Magnetic Organization of Neural Networks via Micro‐Patterned Devices
暂无分享,去创建一个
Orit Shefi | Amos Sharoni | Michal Marcus | S. Margel | O. Shefi | M. Marcus | Ganit Indech | Naor Vardi | I. Levy | Alexandra Smith | A. Sharoni | Alexandra Smith | Shlomo Margel | Itay Levy | Ganit Indech | Naor Vardi
[1] E. Marani,et al. Neural networks on chemically patterned electrode arrays: towards a cultured probe. , 2007, Acta neurochirurgica. Supplement.
[2] Q. Pankhurst,et al. Applications of magnetic nanoparticles in biomedicine , 2003 .
[3] U. Häfeli,et al. Focused Magnetic Stem Cell Targeting to the Retina Using Superparamagnetic Iron Oxide Nanoparticles , 2012, Cell transplantation.
[4] Piotr Walczak,et al. Tracking stem cells using magnetic nanoparticles. , 2011, Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology.
[5] J. Brocard,et al. Nanoscale surface topography reshapes neuronal growth in culture. , 2014, Langmuir : the ACS journal of surfaces and colloids.
[6] K. Krishnan. Biomedical Nanomagnetics: A Spin Through Possibilities in Imaging, Diagnostics, and Therapy , 2010, IEEE Transactions on Magnetics.
[7] R. Gilbert,et al. Magnetic NGF-releasing PLLA/iron oxide nanoparticles direct extending neurites and preferentially guide neurites along aligned electrospun microfibers. , 2015, ACS chemical neuroscience.
[8] A Curtis,et al. Topographical control of cells. , 1997, Biomaterials.
[9] J. Bulte,et al. Tracking immune cells in vivo using magnetic resonance imaging , 2013, Nature Reviews Immunology.
[10] Rinat Meir,et al. Cell tracking using gold nanoparticles and computed tomography imaging. , 2018, Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology.
[11] Orit Shefi,et al. Neuronal growth on L- and D-cysteine self-assembled monolayers reveals neuronal chiral sensitivity. , 2014, ACS chemical neuroscience.
[12] Tal Dvir,et al. Nanotechnological strategies for engineering complex tissues. , 2020, Nature nanotechnology.
[13] Christine E Schmidt,et al. Neural tissue engineering: strategies for repair and regeneration. , 2003, Annual review of biomedical engineering.
[14] Orit Shefi,et al. Topographic cues of nano‐scale height direct neuronal growth pattern , 2012, Biotechnology and bioengineering.
[15] B. Fleischmann,et al. Local Gene Targeting and Cell Positioning Using Magnetic Nanoparticles and Magnetic Tips: Comparison of Mathematical Simulations with Experiments , 2011, Pharmaceutical Research.
[16] D. Odde,et al. Tensile force-dependent neurite elicitation via anti-beta1 integrin antibody-coated magnetic beads. , 2003, Biophysical journal.
[17] S. Prijic,et al. Magnetic nanoparticles as targeted delivery systems in oncology , 2011, Radiology and oncology.
[18] Philippe Menasché,et al. A 3D magnetic tissue stretcher for remote mechanical control of embryonic stem cell differentiation , 2017, Nature Communications.
[19] Ravi V Bellamkonda,et al. The role of aligned polymer fiber-based constructs in the bridging of long peripheral nerve gaps. , 2008, Biomaterials.
[20] A. Cuschieri,et al. The orientation of the neuronal growth process can be directed via magnetic nanoparticles under an applied magnetic field. , 2014, Nanomedicine : nanotechnology, biology, and medicine.
[21] S. Britland,et al. Contact guidance of CNS neurites on grooved quartz: influence of groove dimensions, neuronal age and cell type. , 1997, Journal of cell science.
[22] Jason A Burdick,et al. Neurotrophin-induced differentiation of human embryonic stem cells on three-dimensional polymeric scaffolds. , 2005, Tissue engineering.
[23] Hiroyuki Honda,et al. Novel methodology for fabrication of tissue-engineered tubular constructs using magnetite nanoparticles and magnetic force. , 2005, Tissue engineering.
[24] Orit Shefi,et al. Mechanically Oriented 3D Collagen Hydrogel for Directing Neurite Growth. , 2017, Tissue engineering. Part A.
[25] S. Piramanayagam. Perpendicular recording media for hard disk drives , 2007 .
[26] Riccardo Degl'Innocenti,et al. Directional PC12 Cell Migration Along Plastic Nanotracks , 2009, IEEE Transactions on Biomedical Engineering.
[27] Jin Suo,et al. Magnetic targeting of human mesenchymal stem cells with internalized superparamagnetic iron oxide nanoparticles. , 2013, Small.
[28] Orit Shefi,et al. Remote Magnetic Orientation of 3D Collagen Hydrogels for Directed Neuronal Regeneration. , 2016, Nano letters.
[29] Sungho Jin,et al. Magnetic nanoparticles for theragnostics. , 2009, Advanced drug delivery reviews.
[30] J. Dobson,et al. An in vitro model of mesenchymal stem cell targeting using magnetic particle labelling , 2015, Journal of tissue engineering and regenerative medicine.
[31] Sung June Kim,et al. Low-density neuronal networks cultured using patterned poly-l-lysine on microelectrode arrays , 2007, Journal of Neuroscience Methods.
[32] Lu Zhang,et al. MRI/SPECT/Fluorescent Tri‐Modal Probe for Evaluating the Homing and Therapeutic Efficacy of Transplanted Mesenchymal Stem Cells in a Rat Ischemic Stroke Model , 2015, Advanced functional materials.
[33] Angela Tooker,et al. Caged neuron MEA: A system for long-term investigation of cultured neural network connectivity , 2008, Journal of Neuroscience Methods.
[34] Bernhard Gleich,et al. Targeted delivery of magnetic aerosol droplets to the lung , 2007, Nature Nanotechnology.
[35] A. E. El Haj,et al. Autonomous magnetic labelling of functional mesenchymal stem cells for improved traceability and spatial control in cell therapy applications , 2016, Journal of tissue engineering and regenerative medicine.
[36] Jae Young Lee,et al. Hippocampal neurons respond uniquely to topographies of various sizes and shapes , 2010, Biofabrication.
[37] Anthony N Price,et al. Targeted magnetic delivery and tracking of cells using a magnetic resonance imaging system. , 2010, Biomaterials.
[38] W. Saltzman,et al. The influence of microchannels on neurite growth and architecture. , 2005, Biomaterials.
[39] Chong Xie,et al. Noninvasive neuron pinning with nanopillar arrays. , 2010, Nano letters.
[40] Jefferson W. Chen,et al. Interfacing with the nervous system: a review of current bioelectric technologies , 2019, Neurosurgical Review.
[41] S. Margel,et al. Magnetic micro-device for manipulating PC12 cell migration and organization. , 2015, Lab on a chip.
[42] Li Yao,et al. Effect of functionalized micropatterned PLGA on guided neurite growth. , 2009, Acta biomaterialia.
[43] Tal Dvir,et al. Gold Nanoparticle-Decorated Scaffolds Promote Neuronal Differentiation and Maturation. , 2016, Nano letters.
[44] Zhuang Liu,et al. PEG-functionalized iron oxide nanoclusters loaded with chlorin e6 for targeted, NIR light induced, photodynamic therapy. , 2013, Biomaterials.
[45] J. Y. Lim,et al. Cell sensing and response to micro- and nanostructured surfaces produced by chemical and topographic patterning. , 2007, Tissue engineering.
[46] Smadar Cohen,et al. Magnetic nanoparticle-based approaches to locally target therapy and enhance tissue regeneration in vivo. , 2012, Nanomedicine.
[47] Wolfgang Knoll,et al. Triangular neuronal networks on microelectrode arrays: an approach to improve the properties of low-density networks for extracellular recording , 2009, Biomedical microdevices.
[48] K. Chiam,et al. Extending neurites sense the depth of the underlying topography during neuronal differentiation and contact guidance. , 2014, Biomaterials.
[49] A. Sharoni,et al. Extracting magnetic anisotropy energies in Co/Pd multilayers via refinement analysis of the full magnetoresistance curves , 2014 .
[50] J. Katine,et al. Current-induced magnetization reversal in nanopillars with perpendicular anisotropy , 2006 .
[51] Arne V. Blackman,et al. Neuronal morphometry directly from bitmap images , 2014, Nature Methods.
[52] O. Shefi,et al. Interactions of neurons with topographic nano cues affect branching morphology mimicking neuron–neuron interactions , 2012, Journal of Molecular Histology.
[53] Uwe Himmelreich,et al. Assessing cell-nanoparticle interactions by high content imaging of biocompatible iron oxide nanoparticles as potential contrast agents for magnetic resonance imaging , 2017, Scientific Reports.
[54] D. Offen,et al. Implantation of 3D Constructs Embedded with Oral Mucosa-Derived Cells Induces Functional Recovery in Rats with Complete Spinal Cord Transection , 2017, Front. Neurosci..
[55] P. Polak,et al. Nanometric agents in the service of neuroscience: Manipulation of neuronal growth and activity using nanoparticles. , 2015, Nanomedicine : nanotechnology, biology, and medicine.
[56] Nic D. Leipzig,et al. Differentiation of neural stem cells in three-dimensional growth factor-immobilized chitosan hydrogel scaffolds. , 2011, Biomaterials.
[57] E. Ruoslahti,et al. Targeted nanoparticle enhanced proapoptotic peptide as potential therapy for glioblastoma , 2011, Proceedings of the National Academy of Sciences.
[58] M. Olsen,et al. Novel Applications of Magnetic Cell Sorting to Analyze Cell-Type Specific Gene and Protein Expression in the Central Nervous System , 2016, PloS one.
[59] M. Spira,et al. Multi-electrode array technologies for neuroscience and cardiology. , 2013, Nature nanotechnology.
[60] Menachem Motiei,et al. Magnetic Targeting of Growth Factors Using Iron Oxide Nanoparticles , 2018, Nanomaterials.
[61] A. Khademhosseini,et al. Microscale technologies for tissue engineering and biology. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[62] J. Coey,et al. Magnetism and Magnetic Materials , 2001 .
[63] Peter Wust,et al. Thermotherapy of prostate cancer using magnetic nanoparticles: feasibility, imaging, and three-dimensional temperature distribution. , 2007, European urology.
[64] Derek J. Hansford,et al. Controlled neuronal cell patterning and guided neurite growth on micropatterned nanofiber platforms , 2015 .