Bio-inspired nano tools for neuroscience
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James W. Fawcett | Utpal Bora | Suradip Das | Alejandro Carnicer-Lombarte | J. Fawcett | U. Bora | Alejandro Carnicer-Lombarte | Suradip Das | Utpal Bora
[1] Zhigang He,et al. EGFR Activation Mediates Inhibition of Axon Regeneration by Myelin and Chondroitin Sulfate Proteoglycans , 2005, Science.
[2] E. Neuwelt,et al. An exploratory study of ferumoxtran-10 nanoparticles as a blood-brain barrier imaging agent targeting phagocytic cells in CNS inflammatory lesions. , 2005, AJNR. American journal of neuroradiology.
[3] P. Perriat,et al. The In Vivo Radiosensitizing Effect of Gold Nanoparticles Based MRI Contrast Agents. , 2014, Small.
[4] M. R. Kumar,et al. Development and evaluation of polymer nanoparticles for oral delivery of estradiol to rat brain in a model of Alzheimer's pathology. , 2011, Journal of controlled release : official journal of the Controlled Release Society.
[5] W. P. Hall,et al. A Localized Surface Plasmon Resonance Biosensor: First Steps toward an Assay for Alzheimer's Disease , 2004 .
[6] T. Maekawa,et al. Curcumin Loaded-PLGA Nanoparticles Conjugated with Tet-1 Peptide for Potential Use in Alzheimer's Disease , 2012, PloS one.
[7] Yunlong Deng,et al. Ho3+ doped NaGdF4 nanoparticles as MRI/optical probes for brain glioma imaging. , 2014, Journal of materials chemistry. B.
[8] Hong Zhang,et al. In situ synthesis of poly (methyl methacrylate)/SiO 2 hybrid nanocomposites via Grafting Onto strategy based on UV irradiation in the presence of iron aqueous solution , 2012 .
[9] L. Huang,et al. Gadolinium-labeled liposomes containing amphiphilic Gd-DTPA derivatives of varying chain length: targeted MRI contrast enhancement agents for the liver. , 1991, Magnetic resonance imaging.
[10] Donghoon Lee,et al. In vivo MRI detection of gliomas by chlorotoxin-conjugated superparamagnetic nanoprobes. , 2008, Small.
[11] G. Zhai,et al. Enhancement of transport of curcumin to brain in mice by poly(n-butylcyanoacrylate) nanoparticle , 2010 .
[12] Chen Jiang,et al. Angiopep-Conjugated Nanoparticles for Targeted Long-Term Gene Therapy of Parkinson’s Disease , 2013, Pharmaceutical Research.
[13] J. Berman,et al. Monocyte maturation, HIV susceptibility, and transmigration across the blood brain barrier are critical in HIV neuropathogenesis , 2012, Journal of leukocyte biology.
[14] THE LATE PROFESSOR EDWIN GOLDMANN'S INVESTIGATIONS ON THE CENTRAL NERVOUS SYSTEM BY VITAL STAINING , 1913, British medical journal.
[15] R. Goyal,et al. Simultaneous voltammetric determination of dopamine and adenosine using a single walled carbon nanotube – Modified glassy carbon electrode , 2008 .
[16] Russell J Mumper,et al. Novel D-penicillamine carrying nanoparticles for metal chelation therapy in Alzheimer's and other CNS diseases. , 2005, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[17] H. Davies,et al. Glucose-Coated Gold Nanoparticles Transfer across Human Brain Endothelium and Enter Astrocytes In Vitro , 2013, PloS one.
[18] R Weissleder,et al. Superparamagnetic iron oxide: clinical application as a contrast agent for MR imaging of the liver. , 1988, Radiology.
[19] James I. Cohen,et al. Comparison of two superparamagnetic viral-sized iron oxide particles ferumoxides and ferumoxtran-10 with a gadolinium chelate in imaging intracranial tumors. , 2002, AJNR. American journal of neuroradiology.
[20] Barbara Luppi,et al. Albumin nanoparticles carrying cyclodextrins for nasal delivery of the anti-Alzheimer drug tacrine. , 2011, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[21] Hiroshi Yamamoto,et al. Induction of various blood‐brain barrier properties in non‐neural endothelial cells by close apposition to co‐cultured astrocytes , 1997, Glia.
[22] S E Maier,et al. Monitoring response to convection-enhanced taxol delivery in brain tumor patients using diffusion-weighted magnetic resonance imaging. , 2001, Cancer research.
[23] Davidenkova Ef,et al. Diagnostic possibilities of the contrast medium verografin in liposomes (animal experiments) , 1985 .
[24] M. Aizawa,et al. Electrically induced neurite outgrowth of PC12 cells on the electrode surface , 1998, Medical and Biological Engineering and Computing.
[25] V. Torchilin. Surface-modified liposomes in gamma- and MR-imaging , 1997 .
[26] Gengfeng Zheng,et al. Detection, Stimulation, and Inhibition of Neuronal Signals with High-Density Nanowire Transistor Arrays , 2006, Science.
[27] P F Renshaw,et al. Ferromagnetic contrast agents: A new approach , 1986, Magnetic resonance in medicine.
[28] P. Luiten,et al. Cerebral microvascular pathology in aging and Alzheimer's disease , 2001, Progress in Neurobiology.
[29] Udo Schumacher,et al. Tailor-made quantum dot and iron oxide based contrast agents for in vitro and in vivo tumor imaging. , 2012, ACS nano.
[30] Jinwoo Cheon,et al. Biocompatible heterostructured nanoparticles for multimodal biological detection. , 2006, Journal of the American Chemical Society.
[31] Ralph Weissleder,et al. A multimodal nanoparticle for preoperative magnetic resonance imaging and intraoperative optical brain tumor delineation. , 2003, Cancer research.
[32] A. Rich,et al. Extensive neurite outgrowth and active synapse formation on self-assembling peptide scaffolds. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[33] Shijie Cao,et al. Tumor cells and neovasculature dual targeting delivery for glioblastoma treatment. , 2014, Biomaterials.
[34] Shuguang Zhang,et al. Designer Self-Assembling Peptide Nanofiber Scaffolds , 2012 .
[35] Michael G. Fehlings,et al. Self-Assembling Nanofibers Inhibit Glial Scar Formation and Promote Axon Elongation after Spinal Cord Injury , 2008, The Journal of Neuroscience.
[36] Lu Wang,et al. Two-order targeted brain tumor imaging by using an optical/paramagnetic nanoprobe across the blood brain barrier. , 2012, ACS nano.
[37] A. Milani,et al. Crucial role of the protein corona for the specific targeting of nanoparticles. , 2015, Nanomedicine.
[38] C. Mirkin,et al. Nanoparticle-based detection in cerebral spinal fluid of a soluble pathogenic biomarker for Alzheimer's disease. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[39] E. Giralt,et al. Gold Nanoparticles and Microwave Irradiation Inhibit Beta-Amyloid Amyloidogenesis , 2008, Nanoscale Research Letters.
[40] T. Terasaki,et al. A pericyte‐derived angiopoietin‐1 multimeric complex induces occludin gene expression in brain capillary endothelial cells through Tie‐2 activation in vitro , 2004, Journal of neurochemistry.
[41] Linyin Feng,et al. Gene therapy using lactoferrin-modified nanoparticles in a rotenone-induced chronic Parkinson model , 2010, Journal of the Neurological Sciences.
[42] N J Abbott,et al. Electrical resistance across the blood‐brain barrier in anaesthetized rats: a developmental study. , 1990, The Journal of physiology.
[43] Mu-Yi Hua,et al. Magnetic resonance monitoring of focused ultrasound/magnetic nanoparticle targeting delivery of therapeutic agents to the brain , 2010, Proceedings of the National Academy of Sciences.
[44] I. Blasig,et al. In Search of the Astrocytic Factor(s) Modulating Blood–Brain Barrier Functions in Brain Capillary Endothelial Cells In Vitro , 2005, Cellular and Molecular Neurobiology.
[45] E. Holland,et al. Glioblastoma multiforme: the terminator. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[46] Shuguang Zhang. Fabrication of novel biomaterials through molecular self-assembly , 2003, Nature Biotechnology.
[47] Fabrizio Gelain,et al. Designer Self-Assembling Peptide Nanofiber Scaffolds for Adult Mouse Neural Stem Cell 3-Dimensional Cultures , 2006, PloS one.
[48] Marco P Monopoli,et al. Biomolecular coronas provide the biological identity of nanosized materials. , 2012, Nature nanotechnology.
[49] Huanxing Su,et al. Reknitting the injured spinal cord by self-assembling peptide nanofiber scaffold. , 2007, Nanomedicine : nanotechnology, biology, and medicine.
[50] J. D’Arrigo,et al. Lipid-coated ultrastable microbubbles as a contrast agent in neurosonography. , 1990, Investigative radiology.
[51] Massoud Motamedi,et al. Nanoscale engineering of a cellular interface with semiconductor nanoparticle films for photoelectric stimulation of neurons. , 2007, Nano letters.
[52] N. A. Lassen,et al. The blood flow of the cerebral cortex determined by radioactive krypton85 , 1961, Experientia.
[53] Jun Li,et al. Vertically aligned carbon nanofiber arrays: an advance toward electrical-neural interfaces. , 2006, Small.
[54] M. Schöning,et al. Recent advances in biologically sensitive field-effect transistors (BioFETs). , 2002, The Analyst.
[55] A. Dove. Tumor cells , 2003, The Journal of Cell Biology.
[56] M. Tokeshi,et al. Quantum Dots Conjugated with Transferrin for Brain Tumor Cell Imaging , 2013 .
[57] M Geso,et al. Gold nanoparticles: a new X-ray contrast agent. , 2007, The British journal of radiology.
[58] J. Trueta. Essential Hypertension in Pregnancy , 1949 .
[59] Osman Muhammad,et al. QUANTUM DOTS ARE PHAGOCYTIZED BY MACROPHAGES AND COLOCALIZE WITH EXPERIMENTAL GLIOMAS , 2007, Neurosurgery.
[60] E. Barbu,et al. The potential for nanoparticle-based drug delivery to the brain: overcoming the blood–brain barrier , 2009 .
[61] A. Chaudhary. Ayurvedic bhasma: nanomedicine of ancient India--its global contemporary perspective. , 2011, Journal of biomedical nanotechnology.
[62] Ravi V Bellamkonda,et al. The role of aligned polymer fiber-based constructs in the bridging of long peripheral nerve gaps. , 2008, Biomaterials.
[63] Hongjie Dai,et al. Neural stimulation with a carbon nanotube microelectrode array. , 2006, Nano letters.
[64] Y. Karamanos,et al. A large-scale electrophoresis- and chromatography-based determination of gene expression profiles in bovine brain capillary endothelial cells after the re-induction of blood-brain barrier properties , 2010, Proteome Science.
[65] Misa Arizono,et al. Imaging mGluR5 Dynamics in Astrocytes Using Quantum Dots , 2014, Current protocols in neuroscience.
[66] S. Lalwani,et al. Spinal cord injury. , 2011, Journal of neurosurgery. Spine.
[67] M. Mayberg,et al. Mechanisms of glucose transport at the blood–brain barrier: an in vitro study , 2001, Brain Research.
[68] A. Hoekstra,et al. Global Monthly Water Scarcity: Blue Water Footprints versus Blue Water Availability , 2012, PloS one.
[69] R. Ordidge,et al. Increased iron‐related MRI contrast in the substantia nigra in Parkinson's disease , 1995, Neurology.
[70] S. Krol,et al. Therapeutic benefits from nanoparticles: the potential significance of nanoscience in diseases with compromise to the blood brain barrier. , 2013, Chemical reviews.
[71] H. Kim,et al. Carbon-nanotube-interfaced glass fiber scaffold for regeneration of transected sciatic nerve. , 2015, Acta biomaterialia.
[72] G. Schneider,et al. Nano neuro knitting: peptide nanofiber scaffold for brain repair and axon regeneration with functional return of vision. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[73] J. Choi,et al. Near-infrared Quantum Dots Imaging in the Mouse Brain , 2008 .
[74] S. Ramakrishna,et al. Electrospinning of nano/micro scale poly(L-lactic acid) aligned fibers and their potential in neural tissue engineering. , 2005, Biomaterials.
[75] N. Yamamoto,et al. Induction of blood–brain barrier properties in immortalized bovine brain endothelial cells by astrocytic factors , 1999, Neuroscience Research.
[76] Chi-Hwa Wang,et al. Electrospun Micro- and Nanofibers for Sustained Delivery of Paclitaxel to Treat C6 Glioma in Vitro , 2006, Pharmaceutical Research.
[77] Mehmet Fatih Yanik,et al. Neurosurgery: Functional regeneration after laser axotomy , 2004, Nature.
[78] C. Krarup,et al. Monkey median nerve repaired by nerve graft or collagen nerve guide tube , 1995, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[79] David C. Martin,et al. In vivo studies of polypyrrole/peptide coated neural probes. , 2003, Biomaterials.
[80] R. Passariello,et al. Liposomes loaded with nonionic contrast media. Hepatosplenic computed tomographic enhancement. , 1990, Investigative radiology.
[81] N. Jaffrezic‐Renault,et al. A novel urea sensitive biosensor with extended dynamic range based on recombinant urease and ISFETs. , 2003, Biosensors & bioelectronics.
[82] Li Tang,et al. Translocation of HIV TAT peptide and analogues induced by multiplexed membrane and cytoskeletal interactions , 2011, Proceedings of the National Academy of Sciences.
[83] C. Murphy,et al. α-Synuclein's adsorption, conformation, and orientation on cationic gold nanoparticle surfaces seeds global conformation change. , 2014, The journal of physical chemistry. B.
[84] Jae Young Lee,et al. Polypyrrole-coated electrospun PLGA nanofibers for neural tissue applications. , 2009, Biomaterials.
[85] J. Hainfeld,et al. Gold nanoparticle imaging and radiotherapy of brain tumors in mice. , 2013, Nanomedicine.
[86] M. Meyyappan,et al. Vertically Aligned Carbon Nanofiber Architecture as a Multifunctional 3-D Neural Electrical Interface , 2007, IEEE Transactions on Biomedical Engineering.
[87] V. Labhasetwar,et al. TAT-conjugated nanoparticles for the CNS delivery of anti-HIV drugs. , 2008, Biomaterials.
[88] Xin Cai,et al. Quantitative analysis of the fate of gold nanocages in vitro and in vivo after uptake by U87-MG tumor cells. , 2013, Angewandte Chemie.
[89] M. Hájek,et al. HPMA-RGD hydrogels seeded with mesenchymal stem cells improve functional outcome in chronic spinal cord injury. , 2010, Stem cells and development.
[90] E. Goldmann. Neue Untersuchungen über die äussere und innere Sekretion des gesunden und kranken Organismus im Lichte der"vitalen Färbung" , 1912 .
[91] E. Lavik,et al. Nanospheres delivering the EGFR TKI AG1478 promote optic nerve regeneration: the role of size for intraocular drug delivery. , 2011, ACS nano.
[92] P. Turski,et al. Magnetic resonance imaging of rabbit brain after intracarotid injection of large multivesicular liposomes containing paramagnetic metals and DTPA , 1988, Magnetic resonance in medicine.
[93] Sing Yian Chew,et al. Nanofibrous nerve conduit‐enhanced peripheral nerve regeneration , 2014, Journal of tissue engineering and regenerative medicine.
[94] Yoo-Hun Suh,et al. Nanotechnology, nanotoxicology, and neuroscience , 2009, Progress in Neurobiology.
[95] M. Weinand,et al. A model for monocyte migration through the blood-brain barrier during HIV-1 encephalitis. , 1997, Journal of immunology.
[96] B. Geiger,et al. The molecular organization of endothelial cell to cell junctions: differential association of plakoglobin, beta-catenin, and alpha- catenin with vascular endothelial cadherin (VE-cadherin) , 1995, The Journal of cell biology.
[97] J. Heikenfeld,et al. Active-Matrix Microelectrode Arrays Integrated With Vertically Aligned Carbon Nanofibers , 2009, IEEE Electron Device Letters.
[98] Andrew S. Cassidy,et al. A million spiking-neuron integrated circuit with a scalable communication network and interface , 2014, Science.
[99] Ryuta Saito,et al. Gadolinium-loaded liposomes allow for real-time magnetic resonance imaging of convection-enhanced delivery in the primate brain , 2005, Experimental Neurology.
[100] S. M. Robinson,et al. Transport of Human Immunodeficiency Virus Type 1 Pseudoviruses across the Blood-Brain Barrier: Role of Envelope Proteins and Adsorptive Endocytosis , 2001, Journal of Virology.
[101] Gordon G Wallace,et al. Free standing carbon nanotube composite bio-electrodes. , 2007, Journal of biomedical materials research. Part B, Applied biomaterials.
[102] G. V. von Schulthess,et al. A pharmacokinetic and MRI study of unilamellar gadolinium-, manganese-, and iron-DTPA-stearate liposomes as organ-specific contrast agents. , 1990, Investigative radiology.
[103] R Weissleder,et al. High-efficiency intracellular magnetic labeling with novel superparamagnetic-Tat peptide conjugates. , 1999, Bioconjugate chemistry.
[104] Tracy L. Niedzielko,et al. Single-walled carbon nanotubes chemically functionalized with polyethylene glycol promote tissue repair in a rat model of spinal cord injury. , 2011, Journal of neurotrauma.
[105] Christine E Schmidt,et al. Neural tissue engineering: strategies for repair and regeneration. , 2003, Annual review of biomedical engineering.
[106] K. Yue,et al. Magneto-Electric Nano-Particles for Non-Invasive Brain Stimulation , 2012, PloS one.
[107] E. Neuwelt,et al. Imaging of iron oxide nanoparticles by MR and light microscopy in patients with malignant brain tumours , 2004, Neuropathology and applied neurobiology.
[108] L. Tiefenauer,et al. Antibody-magnetite nanoparticles: in vitro characterization of a potential tumor-specific contrast agent for magnetic resonance imaging. , 1993, Bioconjugate chemistry.
[109] Byung-Keun Oh,et al. Detection of tyrosine hydroxylase in dopaminergic neuron cell using gold nanoparticles-based barcode DNA. , 2013, Journal of biomedical nanotechnology.
[110] T. Davis,et al. The Blood-Brain Barrier/Neurovascular Unit in Health and Disease , 2005, Pharmacological Reviews.
[111] Martin M. F. Choi,et al. Inhibition of beta 1-40 amyloid fibrillation with N-acetyl-L-cysteine capped quantum dots. , 2010, Biomaterials.
[112] Byung-Keun Oh,et al. Detection of dopamine in dopaminergic cell using nanoparticles-based barcode DNA analysis. , 2012, Journal of nanoscience and nanotechnology.
[113] Jesse D. Marshall,et al. Optical strategies for sensing neuronal voltage using quantum dots and other semiconductor nanocrystals. , 2013, ACS nano.
[114] E. Sernagor,et al. Semiconductor Nanorod–Carbon Nanotube Biomimetic Films for Wire-Free Photostimulation of Blind Retinas , 2014, Nano letters.
[115] Lin Wei,et al. Annealing effect on photovoltaic performance of CdSe quantum-dots-sensitized TiO 2 nanorod solar cells , 2012 .
[116] M. Berger,et al. Extensive Distribution of Liposomes in Rodent Brains and Brain Tumors Following Convection-Enhanced Delivery , 2004, Journal of Neuro-Oncology.
[117] F. Figueiró,et al. Resveratrol-loaded lipid-core nanocapsules treatment reduces in vitro and in vivo glioma growth. , 2013, Journal of biomedical nanotechnology.
[118] Zahi A Fayad,et al. Modified natural nanoparticles as contrast agents for medical imaging. , 2010, Advanced drug delivery reviews.
[119] Elizabeth C. Theil. Ferritin: structure, gene regulation, and cellular function in animals, plants, and microorganisms. , 1987, Annual review of biochemistry.
[120] Fabrizio Gelain,et al. Electrospun micro- and nanofiber tubes for functional nervous regeneration in sciatic nerve transections , 2008, BMC biotechnology.
[121] B. Oh,et al. Signal enhancement of surface plasmon resonance based immunosensor using gold nanoparticle-antibody complex for beta-amyloid (1-40) detection. , 2009, Journal of nanoscience and nanotechnology.
[122] D. Pal,et al. Bhasma : The ancient Indian nanomedicine , 2014, Journal of advanced pharmaceutical technology & research.
[123] T. Ikezu,et al. Real-Time Imaging and Quantification of Amyloid-β Peptide Aggregates by Novel Quantum-Dot Nanoprobes , 2009, PloS one.
[124] Elisabetta Dejana,et al. Endothelial cell-to-cell junctions: molecular organization and role in vascular homeostasis. , 2004, Physiological reviews.
[125] S. Meiners,et al. Engineering electrospun nanofibrillar surfaces for spinal cord repair: A discussion , 2007 .
[126] Anne Koenig,et al. Detection of brain tumors using fluorescence diffuse optical tomography and nanoparticles as contrast agents , 2012, Journal of biomedical optics.
[127] R. Mohan,et al. Nanoparticles in the treatment and diagnosis of neurological disorders: untamed dragon with fire power to heal. , 2012, Nanomedicine : nanotechnology, biology, and medicine.
[128] Hongjun Song,et al. Adult neurogenesis in the mammalian central nervous system. , 2005, Annual review of neuroscience.
[129] M. Berger,et al. Distribution of Liposomes into Brain and Rat Brain Tumor Models by Convection-Enhanced Delivery Monitored with Magnetic Resonance Imaging , 2004, Cancer Research.
[130] K. Akiyoshi,et al. Inhibition of the formation of amyloid β‐protein fibrils using biocompatible nanogels as artificial chaperones , 2006, FEBS letters.
[131] L. Barrett,et al. Myelin‐, reactive glia‐, and scar‐derived CNS axon growth inhibitors: Expression, receptor signaling, and correlation with axon regeneration , 2004, Glia.
[132] Jiashu Sun,et al. A Highly Sensitive Gold‐Nanoparticle‐Based Assay for Acetylcholinesterase in Cerebrospinal Fluid of Transgenic Mice with Alzheimer's Disease , 2012, Advanced healthcare materials.
[133] Luke P. Lee,et al. Rapid detection of Aβ aggregation and inhibition by dual functions of gold nanoplasmic particles: catalytic activator and optical reporter. , 2013, ACS nano.
[134] Yu Liu,et al. Recent advances in brain tumor-targeted nano-drug delivery systems , 2012, Expert opinion on drug delivery.
[135] Wei Wang,et al. Enhanced nerve regeneration through a bilayered chitosan tube: the effect of introduction of glycine spacer into the CYIGSR sequence. , 2008, Journal of biomedical materials research. Part A.
[136] Robert C. Triulzi,et al. Photothermal ablation of amyloid aggregates by gold nanoparticles. , 2008, Colloids and surfaces. B, Biointerfaces.
[137] S. Aoki,et al. Magnetic resonance , 2012, International Journal of Computer Assisted Radiology and Surgery.
[138] Jun Li,et al. High efficient electrical stimulation of hippocampal slices with vertically aligned carbon nanofiber microbrush array , 2009, Biomedical microdevices.
[139] Catherine J Murphy,et al. Study of wild-type α-synuclein binding and orientation on gold nanoparticles. , 2013, Langmuir : the ACS journal of surfaces and colloids.
[140] Robert Langer,et al. Functional recovery following traumatic spinal cord injury mediated by a unique polymer scaffold seeded with neural stem cells , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[141] J. Hainfeld,et al. The use of gold nanoparticles to enhance radiotherapy in mice. , 2004, Physics in medicine and biology.
[142] Tae Hoon Lee,et al. ZnO nanowire arrays on 3D hierachical graphene foam: biomarker detection of Parkinson's disease. , 2014, ACS nano.
[143] Justin C. Williams,et al. Neurite guidance and three-dimensional confinement via compliant semiconductor scaffolds. , 2014, ACS nano.
[144] Göran Lundborg,et al. Spatial‐Temporal progress of peripheral nerve regeneration within a silicone chamber: Parameters for a bioassay , 1983, The Journal of comparative neurology.
[145] H. Gendelman,et al. A macrophage-nanozyme delivery system for Parkinson's disease. , 2007, Bioconjugate chemistry.
[146] E. Hansson,et al. Astrocyte–endothelial interactions at the blood–brain barrier , 2006, Nature Reviews Neuroscience.
[147] A. A. Levin,et al. Materials: Carbon nanotubes in an ancient Damascus sabre , 2006, Nature.
[148] Lei Xie,et al. Carbon-nanofibers-based micro-/nanodevices for neural-electrical and neural-chemical interfaces , 2012 .
[149] Seong-Gi Kim,et al. Cerebral blood volume MRI with intravascular superparamagnetic iron oxide nanoparticles , 2013, NMR in biomedicine.
[150] Taeghwan Hyeon,et al. Inorganic Nanoparticles for MRI Contrast Agents , 2009 .
[151] J. D’Arrigo,et al. Lipid‐Coated Uniform Microbubbles for Earlier Sonographic Detection of Brain Tumors , 1991, Journal of neuroimaging : official journal of the American Society of Neuroimaging.
[152] Zhenxin Wang,et al. Gold nanoparticle based dot-blot immunoassay for sensitively detecting Alzheimer's disease related β-amyloid peptide. , 2012, Chemical communications.
[153] Luke P. Lee,et al. Rapid Detection of Protein Aggregation and Inhibition by Dual Functions of Gold Nanoplasmonic Particles: Catalytic Activator and Optical Reporter , 2013 .
[154] Donghoon Lee,et al. Optical and MRI multifunctional nanoprobe for targeting gliomas. , 2005, Nano letters.
[155] Naked-eye detection of amyloid aggregates using gold nanoparticles modified with amyloid beta antibody. , 2012, Analytical sciences : the international journal of the Japan Society for Analytical Chemistry.
[156] Xiaoling Fang,et al. Anti-glioblastoma efficacy and safety of paclitaxel-loading Angiopep-conjugated dual targeting PEG-PCL nanoparticles. , 2012, Biomaterials.
[157] Y. Mardor,et al. Antibody-conjugated, dual-modal, near-infrared fluorescent iron oxide nanoparticles for antiamyloidgenic activity and specific detection of amyloid-β fibrils , 2013, International journal of nanomedicine.
[158] Michelle K. Leach,et al. A culture system to study oligodendrocyte myelination-processes using engineered nanofibers , 2012, Nature Methods.
[159] Xinguo Jiang,et al. Quantum dots bearing lectin-functionalized nanoparticles as a platform for in vivo brain imaging. , 2008, Bioconjugate chemistry.
[160] J. D’Arrigo,et al. Quantitative assessment of tumor enhancement by ultrastable lipid-coated microbubbles as a sonographic contrast agent. , 1992, Investigative radiology.
[161] Paresh Chandra Ray,et al. Ultrasensitive and highly selective detection of Alzheimer's disease biomarker using two-photon Rayleigh scattering properties of gold nanoparticle. , 2009, ACS nano.
[162] B. Zhang,et al. LDLR-mediated peptide-22-conjugated nanoparticles for dual-targeting therapy of brain glioma. , 2013, Biomaterials.
[163] Adela Ben-Yakar,et al. Femtosecond laser nanoaxotomy lab-on-a-chip for in vivo nerve regeneration studies , 2008, Nature Methods.
[164] G. Martino,et al. The therapeutic potential of neural stem cells , 2006, Nature Reviews Neuroscience.
[165] Kam W Leong,et al. Aligned Protein–Polymer Composite Fibers Enhance Nerve Regeneration: A Potential Tissue‐Engineering Platform , 2007, Advanced functional materials.
[166] Lars Montelius,et al. Gallium phosphide nanowires as a substrate for cultured neurons. , 2007, Nano letters.
[167] Jiefu Jin,et al. Upconversion Nanoparticles Conjugated with Gd3+‐DOTA and RGD for Targeted Dual‐Modality Imaging of Brain Tumor Xenografts , 2013, Advanced healthcare materials.
[168] V. Pillay,et al. Design, biometric simulation and optimization of a nano-enabled scaffold device for enhanced delivery of dopamine to the brain. , 2009, International journal of pharmaceutics.
[169] William D Rooney,et al. Superparamagnetic Iron Oxide Nanoparticles: Diagnostic Magnetic Resonance Imaging and Potential Therapeutic Applications in Neurooncology and Central Nervous System Inflammatory Pathologies, a Review , 2010, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[170] Yun-Ru Chen,et al. Negatively charged gold nanoparticles inhibit Alzheimer's amyloid-β fibrillization, induce fibril dissociation, and mitigate neurotoxicity. , 2012, Small.
[171] Christian Bergemann,et al. Iron oxide nanoparticles as a drug delivery vehicle for MRI monitored magnetic targeting of brain tumors. , 2008, Biomaterials.
[172] Xinguo Jiang,et al. Lactoferrin conjugated PEG-PLGA nanoparticles for brain delivery: preparation, characterization and efficacy in Parkinson's disease. , 2011, International journal of pharmaceutics.
[173] S. Morgello,et al. The human blood‐brain barrier glucose transporter (GLUT1) is a glucose transporter of gray matter astrocytes , 1995, Glia.
[174] Fang Liu,et al. Conjugation of Functionalized SPIONs with Transferrin for Targeting and Imaging Brain Glial Tumors in Rat Model , 2012, PloS one.
[175] Anne L. van de Ven,et al. Synthetic nanoparticles functionalized with biomimetic leukocyte membranes possess cell-like functions. , 2013, Nature nanotechnology.
[176] M. Stampanoni,et al. Single-cell resolution in high-resolution synchrotron X-ray CT imaging with gold nanoparticles. , 2014, Journal of synchrotron radiation.
[177] A. Verkman,et al. Aquaporin water channels and endothelial cell function * , 2002, Journal of anatomy.
[178] S. Toms,et al. In vivo optical imaging using quantum dots for the management of brain tumors , 2006, Expert review of molecular diagnostics.
[179] Qizhi Zhang,et al. Dual-functional nanoparticles targeting amyloid plaques in the brains of Alzheimer's disease mice. , 2014, Biomaterials.
[180] Luigia Sabbatini,et al. Dopamine-loaded chitosan nanoparticles: formulation and analytical characterization , 2011, Analytical and bioanalytical chemistry.
[181] P F Morrison,et al. Convection-enhanced delivery of macromolecules in the brain. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[182] Jesse V. Jokerst,et al. A Brain Tumor Molecular Imaging Strategy Using A New Triple-Modality MRI-Photoacoustic-Raman Nanoparticle , 2011, Nature Medicine.
[183] U. Bora,et al. In vivo studies of silk based gold nano-composite conduits for functional peripheral nerve regeneration. , 2015, Biomaterials.
[184] P. Vincent,et al. VE-cadherin: adhesion at arm's length. , 2004, American journal of physiology. Cell physiology.
[185] Quanyin Hu,et al. Co-administration of dual-targeting nanoparticles with penetration enhancement peptide for antiglioblastoma therapy. , 2014, Molecular pharmaceutics.
[186] F. Cupaioli,et al. Engineered nanoparticles. How brain friendly is this new guest? , 2014, Progress in Neurobiology.
[187] V. Torchilin. Liposomes as delivery agents for medical imaging. , 1996, Molecular medicine today.
[188] E. Barbu,et al. The potential for nanoparticle-based drug delivery to the brain: overcoming the blood-brain barrier. , 2009, Expert opinion on drug delivery.
[189] Xin-guo Jiang,et al. Aptamer-functionalized PEG-PLGA nanoparticles for enhanced anti-glioma drug delivery. , 2011, Biomaterials.
[190] M. Vincent,et al. Adverse events associated with anti-EGFR therapies for the treatment of metastatic colorectal cancer , 2010, Current oncology.
[191] M. Ericson,et al. Vertically aligned carbon nanofiber arrays record electrophysiological signals from hippocampal slices. , 2007, Nano letters.
[192] Forrest M Kievit,et al. Chlorotoxin labeled magnetic nanovectors for targeted gene delivery to glioma. , 2010, ACS nano.
[193] Pierre Temple-Boyer,et al. Development of a creatinine-sensitive sensor for medical analysis , 2004 .
[194] R Weissleder,et al. Improved delineation of human brain tumors on MR images using a long‐circulating, superparamagnetic iron oxide agent , 1999, Journal of magnetic resonance imaging : JMRI.