Lipid-shelled vehicles: engineering for ultrasound molecular imaging and drug delivery.
暂无分享,去创建一个
[1] V. Torchilin. Targeted pharmaceutical nanocarriers for cancer therapy and imaging , 2007, The AAPS Journal.
[2] S. Libutti,et al. Pulsed-High Intensity Focused Ultrasound and Low Temperature–Sensitive Liposomes for Enhanced Targeted Drug Delivery and Antitumor Effect , 2007, Clinical Cancer Research.
[3] H. Stone,et al. Interfacial Polygonal Nanopatterning of Stable Microbubbles , 2008, Science.
[4] Katherine W Ferrara,et al. A novel method to label preformed liposomes with 64Cu for positron emission tomography (PET) imaging. , 2008, Bioconjugate chemistry.
[5] David Needham,et al. Mechanical Properties and Microstructure of Polycrystalline Phospholipid Monolayer Shells: Novel Solid Microparticles , 2003 .
[6] Paul A. Dayton,et al. Imaging of angiogenesis using Cadence contrast pulse sequencing and targeted contrast agents. , 2008, Contrast media & molecular imaging.
[7] Katherine W Ferrara,et al. Ultrasound contrast microbubbles in imaging and therapy: physical principles and engineering , 2009, Physics in medicine and biology.
[8] Raffi Bekeredjian,et al. Ultrasound-Targeted Microbubble Destruction Can Repeatedly Direct Highly Specific Plasmid Expression to the Heart , 2003, Circulation.
[9] Saurabh Datta,et al. Ultrasound-enhanced tissue plasminogen activator thrombolysis in an in vitro porcine clot model. , 2008, Thrombosis research.
[10] D. Yablonskiy,et al. Improved calibration technique for in vivo proton MRS thermometry for brain temperature measurement , 2008, Magnetic resonance in medicine.
[11] Paul A Dayton,et al. Lateral phase separation in lipid-coated microbubbles. , 2006, Langmuir : the ACS journal of surfaces and colloids.
[12] M. Longo,et al. Surface phase behavior and microstructure of lipid/PEG-emulsifier monolayer-coated microbubbles. , 2004, Colloids and surfaces. B, Biointerfaces.
[13] Paul A Dayton,et al. Ultrasound radiation force enables targeted deposition of model drug carriers loaded on microbubbles. , 2006, Journal of controlled release : official journal of the Controlled Release Society.
[14] R Blumenthal,et al. Design of liposomes for enhanced local release of drugs by hyperthermia. , 1978, Science.
[15] David Needham,et al. Test of the Epstein-Plesset model for gas microparticle dissolution in aqueous media: effect of surface tension and gas undersaturation in solution. , 2004, Langmuir : the ACS journal of surfaces and colloids.
[16] R. Gillies,et al. DNA and polylysine adsorption and multilayer construction onto cationic lipid-coated microbubbles. , 2007, Langmuir : the ACS journal of surfaces and colloids.
[17] Katherine W Ferrara,et al. Therapeutic effects of paclitaxel-containing ultrasound contrast agents. , 2006, Ultrasound in medicine & biology.
[18] Williams,et al. Association of Blood Clotting Factors I and VII with Phospholipid Monolayers at the Air-Water Interface. , 1999, Journal of colloid and interface science.
[19] D. Leckband,et al. Grafted poly(ethylene oxide) brushes as nonfouling surface coatings. , 1999, Journal of biomaterials science. Polymer edition.
[20] Hairong Zheng,et al. Dynamic microPET imaging of ultrasound contrast agents and lipid delivery. , 2008, Journal of controlled release : official journal of the Controlled Release Society.
[21] Piet Gros,et al. Structures of complement component C3 provide insights into the function and evolution of immunity , 2005, Nature.
[22] P. Dayton,et al. Experimental and theoretical evaluation of microbubble behavior: effect of transmitted phase and bubble size , 2000, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.
[23] Sanjiv Kaul,et al. Myocardial contrast echocardiography: a 25-year retrospective. , 2008, Circulation.
[24] 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.
[25] Katherine W Ferrara,et al. Enhancement of vascular permeability with low-frequency contrast-enhanced ultrasound in the chorioallantoic membrane model. , 2007, Radiology.
[26] Paul A. Dayton,et al. Optical observation of contrast agent destruction , 2000 .
[27] D. Grainger,et al. Lateral phase separation in interfacial films of pulmonary surfactant. , 1996, Biophysical journal.
[28] M. Dewhirst,et al. Advances in Brief A New Temperature-sensitive Liposome for Use with Mild Hyperthermia : Characterization and Testing in a Human Tumor Xenograft Model 1 , 2000 .
[29] Paul A Dayton,et al. A stimulus-responsive contrast agent for ultrasound molecular imaging. , 2008, Biomaterials.
[30] K. Edwards,et al. Use of a passive equilibration methodology to encapsulate cisplatin into preformed thermosensitive liposomes. , 2008, International journal of pharmaceutics.
[31] T. Allen,et al. Ligand-targeted liposomal anticancer drugs. , 2003, Progress in lipid research.
[32] Hairong Zheng,et al. Acoustically-active microbubbles conjugated to liposomes: characterization of a proposed drug delivery vehicle. , 2007, Journal of controlled release : official journal of the Controlled Release Society.
[33] J. Qi,et al. Dynamic imaging of arginine-rich heart-targeted vehicles in a mouse model. , 2008, Biomaterials.
[34] J. Sutcliffe,et al. Long-circulating liposomes radiolabeled with [18F]fluorodipalmitin ([18F]FDP). , 2007, Nuclear medicine and biology.
[35] A. Klibanov,et al. Ligand-carrying gas-filled microbubbles: ultrasound contrast agents for targeted molecular imaging. , 2005, Bioconjugate chemistry.
[36] John W. Park,et al. Pharmacokinetics and in vivo drug release rates in liposomal nanocarrier development. , 2008, Journal of pharmaceutical sciences.
[37] Paul A Dayton,et al. Maintaining monodispersity in a microbubble population formed by flow-focusing. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[38] P. Dayton,et al. Influence of lipid shell physicochemical properties on ultrasound-induced microbubble destruction , 2005, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.
[39] Vladimir P Torchilin,et al. Radiofrequency thermal ablation sharply increases intratumoral liposomal doxorubicin accumulation and tumor coagulation. , 2003, Cancer research.