Towards MR-navigable nanorobotic carriers for drug delivery into the brain
暂无分享,去创建一个
Sylvain Martel | Seyed Nasr Tabatabaei | Sonia Duchemin | Helene Girouard | S. Martel | H. Girouard | S. Duchemin
[1] E. Turner,et al. Augmentation of endothelial cell monolayer permeability by hyperthermia but not tumor necrosis factor: evidence for disruption of vascular integrity via VE-cadherin down-regulation. , 2003, International journal of oncology.
[2] James C. Lin,et al. ENHANCEMENT OF ANTICANCER DRUG DELIVERY TO THE BRAIN BY MICROWAVE INDUCED HYPERTHERMIA , 1998 .
[3] E. Hansson,et al. Astrocyte–endothelial interactions at the blood–brain barrier , 2006, Nature Reviews Neuroscience.
[4] J. C. Lin,et al. Microwave hyperthermia-induced blood-brain barrier alterations. , 1982, Radiation research.
[5] G. Lapin,et al. Microvessel organization and structure in experimental brain tumors: microvessel populations with distinctive structural and functional properties. , 1999, Microvascular research.
[6] W. Pardridge,et al. Drug and gene targeting to the brain via blood–brain barrier receptor-mediated transport systems , 2005 .
[7] Q. Pankhurst,et al. Applications of magnetic nanoparticles in biomedicine , 2003 .
[8] Jaejun Yu. Introduction to Magnetism and Magnetic Materials , 2005 .
[9] C. Dahlgren,et al. A simple fluorescence technique to stain the plasma membrane of human neutrophils , 2004, Histochemistry.
[10] Sylvain Martel,et al. MRI-based Medical Nanorobotic Platform for the Control of Magnetic Nanoparticles and Flagellated Bacteria for Target Interventions in Human Capillaries , 2009, Int. J. Robotics Res..
[11] M. Alexander,et al. Principles of Neural Science , 1981 .
[12] S. Martel,et al. Magnetic nanoparticles encapsulated into biodegradable microparticles steered with an upgraded magnetic resonance imaging system for tumor chemoembolization. , 2009, Biomaterials.
[13] Sylvain Martel,et al. Shrinkable Hydrogel-Based Magnetic Microrobots for Interventions in the Vascular Network , 2011, Adv. Robotics.
[14] S M Moghimi,et al. Long-circulating and target-specific nanoparticles: theory to practice. , 2001, Pharmacological reviews.
[15] Yoo-Hun Suh,et al. Nanotechnology, nanotoxicology, and neuroscience , 2009, Progress in Neurobiology.
[16] E. Kiyatkin,et al. Permeability of the blood–brain barrier depends on brain temperature , 2009, Neuroscience.
[17] J. Bacri,et al. Magnetically induced hyperthermia: size-dependent heating power of γ-Fe2O3 nanoparticles , 2008, Journal of physics. Condensed matter : an Institute of Physics journal.
[18] S. Martel,et al. Co-encapsulation of magnetic nanoparticles and doxorubicin into biodegradable microcarriers for deep tissue targeting by vascular MRI navigation. , 2011, Biomaterials.
[19] M. Salcman,et al. Blood-brain barrier alteration after microwave-induced hyperthermia is purely a thermal effect: I. Temperature and power measurements. , 1991, Surgical neurology.
[20] B. Veyret,et al. Local exposure of the rat cortex to radiofrequency electromagnetic fields increases local cerebral blood flow along with temperature. , 2011, Journal of applied physiology.
[21] Tabatabaei Shafie,et al. Evaluation of Hyperthermia Using Magnetic Nanoparticles and Alternating Magnetic Field , 2010 .
[22] C. Alexiou,et al. Locoregional cancer treatment with magnetic drug targeting. , 2000, Cancer research.
[23] S. Dutz,et al. Magnetic particle hyperthermia—biophysical limitations of a visionary tumour therapy , 2007 .
[24] A. Seelig,et al. Blood-Brain Barrier Permeation: Molecular Parameters Governing Passive Diffusion , 1998, The Journal of Membrane Biology.
[25] W. Hymer,et al. Brief heat shock affects the permeability and thermotolerance of an in vitro blood-brain barrier model of porcine brain microvascular endothelial cells. , 2006, Microvascular research.
[26] P. Wust,et al. Hyperthermia in combined treatment of cancer. , 2002, The Lancet Oncology.
[27] W. Pardridge. Blood-brain barrier drug targeting: the future of brain drug development. , 2003, Molecular interventions.
[28] O. Pillai,et al. Polymers in drug delivery. , 2001, Current opinion in chemical biology.
[29] C. Johanson,et al. Whole-body hyperthermia in the rat disrupts the blood-cerebrospinal fluid barrier and induces brain edema. , 2006, Acta neurochirurgica. Supplement.
[30] Etienne Duguet,et al. Cell Targeting and Magnetically Induced Hyperthermia , 2009 .
[31] Jinwoo Cheon,et al. Exchange-coupled magnetic nanoparticles for efficient heat induction. , 2011, Nature nanotechnology.
[32] Jean-Pierre Benoit,et al. Active targeting of brain tumors using nanocarriers. , 2007, Biomaterials.