatin receptors as a new active targeting sites for nanoparticles , 2018, Saudi pharmaceutical journal : SPJ : the official publication of the Saudi Pharmaceutical Society.
[3] P. Ma,et al. Cubic and Hexagonal Liquid Crystals as Drug Delivery Systems , 2014, BioMed research international.
[4] Aude Motulsky,et al. In situ-Forming Pharmaceutical Organogels Based on the Self-Assembly of L-Alanine Derivatives , 2004, Pharmaceutical Research.
[5] P. Kantoff,et al. Cancer nanomedicine: progress, challenges and opportunities , 2016, Nature Reviews Cancer.
[6] Targeted therapy of hepatocellular carcinoma with aptamer-functionalized biodegradable nanoparticles , 2016, Journal of Nanoparticle Research.
[7] Tracy K. Pettinger,et al. Nanopharmaceuticals (part 1): products on the market , 2014, International journal of nanomedicine.
[8] K. Akiyoshi,et al. Biodegradable nanogel-integrated hydrogels for sustained protein delivery , 2012, Macromolecular Research.
[9] Hai-Quan Mao,et al. Biologically Inspired Design of Nanoparticle Artificial Antigen-Presenting Cells for Immunomodulation. , 2017, Nano letters.
[10] G. Winter,et al. Thermosensitive liposomal drug delivery systems: state of the art review , 2014, International journal of nanomedicine.
[11] Gene Hart-Smith,et al. Albumin-micelles via a one-pot technology platform for the delivery of drugs. , 2014, Chemical communications.
[12] X. Loh,et al. Nanoparticle–Hydrogel Composites: Concept, Design, and Applications of These Promising, Multi‐Functional Materials , 2015, Advanced science.
[13] R. Kopelman,et al. Hydrogel Nanoparticles with Thermally Controlled Drug Release , 2014, ACS macro letters.
[14] J. Lord. The use of cytotoxic plant lectins in cancer therapy. , 1987, Plant physiology.
[15] Ick Chan Kwon,et al. Hypoxia-responsive polymeric nanoparticles for tumor-targeted drug delivery. , 2014, Biomaterials.
[16] Hamidreza Ghandehari,et al. Polymeric conjugates for drug delivery. , 2012, Chemistry of materials : a publication of the American Chemical Society.
[17] A. Metters,et al. Hydrogels in controlled release formulations: network design and mathematical modeling. , 2006, Advanced drug delivery reviews.
[18] J. Smart. Lectin-mediated drug delivery in the oral cavity. , 2004, Advanced drug delivery reviews.
[19] Hualiang Huang,et al. Sugar ligand-mediated drug delivery. , 2019, Future medicinal chemistry.
[20] Leaf Huang,et al. Nanoparticles evading the reticuloendothelial system: role of the supported bilayer. , 2009, Biochimica et biophysica acta.
[21] Liandong Hu,et al. Development of a long-acting intramuscularly injectable formulation with nanosuspension of andrographolide , 2016 .
[22] S. Ku,et al. Tumor-targeting, pH-sensitive nanoparticles for docetaxel delivery to drug-resistant cancer cells , 2015, International journal of nanomedicine.
[23] B. Liu,et al. An Albumin-Conjugated Peptide Exhibits Potent Anti-HIV Activity and Long In Vivo Half-Life , 2009, Antimicrobial Agents and Chemotherapy.
[24] Seyda Bucak,et al. Magnetic Nanoparticles: Synthesis, Surface Modifications and Application in Drug Delivery , 2012 .
[25] H. Azzazy,et al. Chitosan Nanoparticles for Nuclear Targeting: The Effect of Nanoparticle Size and Nuclear Localization Sequence Density. , 2015, Molecular pharmaceutics.
[26] Pamela Basto,et al. HER‐2‐Targeted Nanoparticle–Affibody Bioconjugates for Cancer Therapy , 2008, ChemMedChem.
[27] Eun Seong Lee,et al. A smart flower-like polymeric micelle for pH-triggered anticancer drug release. , 2009, International journal of pharmaceutics.
[28] D. Rogers,et al. Lectins in ocular drug delivery: An investigation of lectin binding sites on the corneal and conjunctival surfaces , 1996 .
[29] R. Weissleder,et al. Characterizing the interactions of organic nanoparticles with renal epithelial cells in vivo. , 2015, ACS nano.
[30] Byung-Heon Lee,et al. Poly-cyclodextrin and poly-paclitaxel nano-assembly for anticancer therapy , 2014, Nature Communications.
[31] T. Porter,et al. Thermosensitive liposomes for localized delivery and triggered release of chemotherapy. , 2013, Journal of controlled release : official journal of the Controlled Release Society.
[32] T. Rades,et al. Cubosomes containing the adjuvants imiquimod and monophosphoryl lipid A stimulate robust cellular and humoral immune responses. , 2013, Journal of controlled release : official journal of the Controlled Release Society.
[33] Andreea Alexandra Olteanu,et al. Effect of β-cyclodextrins based nanosponges on the solubility of lipophilic pharmacological active substances (repaglinide) , 2014, Journal of Inclusion Phenomena and Macrocyclic Chemistry.
[34] W. Oyen,et al. Subcutaneous Administration of Superoxide Dismutase Entrapped in Long Circulating Liposomes: In Vivo Fate and Therapeutic Activity in an Inflammation Model , 2000, Pharmaceutical Research.
[35] Uday B Kompella,et al. Nanomicellar formulations for sustained drug delivery: strategies and underlying principles. , 2010, Nanomedicine.
[36] J. Dobson,et al. Magnetic nanoparticles for gene and drug delivery , 2008, International journal of nanomedicine.
[37] Wei Yu,et al. Novel thermo‐responsive self‐assembly micelles from a double brush‐shaped PNIPAM‐g‐(PA‐b‐PEG‐b‐PA)‐g‐PNIPAM block copolymer with PNIPAM polymers as side chains , 2012 .
[38] S. Schwendeman,et al. Injectable controlled release depots for large molecules. , 2014, Journal of controlled release : official journal of the Controlled Release Society.
[39] T. Kissel,et al. On the design of in situ forming biodegradable parenteral depot systems based on insulin loaded dialkylaminoalkyl-amine-poly(vinyl alcohol)-g-poly(lactide-co-glycolide) nanoparticles. , 2007, Journal of controlled release : official journal of the Controlled Release Society.
[40] Lin‐Yue Lanry Yung,et al. Folate-Conjugated Polymer Micelles with pH-Triggered Drug Release Properties. , 2010, Macromolecular rapid communications.
[41] Yi Shi,et al. Current advances in sustained-release systems for parenteral drug delivery , 2005, Expert opinion on drug delivery.
[42] Mourad Tighiouart,et al. A folate receptor-targeting nanoparticle minimizes drug resistance in a human cancer model. , 2011, ACS nano.
[43] A. Lamprecht,et al. Targeted drug-delivery approaches by nanoparticulate carriers in the therapy of inflammatory diseases , 2010, Journal of The Royal Society Interface.
[44] Chie Kojima,et al. Highly temperature-sensitive liposomes based on a thermosensitive block copolymer for tumor-specific chemotherapy. , 2010, Biomaterials.
[45] Adriele Prina-Mello,et al. Titanium dioxide nanoparticles enhance macrophage activation by LPS through a TLR4-dependent intracellular pathway , 2015 .
[46] Jin Chang,et al. pH- and reduction-responsive polymeric lipid vesicles for enhanced tumor cellular internalization and triggered drug release. , 2014, ACS applied materials & interfaces.
[47] F. Kiessling,et al. Ultrasound-mediated drug delivery to the brain: principles, progress and prospects. , 2016, Drug discovery today. Technologies.
[48] Prabhat Ranjan Mishra,et al. Investigation of salt formation between memantine and pamoic acid: Its exploitation in nanocrystalline form as long acting injection. , 2016, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[49] Yongyong Li,et al. Redox Sensitive Nanoparticles with Disulfide Bond Linked Sheddable Shellfor Intracellular Drug Delivery , 2014 .
[50] Tao L Lowe,et al. Thermoresponsive and biodegradable linear-dendritic nanoparticles for targeted and sustained release of a pro-apoptotic drug. , 2008, Biomaterials.
[51] Ru Cheng,et al. pH-sensitive polymeric nanoparticles for tumor-targeting doxorubicin delivery: concept and recent advances. , 2014, Nanomedicine.
[52] B. Amrita,et al. Cyclodextrin based nanosponges for pharmaceutical use: A review , 2013, Acta pharmaceutica.
[53] H. Moghimi,et al. Preparation of SLN-containing Thermoresponsive In-situ Forming Gel as a Controlled Nanoparticle Delivery System and Investigating its Rheological, Thermal and Erosion Behavior , 2015, Iranian journal of pharmaceutical research : IJPR.
[54] Dr. L. K. Omray. LIQUID CRYSTALS AS NOVEL VESICULAR DELIVERY SYSTEM : A REVIEW , 2013 .
[55] M. Maye,et al. Thermal aggregation properties of nanoparticles modified with temperature sensitive copolymers. , 2013, Langmuir : the ACS journal of surfaces and colloids.
[56] Byung Kook Lee,et al. Controlled Drug Delivery: Historical perspective for the next generation. , 2015, Journal of controlled release : official journal of the Controlled Release Society.
[57] Electroresponsive Nanoparticles Improve Antiseizure Effect of Phenytoin in Generalized Tonic-Clonic Seizures , 2016, Neurotherapeutics.
[58] Ki Young Choi,et al. Protease-Activated Drug Development , 2012, Theranostics.
[59] Jun Ge,et al. Drug release from electric-field-responsive nanoparticles. , 2012, ACS nano.
[60] Ho-Suk Choi,et al. Doxorubicin-encapsulated thermosensitive liposomes modified with poly(N-isopropylacrylamide-co-acrylamide): drug release behavior and stability in the presence of serum. , 2006, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[61] Adah Almutairi,et al. Photochemical mechanisms of light-triggered release from nanocarriers. , 2012, Advanced drug delivery reviews.
[62] Galo J. A. A. Soler-Illia,et al. Glyco-nano-oncology: Novel therapeutic opportunities by combining small and sweet. , 2016, Pharmacological research.
[63] Neha Gulati,et al. Parenteral drug delivery: a review. , 2011, Recent patents on drug delivery & formulation.
[64] G. Naguib,et al. Depot injectable biodegradable nanoparticles loaded with recombinant human bone morphogenetic protein-2: preparation, characterization, and in vivo evaluation , 2015, Drug design, development and therapy.
[65] Robert Langer,et al. Nanoparticle–aptamer bioconjugates for cancer targeting , 2006, Expert opinion on drug delivery.
[66] Raquel Ferreira,et al. Nanoparticle-mediated brain drug delivery: Overcoming blood-brain barrier to treat neurodegenerative diseases. , 2016, Journal of controlled release : official journal of the Controlled Release Society.
[67] M. McPherson,et al. Phage display selected magnetite interacting Adhirons for shape controlled nanoparticle synthesis† †Electronic supplementary information (ESI) available: Detailed experimental methods, supporting experimental data, and details of the molecular dynamics study. See DOI: 10.1039/c5sc01472g , 2015, Chemical science.
[68] M. Mahmoudi,et al. Development of anti-CD47 single-chain variable fragment targeted magnetic nanoparticles for treatment of human bladder cancer. , 2017, Nanomedicine.
[69] Yong Chen,et al. Redox-responsive supramolecular nanoparticles based on amphiphilic sulfonatocalixarene and selenocystamine dihydrochloride , 2015 .
[70] Zhuxian Zhou,et al. A multifunctional PEG-PLL drug conjugate forming redox-responsive nanoparticles for intracellular drug delivery. , 2015, Journal of materials chemistry. B.
[71] S. Mallik,et al. Hypoxia-Responsive Polymersomes for Drug Delivery to Hypoxic Pancreatic Cancer Cells. , 2016, Biomacromolecules.
[72] Z. Fu,et al. Polymeric Nanoparticles Induce NLRP3 Inflammasome Activation and Promote Breast Cancer Metastasis. , 2017, Macromolecular bioscience.
[73] A. Schätzlein,et al. Glucose-targeted niosomes deliver vasoactive intestinal peptide (VIP) to the brain. , 2004, International journal of pharmaceutics.
[74] Kazunori Kataoka,et al. Light-induced gene transfer from packaged DNA enveloped in a dendrimeric photosensitizer , 2005, Nature materials.
[75] Wei Chen,et al. cRGDyK modified pH responsive nanoparticles for specific intracellular delivery of doxorubicin. , 2016, Acta biomaterialia.
[76] T. Hanley,et al. Evaluating the link between self-assembled mesophase structure and drug release. , 2011, International journal of pharmaceutics.
[77] Y. Ran,et al. Investigation of utilization of nanosuspension formulation to enhance exposure of 1,3-dicyclohexylurea in rats: Preparation for PK/PD study via subcutaneous route of nanosuspension drug delivery , 2011, Nanoscale research letters.
[78] Jesper Østergaard,et al. Role of in vitro release models in formulation development and quality control of parenteral depots , 2009, Expert opinion on drug delivery.
[79] Qiang Zhang,et al. Novel free-paclitaxel-loaded redox-responsive nanoparticles based on a disulfide-linked poly(ethylene glycol)-drug conjugate for intracellular drug delivery: synthesis, characterization, and antitumor activity in vitro and in vivo. , 2014, Molecular pharmaceutics.
[80] S. van Calenbergh,et al. pH-Degradable Mannosylated Nanogels for Dendritic Cell Targeting. , 2016, Biomacromolecules.
[81] K. Kohli,et al. Hydrogels as potential drug delivery systems , 2009 .
[82] D. Kohane,et al. Thermoresponsive nanogels for prolonged duration local anesthesia. , 2012, Acta biomaterialia.
[83] Y. Kuo,et al. Angiopep-pluronic F127-conjugated superparamagnetic iron oxide nanoparticles as nanotheranostic agents for BBB targeting. , 2014, Journal of materials chemistry. B.
[84] Christine Jérôme,et al. Targeting of tumor endothelium by RGD-grafted PLGA-nanoparticles. , 2012, Methods in enzymology.
[85] S. W. Kim,et al. Self-assembled hydrogel nanoparticle of cholesterol-bearing pullulan as a carrier of protein drugs: complexation and stabilization of insulin. , 1998, Journal of controlled release : official journal of the Controlled Release Society.
[86] Lieven Baert,et al. Development of a long-acting injectable formulation with nanoparticles of rilpivirine (TMC278) for HIV treatment. , 2009, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[87] Chen Jiang,et al. Charge-reversal nanoparticles: novel targeted drug delivery carriers , 2016, Acta pharmaceutica Sinica. B.
[88] Yi Wang,et al. Angiopep-conjugated electro-responsive hydrogel nanoparticles: therapeutic potential for epilepsy. , 2014, Angewandte Chemie.
[89] Yihui Deng,et al. A review on phospholipids and their main applications in drug delivery systems , 2015 .
[90] Wahid Khan,et al. Lactoferrin bioconjugated solid lipid nanoparticles: a new drug delivery system for potential brain targeting , 2016, Journal of drug targeting.
[91] V. Weissig,et al. Nanopharmaceuticals (part 2): products in the pipeline , 2015, International journal of nanomedicine.
[92] Yinan Zhong,et al. Ligand-directed active tumor-targeting polymeric nanoparticles for cancer chemotherapy. , 2014, Biomacromolecules.
[93] Ling Che,et al. Cyclodextrin-derived pH-responsive nanoparticles for delivery of paclitaxel. , 2013, Biomaterials.
[94] Ian Trase,et al. Design of Nanoparticle-Based Carriers for Targeted Drug Delivery. , 2016, Journal of nanomaterials.
[95] Wei Gong,et al. Preparation, physical characterization and pharmacokinetic study of paclitaxel nanocrystals , 2015, Drug development and industrial pharmacy.
[96] Jennifer P. Freeling,et al. Long-acting three-drug combination anti-HIV nanoparticles enhance drug exposure in primate plasma and cells within lymph nodes and blood , 2014, AIDS.
[97] N. Chauhan,et al. Novel Curcumin-Loaded Magnetic Nanoparticles for Pancreatic Cancer Treatment , 2013, Molecular Cancer Therapeutics.
[98] A. Kipnis,et al. Role of Metallic Nanoparticles in Vaccinology: Implications for Infectious Disease Vaccine Development , 2017, Front. Immunol..
[99] William R Wilson,et al. Mechanisms and biomaterials in pH-responsive tumour targeted drug delivery: A review. , 2016, Biomaterials.
[100] M. Muhammed,et al. Injectable Superparamagnetic Ferrogels for Controlled Release of Hydrophobic Drugs , 2009 .
[101] Wei Tao,et al. Fabrication of Upconverting Hybrid Nanoparticles for Near-Infrared Light Triggered Drug Release , 2014 .
[102] A. Lamprecht,et al. Delivery of P-glycoprotein substrates using chemosensitizers and nanotechnology for selective and efficient therapeutic outcomes. , 2012, Journal of controlled release : official journal of the Controlled Release Society.
[103] San-Yuan Chen,et al. Instantaneous drug delivery of magnetic/thermally sensitive nanospheres by a high-frequency magnetic field. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[104] F. Gu,et al. Biofunctionalized targeted nanoparticles for therapeutic applications , 2008, Expert opinion on biological therapy.
[105] C. Porter,et al. Subcutaneous drug delivery and the role of the lymphatics. , 2005, Drug discovery today. Technologies.
[106] J. Weng,et al. Development of hypoxia-triggered prodrug micelles as doxorubicin carriers for tumor therapy , 2015 .
[107] T. Kissel,et al. In situ forming parenteral drug delivery systems: an overview. , 2004, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[108] Robert F. Mattrey,et al. Therapeutic Enzyme‐Responsive Nanoparticles for Targeted Delivery and Accumulation in Tumors , 2015, Advanced materials.
[109] F. Greco,et al. Polymer-drug conjugates: current status and future trends. , 2008, Frontiers in bioscience : a journal and virtual library.
[110] Ick Chan Kwon,et al. Tumoral acidic extracellular pH targeting of pH-responsive MPEG-poly(beta-amino ester) block copolymer micelles for cancer therapy. , 2007, Journal of controlled release : official journal of the Controlled Release Society.
[111] Mauro Ferrari,et al. Principles of nanoparticle design for overcoming biological barriers to drug delivery , 2015, Nature Biotechnology.
[112] Yazhou Wang,et al. The application of thermosensitive nanocarriers in controlled drug delivery , 2011 .
[113] Zhen Gu,et al. Redox-responsive nanocapsules for intracellular protein delivery. , 2011, Biomaterials.
[114] Jong-Ho Lee,et al. Enhanced bone regeneration with BMP-2 loaded functional nanoparticle-hydrogel complex. , 2007, Journal of controlled release : official journal of the Controlled Release Society.
[115] P. Seeberger,et al. In vitro imaging and in vivo liver targeting with carbohydrate capped quantum dots. , 2009, Journal of the American Chemical Society.
[116] Michael R Hamblin,et al. Albumin nanostructures as advanced drug delivery systems , 2016, Expert opinion on drug delivery.
[117] C. Denny,et al. An engineered anti-CA19-9 cys-diabody for positron emission tomography imaging of pancreatic cancer and targeting of polymerized liposomal nanoparticles. , 2013, The Journal of surgical research.
[118] Yong Chen,et al. Enzyme-responsive protein/polysaccharide supramolecular nanoparticles. , 2015, Soft matter.
[119] Carmen Alvarez-Lorenzo,et al. Light‐sensitive Intelligent Drug Delivery Systems † , 2009, Photochemistry and photobiology.
[120] Hak-Sung Kim,et al. Genetically engineered and self-assembled oncolytic protein nanoparticles for targeted cancer therapy. , 2017, Biomaterials.
[121] Dan Peer,et al. The systemic toxicity of positively charged lipid nanoparticles and the role of Toll-like receptor 4 in immune activation. , 2010, Biomaterials.
[122] Y. Omidi,et al. Mucin-1 aptamer-armed superparamagnetic iron oxide nanoparticles for targeted delivery of doxorubicin to breast cancer cells , 2018, BioImpacts : BI.
[123] C. Kumar,et al. Magnetic nanomaterials for hyperthermia-based therapy and controlled drug delivery. , 2011, Advanced drug delivery reviews.
[124] Fernando Torres Andón,et al. Nanomedicine and cancer immunotherapy – targeting immunosuppressive cells , 2015, Journal of drug targeting.
[125] Patrick Couvreur,et al. Stimuli-responsive nanocarriers for drug delivery. , 2013, Nature materials.
[126] William Couet,et al. Indirect Evidence that Drug Brain Targeting Using Polysorbate 80-Coated Polybutylcyanoacrylate Nanoparticles Is Related to Toxicity , 1999, Pharmaceutical Research.
[127] Seungpyo Hong,et al. Biomolecular corona on nanoparticles: a survey of recent literature and its implications in targeted drug delivery , 2014, Front. Chem..
[128] Himanshu K. Solanki,et al. SUSTAINED RELEASE INJECTABLE FORMULATIONS: ITS RATIONALE, RECENT PROGRESS AND ADVANCEMENT. , 2015 .
[129] J. Gatot,et al. DiC14‐amidine cationic liposomes stimulate myeloid dendritic cells through Toll‐like receptor 4 , 2008, European journal of immunology.
[130] Y. Liao,et al. Oily nanosuspension for long-acting intramuscular delivery of curcumin didecanoate prodrug: preparation, characterization and in vivo evaluation. , 2013, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[131] Ahmed O Elzoghby,et al. Albumin-based nanoparticles as potential controlled release drug delivery systems. , 2012, Journal of controlled release : official journal of the Controlled Release Society.
[132] Yang Yang,et al. Preparation and Evaluation of Oxaliplatin Thermosensitive Liposomes with Rapid Release and High Stability , 2016, PloS one.
[133] Dianrui Zhang,et al. Bexarotene nanocrystal-Oral and parenteral formulation development, characterization and pharmacokinetic evaluation. , 2014, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[134] Ken-ichi Ogawara,et al. Nanoparticle-based passive drug targeting to tumors: considerations and implications for optimization. , 2013, Biological & pharmaceutical bulletin.
[135] F. Geissmann,et al. Selective Nanoparticle Targeting of the Renal Tubules , 2018, Hypertension.
[136] Jie Dong,et al. Quadruple-Stimuli-Sensitive Polymeric Nanocarriers for Controlled Release under Combined Stimulation , 2014 .
[137] B. Boyd,et al. Lyotropic liquid crystalline phases formed from glycerate surfactants as sustained release drug delivery systems. , 2006, International journal of pharmaceutics.
[138] Kinga Majchrzak,et al. The Basics of Artificial Antigen Presenting Cells in T Cell-Based Cancer Immunotherapies , 2017, Journal of immunology research and therapy.
[139] A. Florence,et al. Intramuscular absorption and biodistribution of dexamethasone from non-aqueous emulsions in the rat. , 2007, International journal of pharmaceutics.
[140] S. Mallik,et al. Hypoxia Responsive, Tumor Penetrating Lipid Nanoparticles for Delivery of Chemotherapeutics to Pancreatic Cancer Cell Spheroids. , 2016, Bioconjugate chemistry.
[141] Glenn P. Goodrich,et al. Suppression of the reticuloendothelial system using λ-carrageenan to prolong the circulation of gold nanoparticles. , 2015, Therapeutic delivery.
[142] H. M. Nielsen,et al. Immunogenicity Testing of Lipidoids In Vitro and In Silico: Modulating Lipidoid-Mediated TLR4 Activation by Nanoparticle Design , 2018, Molecular therapy. Nucleic acids.
[143] Hamidreza Ghandehari,et al. Nanoparticle Uptake: The Phagocyte Problem. , 2015, Nano today.
[144] Jun Li,et al. Preparation and characterization of intravenously injectable nimodipine nanosuspension. , 2008, International journal of pharmaceutics.
[145] S. Lesieur,et al. Nano-Assemblies of Modified Cyclodextrins and Their Complexes with Guest Molecules: Incorporation in Nanostructured Membranes and Amphiphile Nanoarchitectonics Design , 2014, Nanomaterials.
[146] Qian Yang,et al. Novel super pH-sensitive nanoparticles responsive to tumor extracellular pH , 2008 .
[147] Zhen Cheng,et al. Enzyme-responsive multifunctional magnetic nanoparticles for tumor intracellular drug delivery and imaging. , 2011, Chemistry, an Asian journal.
[148] M. D. Blanco,et al. In Vitro and In Vivo Evaluation of a Folate-Targeted Copolymeric Submicrohydrogel Based on N-Isopropylacrylamide as 5-Fluorouracil Delivery System , 2011 .
[149] P. Liu,et al. Redox‐Responsive Molecular Nanoreservoirs for Controlled Intracellular Anticancer Drug Delivery Based on Magnetic Nanoparticles , 2012, Advanced materials.
[150] A. Aravind,et al. Aptamer-labeled PLGA nanoparticles for targeting cancer cells , 2012, Cancer Nanotechnology.
[151] Jin-Zhi Du,et al. Tailor-made dual pH-sensitive polymer-doxorubicin nanoparticles for efficient anticancer drug delivery. , 2011, Journal of the American Chemical Society.
[152] M. Menziani,et al. Synthesis, Characterization, and Selective Delivery of DARPin-Gold Nanoparticle Conjugates to Cancer Cells. , 2017, Bioconjugate chemistry.
[153] William R. Dichtel,et al. Enzyme-responsive snap-top covered silica nanocontainers. , 2008, Journal of the American Chemical Society.
[154] Sanghyo Kim,et al. Polymer Nanoparticles for Smart Drug Delivery , 2014 .
[155] M. Le Bert,et al. The NLRP3 inflammasome is activated by nanoparticles through ATP, ADP and adenosine , 2015, Cell Death and Disease.
[156] Manuel Arruebo,et al. Antibody-conjugated nanoparticles for biomedical applications , 2009 .
[157] H. Azzazy,et al. Biodegradable Particulate Carrier Formulation and Tuning for Targeted Drug Delivery. , 2015, Journal of biomedical nanotechnology.
[158] Jaya Lakkakula,et al. A vision for cyclodextrin nanoparticles in drug delivery systems and pharmaceutical applications. , 2014, Nanomedicine.
[159] V. Nekkanti,et al. Insoluble drug delivery technologies: review of health benefits and business potentials , 2013 .
[160] Su Jeong Song,et al. Enzyme-responsive destabilization of stabilized plasmid-lipid nanoparticles as an efficient gene delivery. , 2016, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[161] N. K. Jain,et al. Polypropylene imine dendrimer mediated solubility enhancement: effect of pH and functional groups of hydrophobes. , 2007, Journal of pharmacy & pharmaceutical sciences : a publication of the Canadian Society for Pharmaceutical Sciences, Societe canadienne des sciences pharmaceutiques.
[162] Yang Yang,et al. Preparation, characterization, and efficacy of thermosensitive liposomes containing paclitaxel , 2016, Drug delivery.
[163] N. K. Jain,et al. Application of dendrimer-drug complexation in the enhancement of drug solubility and bioavailability. , 2008, Expert opinion on drug metabolism & toxicology.
[164] V. Nekkanti,et al. Insoluble drug delivery strategies: review of recent advances and business prospects , 2015, Acta pharmaceutica Sinica. B.
[165] M. Edidin,et al. Nanoscale artificial antigen presenting cells for T cell immunotherapy. , 2014, Nanomedicine : nanotechnology, biology, and medicine.
[166] Rakesh Kumar,et al. Nanocrystal technology in the delivery of poorly soluble drugs: an overview. , 2011, Current drug delivery.
[167] Kinam Park,et al. Development and evaluation of transferrin-stabilized paclitaxel nanocrystal formulation. , 2014, Journal of controlled release : official journal of the Controlled Release Society.
[168] E. Blakely,et al. Synthetic nano-low density lipoprotein as targeted drug delivery vehicle for glioblastoma multiforme. , 2006, International journal of pharmaceutics.
[169] L. John Burbidgh,et al. Products to market , 1993 .
[170] T. Gong,et al. Injectable and biodegradable thermosensitive hydrogels loaded with PHBHHx nanoparticles for the sustained and controlled release of insulin. , 2013, Acta biomaterialia.
[171] S. Ganta,et al. A review of stimuli-responsive nanocarriers for drug and gene delivery. , 2008, Journal of controlled release : official journal of the Controlled Release Society.
[172] Pedro M. Valencia,et al. Targeted Polymeric Therapeutic Nanoparticles: Design, Development and Clinical Translation , 2012 .
[173] Shuming Nie,et al. Understanding and overcoming major barriers in cancer nanomedicine. , 2010, Nanomedicine.
[174] Ronnie H. Fang,et al. In vivo clearance and toxicity of monodisperse iron oxide nanocrystals. , 2012, ACS nano.
[175] Adalberto Pessoa,et al. Micellar solubilization of drugs. , 2005, Journal of pharmacy & pharmaceutical sciences : a publication of the Canadian Society for Pharmaceutical Sciences, Societe canadienne des sciences pharmaceutiques.
[176] I. Choi,et al. Immunostimulatory Effects of Silica Nanoparticles in Human Monocytes , 2013, Immune network.
[177] Robert Langer,et al. Nanoparticle-based drug delivery systems: a commercial and regulatory outlook as the field matures , 2017, Expert opinion on drug delivery.
[178] M. K. Chourasia,et al. Subcutaneously Administered Ultrafine PLGA Nanoparticles Containing Doxycycline Hydrochloride Target Lymphatic Filarial Parasites. , 2016, Molecular pharmaceutics.
[179] A. Misra,et al. Wheat germ agglutinin-conjugated nanoparticles for sustained cellular and lung delivery of budesonide. , 2008, Drug delivery.
[180] Miao-Ping Chien,et al. Enzyme‐Responsive Nanoparticles for Targeted Accumulation and Prolonged Retention in Heart Tissue after Myocardial Infarction , 2015, Advanced materials.
[181] Y. Jeong,et al. Smart Nanoparticles Based on Hyaluronic Acid for Redox-Responsive and CD44 Receptor-Mediated Targeting of Tumor , 2015, Nanoscale Research Letters.
[182] C. L. Ventola,et al. Progress in Nanomedicine: Approved and Investigational Nanodrugs. , 2017, P & T : a peer-reviewed journal for formulary management.
[183] K. Peter,et al. Therapeutic targeting in nanomedicine: the future lies in recombinant antibodies. , 2017, Nanomedicine.
[184] F. Yamashita,et al. Formulation and pharmacokinetic evaluation of tetracycline-loaded solid lipid nanoparticles for subcutaneous injection in mice. , 2011, Chemical & pharmaceutical bulletin.
[185] J. Irache,et al. Poly(methyl vinyl ether-co-maleic anhydride) nanoparticles as innate immune system activators. , 2011, Vaccine.
[186] Molly M Stevens,et al. Enzyme-responsive nanoparticles for drug release and diagnostics. , 2012, Advanced drug delivery reviews.
[187] Christin P. Hollis. NANOCRYSTALS OF CHEMOTHERAPEUTIC AGENTS FOR CANCER THERANOSTICS: DEVELOPMENT AND IN VITRO AND IN VIVO EVALUATION , 2012 .
[188] Research on redox-responsive mesoporous silica nanoparticles functionalized with PEG via a disulfide bond linker as drug carrier materials , 2015, Colloid and Polymer Science.
[189] M. Amiji,et al. Translational Nano-Medicines: Targeted Therapeutic Delivery for Cancer and Inflammatory Diseases , 2015, The AAPS Journal.
[190] Qiang Zhang,et al. Galactose-decorated pH-responsive nanogels for hepatoma-targeted delivery of oridonin. , 2011, Biomacromolecules.
[191] K. Uhrich,et al. Designing polymers with sugar-based advantages for bioactive delivery applications. , 2015, Journal of controlled release : official journal of the Controlled Release Society.
[192] D. J. Lundy,et al. Distribution of Systemically Administered Nanoparticles Reveals a Size-Dependent Effect Immediately following Cardiac Ischaemia-Reperfusion Injury , 2016, Scientific Reports.
[193] S. Esener,et al. Half-antibody functionalized lipid-polymer hybrid nanoparticles for targeted drug delivery to carcinoembryonic antigen presenting pancreatic cancer cells. , 2010, Molecular pharmaceutics.
[194] M. Dobrovolskaia,et al. Immunological properties of engineered nanomaterials , 2007, Nature Nanotechnology.
[195] Ming-Jium Shieh,et al. Development of thermosensitive poly(n-isopropylacrylamide-co-((2-dimethylamino) ethyl methacrylate))-based nanoparticles for controlled drug release , 2011, Nanotechnology.
[196] Prakash Khadka,et al. Pharmaceutical particle technologies: An approach to improve drug solubility, dissolution and bioavailability , 2014 .
[197] Yong Zhang,et al. Remote activation of biomolecules in deep tissues using near-infrared-to-UV upconversion nanotransducers , 2012, Proceedings of the National Academy of Sciences.
[198] N. Murthy,et al. Polyketal nanoparticles: a new pH-sensitive biodegradable drug delivery vehicle. , 2005, Bioconjugate chemistry.
[199] Changill Ban,et al. Aptamer–nanoparticle complexes as powerful diagnostic and therapeutic tools , 2016, Experimental & Molecular Medicine.
[200] C. Mou,et al. Intracellular pH-responsive mesoporous silica nanoparticles for the controlled release of anticancer chemotherapeutics. , 2010, Angewandte Chemie.
[201] Takeshi Shimizu,et al. Nanogel DDS enables sustained release of IL-12 for tumor immunotherapy. , 2008, Biochemical and biophysical research communications.
[202] Shutao Guo,et al. Nanoparticles escaping RES and endosome: challenges for siRNA delivery for cancer therapy , 2011 .
[203] J. Gong,et al. Aptamer-coded DNA nanoparticles for targeted doxorubicin delivery using pH-sensitive spacer , 2017, Frontiers of Chemical Science and Engineering.
[204] M. Radosz,et al. pH-responsive nanoparticles for cancer drug delivery. , 2008, Methods in molecular biology.
[205] Abhalaxmi Singh,et al. Long Circulating Lectin Conjugated Paclitaxel Loaded Magnetic Nanoparticles: A New Theranostic Avenue for Leukemia Therapy , 2011, PloS one.
[206] Liangfang Zhang,et al. Polymer--cisplatin conjugate nanoparticles for acid-responsive drug delivery. , 2010, ACS nano.
[207] K. Hörmann,et al. Drug delivery and drug targeting with parenteral lipid nanoemulsions - A review. , 2016, Journal of controlled release : official journal of the Controlled Release Society.
[208] Yu Cao,et al. Aptamer-functionalized lipid nanoparticles targeting osteoblasts as a novel RNA interference–based bone anabolic strategy , 2015, Nature Medicine.
[209] D. A. Russell,et al. Cancer targeting with biomolecules: a comparative study of photodynamic therapy efficacy using antibody or lectin conjugated phthalocyanine-PEG gold nanoparticles , 2015, Photochemical & photobiological sciences : Official journal of the European Photochemistry Association and the European Society for Photobiology.
[210] Z. Gu,et al. The potential of self-assembled, pH-responsive nanoparticles of mPEGylated peptide dendron-doxorubicin conjugates for cancer therapy. , 2013, Biomaterials.
[211] B. Sarmento. Have nanomedicines progressed as much as we’d hoped for in drug discovery and development? , 2019, Expert opinion on drug discovery.
[212] M. Akashi,et al. The induction of innate and adaptive immunity by biodegradable poly(γ-glutamic acid) nanoparticles via a TLR4 and MyD88 signaling pathway. , 2011, Biomaterials.
[213] B. Youan,et al. Current status of lectin-based cancer diagnosis and therapy , 2017 .
[214] A. Lamprecht,et al. Lectin-decorated nanoparticles enhance binding to the inflamed tissue in experimental colitis. , 2014, Journal of controlled release : official journal of the Controlled Release Society.
[215] A. Lamprecht,et al. MDR in cancer: Addressing the underlying cellular alterations with the use of nanocarriers. , 2017, Pharmacological research.
[216] Helmuth Möhwald,et al. Near-IR remote release from assemblies of liposomes and nanoparticles. , 2009, Angewandte Chemie.
[217] J. Hirabayashi,et al. Lectin engineering: the possible and the actual , 2019, Journal of the Royal Society Interface Focus.
[218] Mayank P. Patel,et al. Hexosomes: a novel drug delivery system. , 2010, Current drug delivery.
[219] J E Kipp,et al. The role of solid nanoparticle technology in the parenteral delivery of poorly water-soluble drugs. , 2004, International journal of pharmaceutics.
[220] Sungho Jin,et al. Magnetically vectored nanocapsules for tumor penetration and remotely switchable on-demand drug release. , 2010, Nano letters.
[221] Shyh-Dar Li,et al. Limitations and niches of the active targeting approach for nanoparticle drug delivery , 2012 .
[222] N. K. Jain,et al. Evaluation of solid lipid nanoparticles as carriers for delivery of hepatitis B surface antigen for vaccination using subcutaneous route. , 2010, Journal of pharmacy & pharmaceutical sciences : a publication of the Canadian Society for Pharmaceutical Sciences, Societe canadienne des sciences pharmaceutiques.
[223] V. Chandrasekhar,et al. DRUG NANOCRYSTALS: A NOVEL FORMULATION APPROACH FOR POORLY SOLUBLE DRUGS , 2009 .
[224] Tamer Refaat,et al. Passive targeting of nanoparticles to cancer: A comprehensive review of the literature. , 2014, Molecular and clinical oncology.
[225] Vivek Agrahari,et al. Facilitating the translation of nanomedicines to a clinical product: challenges and opportunities. , 2018, Drug discovery today.
[226] Qing Yao,et al. Transporter-Guided Delivery of Nanoparticles to Improve Drug Permeation across Cellular Barriers and Drug Exposure to Selective Cell Types , 2018, Front. Pharmacol..
[227] C. van Nostrum,et al. Triggered destabilisation of polymeric micelles and vesicles by changing polymers polarity: an attractive tool for drug delivery. , 2007, Journal of Controlled Release.
[228] A. Mitra,et al. Recent developments in protein and peptide parenteral delivery approaches. , 2014, Therapeutic delivery.
[229] A. Scott,et al. HER2-Specific T-Cell Immune Responses in Patients Vaccinated with Truncated HER2 Protein Complexed with Nanogels of Cholesteryl Pullulan , 2006, Clinical Cancer Research.
[230] Wei Lu,et al. Lectin-conjugated PEG-PLA nanoparticles: preparation and brain delivery after intranasal administration. , 2006, Biomaterials.
[231] Hailong Yang,et al. Odorranalectin Is a Small Peptide Lectin with Potential for Drug Delivery and Targeting , 2008, PloS one.
[232] Marina A Dobrovolskaia,et al. Nanoparticles and the immune system. , 2010, Endocrinology.
[233] J. Andrieu. Specific enzymatic cleavage and payload release from peptide-based hybrid nanocapsules , 2011 .
[234] A. Ullrich,et al. Paul Ehrlich's magic bullet concept: 100 years of progress , 2008, Nature Reviews Cancer.
[235] P. Nygren,et al. Binding proteins from alternative scaffolds. , 2004, Journal of immunological methods.
[236] Sheng Tan,et al. Redox-responsive and pH-sensitive nanoparticles enhanced stability and anticancer ability of erlotinib to treat lung cancer in vivo , 2017, Drug design, development and therapy.
[237] C. Jin,et al. Enhanced tumor targeting of cRGD peptide-conjugated albumin nanoparticles in the BxPC-3 cell line , 2016, Scientific Reports.
[238] Stefan Ståhl,et al. Affibody Molecules in Biotechnological and Medical Applications. , 2017, Trends in biotechnology.
[239] D. A. Russell,et al. Targeting the oncofetal Thomsen-Friedenreich disaccharide using jacalin-PEG phthalocyanine gold nanoparticles for photodynamic cancer therapy. , 2012, Angewandte Chemie.
[240] Hyun-Jong Cho,et al. A new injectable liquid crystal system for one month delivery of leuprolide. , 2014, Journal of controlled release : official journal of the Controlled Release Society.
[241] J. Benavente,et al. Lipid and Cyclodextrin Nanocarriers Loading Bioactive Agents:: Stabilization on Polymeric Supports , 2013 .
[242] L. Thoma,et al. Core-shell-type lipid-polymer hybrid nanoparticles as a drug delivery platform. , 2013, Nanomedicine : nanotechnology, biology, and medicine.
[243] B. Verrier,et al. Biodegradable Polymeric Nanoparticles-Based Vaccine Adjuvants for Lymph Nodes Targeting , 2016, Vaccines.
[244] Jin-Chul Kim,et al. Temperature-sensitive releases from liposomes containing hydrophobically modified poly(N-isopropylacrylamide) , 1999 .
[245] J. Zach Hilt,et al. Hydrogel nanocomposites: a review of applications as remote controlled biomaterials , 2010 .
[246] Rainer H Müller,et al. Nanocrystal technology, drug delivery and clinical applications , 2008, International journal of nanomedicine.
[247] C. Lehr,et al. Lectin-mediated drug targeting: history and applications. , 2004, Advanced drug delivery reviews.
[248] Shenmin Zhang,et al. Controlled release of insulin from PLGA nanoparticles embedded within PVA hydrogels , 2007, Journal of materials science. Materials in medicine.
[249] V. Apostolopoulos,et al. Targeting Antigens to Dendritic Cell Receptors for Vaccine Development , 2013, Journal of drug delivery.
[250] Kazuo Maruyama,et al. Preparation of Angiopep-2 Peptide-Modified Bubble Liposomes for Delivery to the Brain. , 2016, Biological & pharmaceutical bulletin.
[251] Sabine Kempe,et al. In situ forming implants - an attractive formulation principle for parenteral depot formulations. , 2012, Journal of controlled release : official journal of the Controlled Release Society.
[252] R. Narain,et al. Carbohydrate-based materials for targeted delivery of drugs and genes to the liver. , 2015, Nanomedicine.
[253] Jan P Möschwitzer,et al. Drug nanocrystals in the commercial pharmaceutical development process. , 2013, International journal of pharmaceutics.
[254] O. Farokhzad,et al. Degradable Controlled-Release Polymers and Polymeric Nanoparticles: Mechanisms of Controlling Drug Release. , 2016, Chemical reviews.
[255] Ashutosh Chilkoti,et al. Stimulus-responsive macromolecules and nanoparticles for cancer drug delivery. , 2010, Nanomedicine.
[256] H. Bari. A PROLONGED RELEASE PARENTERAL DRUG DELIVERY SYSTEM - AN OVERVIEW , 2010 .
[257] Anil Kumar,et al. Multifunctional aptamer-based nanoparticles for targeted drug delivery to circumvent cancer resistance. , 2016, Biomaterials.
[258] X. Xiao,et al. Low density lipoprotein modified silica nanoparticles loaded with docetaxel and thalidomide for effective chemotherapy of liver cancer , 2018, Brazilian journal of medical and biological research = Revista brasileira de pesquisas medicas e biologicas.
[259] J. Donnelly,et al. Pharmacokinetics of Itraconazole and Hydroxyitraconazole in Healthy Subjects after Single and Multiple Doses of a Novel Formulation , 2006, Antimicrobial Agents and Chemotherapy.
[260] A. Juan,et al. Glucose Single-Chain Polymer Nanoparticles for Cellular Targeting , 2018, ACS macro letters.
[261] Yong Hwan Kim,et al. Site-specific fatty acid-conjugation to prolong protein half-life in vivo. , 2013, Journal of controlled release : official journal of the Controlled Release Society.
[262] Mahdi Karimi,et al. Temperature-Responsive Smart Nanocarriers for Delivery Of Therapeutic Agents: Applications and Recent Advances. , 2016, ACS applied materials & interfaces.
[263] 김병수,et al. Light-Responsive Micelles of Spiropyran Initiated Hyperbranched Polyglycerol for Smart Drug Delivery , 2014 .
[264] H. Leonhardt,et al. Intracellular chromobody delivery by mesoporous silica nanoparticles for antigen targeting and visualization in real time , 2016, Scientific Reports.
[265] S. Svenson,et al. Dendrimers for enhanced drug solubilization. , 2008, Nanomedicine.
[266] A. Anand,et al. Targeted drug delivery to central nervous system (CNS) for the treatment of neurodegenerative disorders: trends and advances. , 2014, Central nervous system agents in medicinal chemistry.
[267] Hong Xu,et al. Active targeting using HER-2-affibody-conjugated nanoparticles enabled sensitive and specific imaging of orthotopic HER-2 positive ovarian tumors. , 2014, Small.
[268] Y. Yoshioka,et al. Clusterin in the protein corona plays a key role in the stealth effect of nanoparticles against phagocytes. , 2016, Biochemical and biophysical research communications.
[269] Fabian Kiessling,et al. Cancer nanomedicine: Is targeting our target? , 2016, Nature reviews. Materials.
[270] Kaur Amanpreet,et al. CYCLODEXTRINS: AN EXCIPIENT TOOL IN DRUG DELIVERY , 2012 .
[271] M. Kenney,et al. Transferrin receptor-targeted theranostic gold nanoparticles for photosensitizer delivery in brain tumors. , 2015, Nanoscale.
[272] A Hatefi,et al. Biodegradable injectable in situ forming drug delivery systems. , 2002, Journal of controlled release : official journal of the Controlled Release Society.
[273] Anne Marie Krachler,et al. Enzyme-responsive polyion complex (PIC) nanoparticles for the targeted delivery of antimicrobial polymers† †Electronic supplementary information (ESI) available: Peptide synthesis, further details of PIC nanoparticle characterisation and full data from microbiology assays. See DOI: 10.1039/c6py00146 , 2016, Polymer chemistry.
[274] J. Huskens,et al. Size-controlled and redox-responsive supramolecular nanoparticles , 2015, Beilstein journal of organic chemistry.
[275] C. Mirkin,et al. Templated spherical high density lipoprotein nanoparticles. , 2009, Journal of the American Chemical Society.
[276] B. Gidwani,et al. A Comprehensive Review on Cyclodextrin-Based Carriers for Delivery of Chemotherapeutic Cytotoxic Anticancer Drugs , 2015, BioMed research international.
[277] Mark W. Tibbitt,et al. Self-Assembled Hydrogels Utilising Polymer-Nanoparticle Interactions , 2015, Nature Communications.
[278] Tonglei Li,et al. Biodistribution and bioimaging studies of hybrid paclitaxel nanocrystals: lessons learned of the EPR effect and image-guided drug delivery. , 2013, Journal of controlled release : official journal of the Controlled Release Society.
[279] L. Jorgensen,et al. Design and processing of nanogels as delivery systems for peptides and proteins. , 2014, Therapeutic delivery.
[280] P. Rougé,et al. Plant Lectins Targeting O-Glycans at the Cell Surface as Tools for Cancer Diagnosis, Prognosis and Therapy , 2017, International journal of molecular sciences.
[281] M. Amiji,et al. Redox-responsive targeted gelatin nanoparticles for delivery of combination wt-p53 expressing plasmid DNA and gemcitabine in the treatment of pancreatic cancer , 2014, BMC Cancer.
[282] Lord Jm. The use of cytotoxic plant lectins in cancer therapy. , 1987 .
[283] T. Fahmy,et al. Nanogel-based delivery of mycophenolic acid ameliorates systemic lupus erythematosus in mice. , 2013, The Journal of clinical investigation.
[284] A. Lamprecht,et al. A nanoparticle-based approach to improve the outcome of cancer active immunotherapy with lipopolysaccharides , 2018, Drug delivery.
[285] Hyun-Jong Cho,et al. Poly((D,L)lactic-glycolic)acid–star glucose nanoparticles for glucose transporter and hypoglycemia-mediated tumor targeting , 2017, International journal of nanomedicine.
[286] Y. Jeong,et al. Enzyme-responsive doxorubicin release from dendrimer nanoparticles for anticancer drug delivery , 2015, International journal of nanomedicine.
[287] A. Mohammed,et al. Liposome formulation of poorly water soluble drugs: optimisation of drug loading and ESEM analysis of stability. , 2004, International journal of pharmaceutics.
[288] S Thayumanavan,et al. Multi-stimuli sensitive amphiphilic block copolymer assemblies. , 2009, Journal of the American Chemical Society.
[289] Jianhua Zhang,et al. Composites of Polymer Hydrogels and Nanoparticulate Systems for Biomedical and Pharmaceutical Applications , 2015, Nanomaterials.
[290] Silvia Catuogno,et al. Aptamer-Mediated Targeted Delivery of Therapeutics: An Update , 2016, Pharmaceuticals.
[291] D. Burgess,et al. Micro- and Nanoemulsions (Controlled Release Parenteral Drug Delivery Systems) , 2012 .
[292] Jinming Gao,et al. Nanonization strategies for poorly water-soluble drugs. , 2011, Drug discovery today.
[293] Richard A Flavell,et al. Inflammasome-activating nanoparticles as modular systems for optimizing vaccine efficacy. , 2009, Vaccine.
[294] D. Heller,et al. Mesoscale nanoparticles selectively target the renal proximal tubule epithelium. , 2015, Nano letters.
[295] R. Kontermann,et al. Dual targeting strategies with bispecific antibodies , 2012, mAbs.
[296] Xia Tong,et al. Photoresponsive Nanogels Based on Photocontrollable Cross-Links , 2009 .
[297] H. Moghimi,et al. Hydrogel-embeded vesicles, as a novel approach for prolonged release and delivery of liposome, in vitro and in vivo , 2013, Journal of liposome research.
[298] R. Eritja,et al. Biodegradable liposome-encapsulated hydrogels for biomedical applications: a marriage of convenience. , 2016, Biomaterials science.
[299] Shyh-Dar Li,et al. Thermosensitive liposomes for the delivery of gemcitabine and oxaliplatin to tumors. , 2013, Molecular pharmaceutics.
[300] Antoine Maruani,et al. Antibody fragments as nanoparticle targeting ligands: a step in the right direction , 2016, Chemical science.
[301] Rainer H Müller,et al. Lipid nanoparticles for parenteral delivery of actives. , 2009, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[302] K. P. R. Chowdary,et al. NANOPARTICLES AS DRUG CARRIERS , 1997 .
[303] Maryam Tabrizian,et al. Protein release kinetics for core-shell hybrid nanoparticles based on the layer-by-layer assembly of alginate and chitosan on liposomes. , 2008, Biomaterials.
[304] J. Sunshine,et al. Nanoengineering approaches to the design of artificial antigen-presenting cells. , 2013, Nanomedicine.
[305] B. Boyd,et al. Hexosomes formed from glycerate surfactants--formulation as a colloidal carrier for irinotecan. , 2006, International journal of pharmaceutics.
[306] Abhay Asthana,et al. Mannosylated Chitosan Nanoparticles for Delivery of Antisense Oligonucleotides for Macrophage Targeting , 2014, BioMed research international.
[307] C. Figdor,et al. Towards efficient cancer immunotherapy: advances in developing artificial antigen-presenting cells , 2014, Trends in biotechnology.
[308] Qiang Zhang,et al. Formulation and pharmacokinetics evaluation of puerarin nanocrystals for intravenous delivery. , 2012, Journal of nanoscience and nanotechnology.
[309] B. Narasimhan,et al. Mannose-functionalized "pathogen-like" polyanhydride nanoparticles target C-type lectin receptors on dendritic cells. , 2011, Molecular pharmaceutics.
[310] A. Koretsky,et al. MRI of the basement membrane using charged nanoparticles as contrast agents , 2008, Magnetic resonance in medicine.
[311] John J. Schlager,et al. Toxicity Evaluation for Safe Use of Nanomaterials: Recent Achievements and Technical Challenges , 2009 .
[312] A. Chade,et al. A kidney-selective biopolymer for targeted drug delivery. , 2017, American journal of physiology. Renal physiology.
[313] M. Lattuada,et al. Magnetoliposomes: opportunities and challenges , 2014 .
[314] Wan-Wan Yang,et al. Reservoir-Based Polymer Drug Delivery Systems , 2012, Journal of laboratory automation.
[315] Elena Aznar,et al. Enzyme-responsive intracellular controlled release using nanometric silica mesoporous supports capped with "saccharides". , 2010, ACS nano.
[316] Critical residues involved in Toll-like receptor 4 activation by cationic lipid nanocarriers are not located at the lipopolysaccharide-binding interface , 2015, Cellular and Molecular Life Sciences.
[317] Zhen Gu,et al. Light‐Activated Hypoxia‐Responsive Nanocarriers for Enhanced Anticancer Therapy , 2016, Advanced materials.
[318] John E. Murphy,et al. Rational design of a fully active, long-acting PEGylated factor VIII for hemophilia A treatment. , 2010, Blood.
[319] I. Zuhorn,et al. Surface characteristics of nanoparticles determine their intracellular fate in and processing by human blood-brain barrier endothelial cells in vitro. , 2011, Molecular therapy : the journal of the American Society of Gene Therapy.
[320] Ick Chan Kwon,et al. Tumor-targeting peptide conjugated pH-responsive micelles as a potential drug carrier for cancer therapy. , 2010, Bioconjugate chemistry.
[321] Matthew J Dalby,et al. Hydrogel nanoparticles for drug delivery. , 2013, Nanomedicine.
[322] J. Aukunuru,et al. Development of subcutaneous sustained release nanoparticles encapsulating low molecular weight heparin , 2015, Journal of advanced pharmaceutical technology & research.
[323] Q. Pankhurst,et al. Applications of magnetic nanoparticles in biomedicine , 2003 .
[324] Q. Tang,et al. Hypoxia-responsive drug–drug conjugated nanoparticles for breast cancer synergistic therapy , 2016 .
[325] Hua Ai,et al. cRGD-functionalized polymer micelles for targeted doxorubicin delivery. , 2004, Angewandte Chemie.
[326] Richard A Flavell,et al. Combination delivery of TGF-β inhibitor and IL-2 by nanoscale liposomal polymeric gels enhances tumour immunotherapy. , 2012, Nature materials.
[327] P. Mutlu,et al. Synthesis of Doxorubicin loaded magnetic chitosan nanoparticles for pH responsive targeted drug delivery. , 2014, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[328] Fredrik Y Frejd,et al. Affibody molecules: Engineered proteins for therapeutic, diagnostic and biotechnological applications , 2010, FEBS letters.
[329] Wenming Liu,et al. Preparation and in vitro properties of redox-responsive polymeric nanoparticles for paclitaxel delivery. , 2011, Colloids and surfaces. B, Biointerfaces.
[330] G. P. Agrawal,et al. Mannosylated solid lipid nanoparticles as vectors for site-specific delivery of an anti-cancer drug. , 2010, Journal of controlled release : official journal of the Controlled Release Society.
[331] Rodney D. Priestley,et al. Rational design and fabrication of core–shell nanoparticles through a one-step/pot strategy , 2016 .
[332] Victor S-Y Lin,et al. Stimuli-responsive controlled-release delivery system based on mesoporous silica nanorods capped with magnetic nanoparticles. , 2005, Angewandte Chemie.
[333] Quanyin Hu,et al. Enzyme-responsive nanomaterials for controlled drug delivery. , 2014, Nanoscale.
[334] P. Štěpánek,et al. Novel pH-responsive nanoparticles. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[335] Toshinobu Yogo,et al. High-frequency, magnetic-field-responsive drug release from magnetic nanoparticle/organic hybrid based on hyperthermic effect. , 2010, ACS applied materials & interfaces.
[336] N. Hanagata,et al. Silver nanoparticles induce tight junction disruption and astrocyte neurotoxicity in a rat blood–brain barrier primary triple coculture model , 2015, International journal of nanomedicine.
[337] P. Chu,et al. Cyclodextrin-based host-guest supramolecular nanoparticles for delivery: from design to applications. , 2014, Accounts of chemical research.
[338] P. Soininen,et al. Temperature responsive porous silicon nanoparticles for cancer therapy - spatiotemporal triggering through infrared and radiofrequency electromagnetic heating. , 2016, Journal of controlled release : official journal of the Controlled Release Society.
[339] Lacie M. Chauvigne-́Hines,et al. Glycoconjugated Site-Selective DNA-Methylating Agent Targeting Glucose Transporters on Glioma Cells. , 2017, Biochemistry.
[340] A. Lamprecht,et al. Cargo-free particles of ammonio methacrylate copolymers: From pharmaceutical inactive ingredients to effective anticancer immunotherapeutics. , 2018, Biomaterials.
[341] S. Lesieur,et al. Self-assembled multicompartment liquid crystalline lipid carriers for protein, peptide, and nucleic acid drug delivery. , 2011, Accounts of chemical research.
[342] P. Granja,et al. Impact of surfactants on the target recognition of Fab‐conjugated PLGA nanoparticles , 2018, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[343] T. Allen,et al. Subcutaneous administration of sterically stabilized (stealth) liposomes is an effective sustained release system for 1-β-d-arabinofuranosylcytosine , 1993 .
[344] M. Vallet‐Regí,et al. Lectin-conjugated pH-responsive mesoporous silica nanoparticles for targeted bone cancer treatment. , 2021, Acta biomaterialia.
[345] Lei Wang,et al. Graphene oxide induces toll-like receptor 4 (TLR4)-dependent necrosis in macrophages. , 2013, ACS nano.
[346] Y Li,et al. PEGylated PLGA nanoparticles as protein carriers: synthesis, preparation and biodistribution in rats. , 2001, Journal of controlled release : official journal of the Controlled Release Society.
[347] J. Sunshine,et al. Biodegradable nanoellipsoidal artificial antigen presenting cells for antigen specific T-cell activation. , 2015, Small.
[348] R. Zare,et al. Electroresponsive nanoparticles for drug delivery on demand. , 2016, Nanoscale.
[349] A. Lamprecht,et al. Safety assessment of nanoparticles for drug delivery by means of classic in vitro assays and beyond , 2016, Expert opinion on drug delivery.
[350] Timo Laaksonen,et al. Gold nanoparticles enable selective light-induced contents release from liposomes. , 2007, Journal of controlled release : official journal of the Controlled Release Society.
[351] H. Wong,et al. Nanocarrier for Poorly Water-Soluble Anticancer Drugs—Barriers of Translation and Solutions , 2014, AAPS PharmSciTech.
[352] Y. Yeo,et al. Nanocrystals for the parenteral delivery of poorly water-soluble drugs. , 2012, Current opinion in solid state & materials science.
[353] A. Lamprecht,et al. Nanoparticles as drug carriers: current issues with in vitro testing. , 2015, Nanomedicine.
[354] M. Busquets,et al. Iron Oxide Nanoparticles for Magnetically-Guided and Magnetically-Responsive Drug Delivery , 2015, International journal of molecular sciences.
[355] Yingchun Zhu,et al. Dual-responsive drug delivery system with real time tunable release behavior , 2014 .
[356] Juan L. Vivero-Escoto,et al. In vitro evaluation of folic acid-conjugated redox-responsive mesoporous silica nanoparticles for the delivery of cisplatin , 2016, International journal of nanomedicine.
[357] M. Nasr,et al. In vitro and in vivo evaluation of cubosomes containing 5-fluorouracil for liver targeting , 2014, Acta pharmaceutica Sinica. B.
[358] Omid C Farokhzad,et al. pH-Responsive nanoparticles for drug delivery. , 2010, Molecular pharmaceutics.
[359] S. Larsen,et al. In vitro assessment of drug release rates from oil depot formulations intended for intra-articular administration. , 2006, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[360] Xingzhong Zhao,et al. Synthetic nanoparticles camouflaged with biomimetic erythrocyte membranes for reduced reticuloendothelial system uptake , 2016, Nanotechnology.
[361] Tej B. Shrestha,et al. Protease-sensitive, polymer-caged liposomes: a method for making highly targeted liposomes using triggered release. , 2011, ACS nano.
[362] Xun Sun,et al. Peptide-drug conjugate linked via a disulfide bond for kidney targeted drug delivery. , 2012, Bioconjugate chemistry.
[363] Jing Wang,et al. Mesoporous Silica‐Coated Gold Nanorods as a Light‐Mediated Multifunctional Theranostic Platform for Cancer Treatment , 2012, Advanced materials.
[364] John-Christopher Boyer,et al. Near infrared light triggered release of biomacromolecules from hydrogels loaded with upconversion nanoparticles. , 2012, Journal of the American Chemical Society.
[365] Jing-quan Li,et al. Titanium dioxide nanoparticles prime a specific activation state of macrophages , 2017, Nanotoxicology.
[366] C. Gonçalves,et al. Self-Assembled Hydrogel Nanoparticles for Drug Delivery Applications , 2010, Materials.
[367] V. C. Malshe,et al. Asialoglycoprotein receptor targeted delivery of doxorubicin nanoparticles for hepatocellular carcinoma , 2017, Drug delivery.
[368] Chong Li,et al. N-Boc-histidine-capped PLGA-PEG-PLGA as a smart polymer for drug delivery sensitive to tumor extracellular pH. , 2010, Macromolecular bioscience.
[369] Yu Xia,et al. Galactose-modified selenium nanoparticles for targeted delivery of doxorubicin to hepatocellular carcinoma , 2019, Drug delivery.
[370] Paula T Hammond,et al. Layer-by-layer nanoparticles with a pH-sheddable layer for in vivo targeting of tumor hypoxia. , 2011, ACS nano.
[371] Yao Qin,et al. In vitro and in vivo investigation of glucose-mediated brain-targeting liposomes , 2010, Journal of drug targeting.
[372] O. Sorițău,et al. Nanoparticles for Targeting Intratumoral Hypoxia: Exploiting a Potential Weakness of Glioblastoma , 2016, Pharmaceutical Research.
[373] Guangjun Nie,et al. Applications of nanomaterials as vaccine adjuvants , 2014, Human vaccines & immunotherapeutics.
[374] Emil Pitkin,et al. Recombinant Interleukin-1 Receptor Antagonist Conjugated to Superparamagnetic Iron Oxide Nanoparticles for Theranostic Targeting of Experimental Glioblastoma123 , 2015, Neoplasia.
[375] F. Kiessling,et al. Enhancing Tumor Penetration of Nanomedicines. , 2017, Biomacromolecules.
[376] Jouni Hirvonen,et al. Stabilizing Agents for Drug Nanocrystals: Effect on Bioavailability , 2016, Pharmaceutics.
[377] R. Kontermann,et al. Targeting of epidermal growth factor receptor (EGFR)-expressing tumor cells with sterically stabilized affibody liposomes (SAL). , 2009, Bioconjugate chemistry.
[378] B. Klajnert-Maculewicz,et al. Sugar Modification Enhances Cytotoxic Activity of PAMAM-Doxorubicin Conjugate in Glucose-Deprived MCF-7 Cells – Possible Role of GLUT1 Transporter , 2019, Pharmaceutical Research.
[379] S. Broderick,et al. Activation of innate immune responses in a pathogen-mimicking manner by amphiphilic polyanhydride nanoparticle adjuvants. , 2011, Biomaterials.
[380] Robert Langer,et al. PLGA-lecithin-PEG core-shell nanoparticles for controlled drug delivery. , 2009, Biomaterials.
[381] Vivek Agrahari,et al. Challenges associated and approaches for successful translation of nanomedicines into commercial products. , 2017, Nanomedicine.
[382] Nicholas A Peppas,et al. Expert opinion: Responsive polymer nanoparticles in cancer therapy. , 2012, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[383] David Handelsman,et al. Factors influencing time course of pain after depot oil intramuscular injection of testosterone undecanoate. , 2010, Asian journal of andrology.
[384] Taizo Shiraishi,et al. Humoral immune responses in patients vaccinated with 1–146 HER2 protein complexed with cholesteryl pullulan nanogel , 2008, Cancer science.
[385] Filomena Esteves,et al. Affimer proteins are versatile and renewable affinity reagents , 2017, eLife.
[386] Qiang Yan,et al. Voltage-responsive vesicles based on orthogonal assembly of two homopolymers. , 2010, Journal of the American Chemical Society.
[387] Shiguo Sun. Recent Advances of Multi-Stimuli-Responsive Drug Delivery Systems for Cancer Therapy , 2017 .
[388] D. Heller,et al. Nanomedicines for kidney diseases. , 2016, Kidney international.
[389] J. Duan,et al. A novel approach of targeted immunotherapy against adenocarcinoma cells with nanoparticles modified by CD16 and MUC1 aptamers , 2015 .
[390] María Vallet-Regí,et al. Smart drug delivery through DNA/magnetic nanoparticle gates. , 2011, ACS nano.
[391] Thomas Iskratsch,et al. Specificity analysis of lectins and antibodies using remodeled glycoproteins. , 2009, Analytical biochemistry.
[392] Zhenguang Liu,et al. Cubosome nanoparticles potentiate immune properties of immunostimulants , 2016, International journal of nanomedicine.
[393] Chun Xing Li,et al. Polymer-drug conjugates: recent development in clinical oncology. , 2008, Advanced drug delivery reviews.
[394] Lin Yu,et al. Injectable hydrogels as unique biomedical materials. , 2008, Chemical Society reviews.
[395] Marcos Luciano Bruschi,et al. Lectins and Nanostructured Drug Delivery Systems. , 2019, Current drug delivery.