A Review of Organic and Inorganic Biomaterials for Neural Interfaces
暂无分享,去创建一个
M. Abidian | Pouria Fattahi | Guang Yang | Gloria B. Kim | Pouria Fattahi | Guang Yang | Gloria Kim | Mohammad Reza Abidian
[1] V. Mountcastle. Modality and topographic properties of single neurons of cat's somatic sensory cortex. , 1957, Journal of neurophysiology.
[2] Zhuang Liu,et al. Nano-graphene oxide for cellular imaging and drug delivery , 2008, Nano research.
[3] S S Stensaas,et al. The reaction of the cerebral cortex to chronically implanted plastic needles. , 1976, Acta neuropathologica.
[4] Jessica O. Winter,et al. Adhesion Molecule-Modified Biomaterials for Neural Tissue Engineering , 2009, Frontiers in Neuroengineering.
[5] N. Peres,et al. Fine Structure Constant Defines Visual Transparency of Graphene , 2008, Science.
[6] Igor A. Lavrov,et al. Flexible parylene-based multielectrode array technology for high-density neural stimulation and recording , 2008 .
[7] H. Schwarz,et al. Cytotoxicity of single-wall carbon nanotubes on human fibroblasts. , 2006, Toxicology in vitro : an international journal published in association with BIBRA.
[8] Patrick A Tresco,et al. The brain tissue response to implanted silicon microelectrode arrays is increased when the device is tethered to the skull. , 2007, Journal of biomedical materials research. Part A.
[9] D. Edell,et al. Factors influencing the biocompatibility of insertable silicon microshafts in cerebral cortex , 1992, IEEE Transactions on Biomedical Engineering.
[10] Luciano Fadiga,et al. Superior electrochemical performance of carbon nanotubes directly grown on sharp microelectrodes. , 2011, ACS nano.
[11] K. Wise,et al. Silicon ribbon cables for chronically implantable microelectrode arrays , 1994, IEEE Transactions on Biomedical Engineering.
[12] M. Mahmoudi,et al. Graphene: promises, facts, opportunities, and challenges in nanomedicine. , 2013, Chemical reviews.
[13] Limin Yang,et al. Electrochemical behavior of graphene doped carbon paste electrode and its application for sensitive determination of ascorbic acid , 2011 .
[14] J. Vörös,et al. Electrochemical Biosensors - Sensor Principles and Architectures , 2008 .
[15] Christine E. Schmidt,et al. Conducting polymers in biomedical engineering , 2007 .
[16] Daryl R Kipke,et al. Microscale Electrode Implantation during Nerve Repair: Effects on Nerve Morphology, Electromyography, and Recovery of Muscle Contractile Function , 2011, Plastic and reconstructive surgery.
[17] Hirokazu Takahashi,et al. Intravascular Neural Interface with Nanowire Electrode. , 2009, Electronics and communications in Japan = Denki Gakkai ronbunshi.
[18] Xiuhua Zhang,et al. A novel nitromethane biosensor based on biocompatible conductive redox graphene-chitosan/hemoglobin/graphene/room temperature ionic liquid matrix. , 2010, Biosensors & bioelectronics.
[19] Jeffrey N. Anker,et al. Biosensing with plasmonic nanosensors. , 2008, Nature materials.
[20] O. Prohaska,et al. Thin-Film Multiple Electrode Probes: Possibilities and Limitations , 1986, IEEE Transactions on Biomedical Engineering.
[21] K. Wise,et al. A high-yield IC-compatible multichannel recording array , 1985, IEEE Transactions on Electron Devices.
[22] Masanori Ozaki,et al. Donor and acceptor states in lightly doped polyacetylene, (CH) x , 1979 .
[23] J. A. Wilson,et al. Two-dimensional movement control using electrocorticographic signals in humans , 2008, Journal of neural engineering.
[24] Eran Stark,et al. Motor cortical activity related to movement kinematics exhibits local spatial organization , 2009, Cortex.
[25] Edwin Jager,et al. Conjugated-Polymer Micro- and Milliactuators for Biological Applications , 2002 .
[26] J. Benoit,et al. Biocompatibility of implantable synthetic polymeric drug carriers: focus on brain biocompatibility. , 2003, Biomaterials.
[27] X Liu,et al. Stability of the interface between neural tissue and chronically implanted intracortical microelectrodes. , 1999, IEEE transactions on rehabilitation engineering : a publication of the IEEE Engineering in Medicine and Biology Society.
[28] T. Xia,et al. Toxic Potential of Materials at the Nanolevel , 2006, Science.
[29] R V Bellamkonda,et al. Polylysine-functionalised thermoresponsive chitosan hydrogel for neural tissue engineering. , 2007, Biomaterials.
[30] Christine E Schmidt,et al. Nerve growth factor-immobilized polypyrrole: bioactive electrically conducting polymer for enhanced neurite extension. , 2007, Journal of biomedical materials research. Part A.
[31] S. Thanos,et al. Implantable bioelectronic interfaces for lost nerve functions , 1998, Progress in Neurobiology.
[32] Paul M. George,et al. Fabrication and biocompatibility of polypyrrole implants suitable for neural prosthetics. , 2005, Biomaterials.
[33] Philip G. Whitten,et al. Monolithic Actuators from Flash‐Welded Polyaniline Nanofibers , 2008 .
[34] J. Roncali. Conjugated poly(thiophenes): synthesis, functionalization, and applications , 1992 .
[35] Gengfeng Zheng,et al. Detection, Stimulation, and Inhibition of Neuronal Signals with High-Density Nanowire Transistor Arrays , 2006, Science.
[36] K. Wise,et al. An implantable multielectrode array with on-chip signal processing , 1986 .
[37] E. Evarts. Pyramidal tract activity associated with a conditioned hand movement in the monkey. , 1966, Journal of neurophysiology.
[38] A. Benabid,et al. Deep brain stimulation of the subthalamic nucleus for the treatment of Parkinson's disease , 2009, The Lancet Neurology.
[39] D. Robinson,et al. The electrical properties of metal microelectrodes , 1968 .
[40] X. Xia,et al. Electrochemical sensor based on nitrogen doped graphene: simultaneous determination of ascorbic acid, dopamine and uric acid. , 2012, Biosensors & bioelectronics.
[41] T. Ichihashi,et al. Single-shell carbon nanotubes of 1-nm diameter , 1993, Nature.
[42] Patrick A Tresco,et al. Chronic response of adult rat brain tissue to implants anchored to the skull. , 2004, Biomaterials.
[43] Ravi V Bellamkonda,et al. Differences between the effect of anisotropic and isotropic laminin and nerve growth factor presenting scaffolds on nerve regeneration across long peripheral nerve gaps. , 2008, Biomaterials.
[44] Zhuang Liu,et al. Carbon nanotubes as intracellular transporters for proteins and DNA: an investigation of the uptake mechanism and pathway. , 2006, Angewandte Chemie.
[45] L. Bousse,et al. The role of buried OH sites in the response mechanism of inorganic-gate pH-sensitive ISFETs , 1984 .
[46] S. Dong,et al. Electrochemical sensing and biosensing platform based on chemically reduced graphene oxide. , 2009, Analytical chemistry.
[47] Justin A. Blanco,et al. Dissolvable films of silk fibroin for ultrathin conformal bio-integrated electronics. , 2010, Nature materials.
[48] S. Scott. Inconvenient Truths about neural processing in primary motor cortex , 2008, The Journal of physiology.
[49] F. Toma,et al. Multiwalled carbon-nanotube-functionalized microelectrode arrays fabricated by microcontact printing: platform for studying chemical and electrical neuronal signaling. , 2011, Small.
[50] David C. Martin,et al. Conducting polymers grown in hydrogel scaffolds coated on neural prosthetic devices. , 2004, Journal of biomedical materials research. Part A.
[51] K D Wise,et al. Microfabrication techniques for integrated sensors and microsystems. , 1991, Science.
[52] Daryl R Kipke,et al. Advanced Neurotechnologies for Chronic Neural Interfaces: New Horizons and Clinical Opportunities , 2008, The Journal of Neuroscience.
[53] Hans von Holst,et al. Stability of poly(3,4-ethylene dioxythiophene) materials intended for implants. , 2010, Journal of biomedical materials research. Part B, Applied biomaterials.
[54] Sami Alom Ruiz,et al. Nanotechnology for Cell–Substrate Interactions , 2006, Annals of Biomedical Engineering.
[55] Nathan Jackson,et al. Single neuronal recordings using surface micromachined polysilicon microelectrodes , 2005, Journal of Neuroscience Methods.
[56] I. Lundström,et al. Microrobots for micrometer-size objects in aqueous media: potential tools for single-cell manipulation. , 2000, Science.
[57] Vahid Mottaghitalab,et al. Carbon‐Nanotube‐Reinforced Polyaniline Fibers for High‐Strength Artificial Muscles , 2006 .
[58] P. Ajayan,et al. Impact of carbon nanotube exposure, dosage and aggregation on smooth muscle cells. , 2007, Toxicology letters.
[59] W. Shain,et al. Three-dimensional hydrogel cultures for modeling changes in tissue impedance around microfabricated neural probes , 2007, Journal of neural engineering.
[60] C. Yi,et al. Inhibition of proliferation and differentiation of mesenchymal stem cells by carboxylated carbon nanotubes. , 2010, ACS nano.
[61] Kensall D. Wise,et al. A Low-Capacitance Multielectrode Probe for Use in Extracellular Neurophysiology , 1975, IEEE Transactions on Biomedical Engineering.
[62] T. F. Otero,et al. Sensing characteristics of a conducting polymer/hydrogel hybrid microfiber artificial muscle , 2011 .
[63] Daniel Stein,et al. Nanotechnology meets electrophysiology. , 2013, Current opinion in biotechnology.
[64] Weileun Fang,et al. Flexible carbon nanotubes electrode for neural recording. , 2009, Biosensors & bioelectronics.
[65] Daryl R. Kipke,et al. Conducting-polymer nanotubes improve electrical properties, mechanical adhesion, neural attachment, and neurite outgrowth of neural electrodes. , 2010, Small.
[66] Huafeng Yang,et al. Direct electrochemistry of glucose oxidase and biosensing for glucose based on graphene. , 2009, Analytical chemistry.
[67] D. Szarowski,et al. Cerebral Astrocyte Response to Micromachined Silicon Implants , 1999, Experimental Neurology.
[68] G. Wallace,et al. Conducting polymers for neural interfaces: challenges in developing an effective long-term implant. , 2008, Biomaterials.
[69] Wei Liu,et al. Conductive single-walled carbon nanotube substrates modulate neuronal growth. , 2009, Nano letters.
[70] James P. Wicksted,et al. Single‐Walled Carbon Nanotube Polyelectrolyte Multilayers and Freestanding Films as a Biocompatible Platform for Neuroprosthetic Implants , 2005 .
[71] L. Sabbatini,et al. Synthesis, analytical characterization, and osteoblast adhesion properties on RGD-grafted polypyrrole coatings on titanium substrates , 2000, Journal of biomaterials science. Polymer edition.
[72] Bozhi Tian,et al. Intracellular recordings of action potentials by an extracellular nanoscale field-effect transistor , 2011, Nature nanotechnology.
[73] Yasuhiko Jimbo,et al. A system for MEA-based multisite stimulation , 2003, IEEE Transactions on Biomedical Engineering.
[74] Patrick A. Cooke,et al. Molecular Characterization of the Cytotoxic Mechanism of Multiwall Carbon Nanotubes and Nano-onions on Human Skin Fibroblast , 2005 .
[75] Lei He,et al. Electroactive SWNT/PEGDA hybrid hydrogel coating for bio-electrode interface. , 2011, Colloids and surfaces. B, Biointerfaces.
[76] R. Delille,et al. Benchtop Polymer MEMS , 2006, Journal of Microelectromechanical Systems.
[77] R. Nemanich,et al. Multi-walled carbon nanotube interactions with human epidermal keratinocytes. , 2005, Toxicology letters.
[78] Evelyne Sernagor,et al. Carbon Nanotube Electrodes for Effective Interfacing with Retinal Tissue , 2009, Front. Neuroeng..
[79] Shimon Marom,et al. Development, learning and memory in large random networks of cortical neurons: lessons beyond anatomy , 2002, Quarterly Reviews of Biophysics.
[80] R.R. Harrison,et al. A Low-Power Integrated Circuit for a Wireless 100-Electrode Neural Recording System , 2006, IEEE Journal of Solid-State Circuits.
[81] Yuyan Shao,et al. Graphene Based Electrochemical Sensors and Biosensors: A Review , 2010 .
[82] N. H. Lovell,et al. Novel neural interface for implant electrodes: improving electroactivity of polypyrrole through MWNT incorporation , 2008, Journal of materials science. Materials in medicine.
[83] L. Viry,et al. Discrimination of dopamine and ascorbic acid using carbon nanotube fiber microelectrodes. , 2010, Physical chemistry chemical physics : PCCP.
[84] Justin C. Williams,et al. Flexible polyimide-based intracortical electrode arrays with bioactive capability , 2001, IEEE Transactions on Biomedical Engineering.
[85] Miguel A. L. Nicolelis,et al. Brain–machine interfaces to restore motor function and probe neural circuits , 2003, Nature Reviews Neuroscience.
[86] G. Buzsáki. Large-scale recording of neuronal ensembles , 2004, Nature Neuroscience.
[87] Gordon G. Wallace,et al. Integration of biocomponents with synthetic structures: use of conducting polymer polyelectrolyte composites , 1996, Smart Structures.
[88] Olle Inganäs,et al. Polymer Hydrogel Microelectrodes for Neural Communication , 2002 .
[89] Charles M. Lieber,et al. Nanowire-based biosensors. , 2006, Analytical chemistry.
[90] P. Fromherz. Electrical interfacing of nerve cells and semiconductor chips. , 2002, Chemphyschem : a European journal of chemical physics and physical chemistry.
[91] Giada Cellot,et al. Carbon Nanotubes Carrying Cell‐Adhesion Peptides do not Interfere with Neuronal Functionality , 2009 .
[92] Yi Cui,et al. Nanowire platform for mapping neural circuits , 2010, Proceedings of the National Academy of Sciences.
[93] G. Stuart,et al. Action Potential Initiation and Propagation in Layer 5 Pyramidal Neurons of the Rat Prefrontal Cortex: Absence of Dopamine Modulation , 2003, The Journal of Neuroscience.
[94] A. Khademhosseini,et al. Hydrogels in Biology and Medicine: From Molecular Principles to Bionanotechnology , 2006 .
[95] H von Holst,et al. Toxicity evaluation of PEDOT/biomolecular composites intended for neural communication electrodes , 2009, Biomedical materials.
[96] Yuliang Zhao,et al. Cytotoxicity of carbon nanomaterials: single-wall nanotube, multi-wall nanotube, and fullerene. , 2005, Environmental science & technology.
[97] R Langer,et al. Stimulation of neurite outgrowth using an electrically conducting polymer. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[98] R. Kaner,et al. Honeycomb carbon: a review of graphene. , 2010, Chemical reviews.
[99] Wei He,et al. Nanoscale laminin coating modulates cortical scarring response around implanted silicon microelectrode arrays , 2006, Journal of neural engineering.
[100] Hailan Chen,et al. Selective and sensitive determination of dopamine by composites of polypyrrole and graphene modified electrodes. , 2011, The Analyst.
[101] Agnes B Kane,et al. Biological interactions of graphene-family nanomaterials: an interdisciplinary review. , 2012, Chemical research in toxicology.
[102] Fen Chen,et al. Evaluation of biocompatibility of polypyrrole in vitro and in vivo. , 2004, Journal of biomedical materials research. Part A.
[103] William R. Stauffer,et al. Surface immobilization of neural adhesion molecule L1 for improving the biocompatibility of chronic neural probes: In vitro characterization. , 2008, Acta biomaterialia.
[104] K. Wise,et al. A three-dimensional microelectrode array for chronic neural recording , 1994, IEEE Transactions on Biomedical Engineering.
[105] P. Fromherz,et al. Silicon Chip Interfaced with a Geometrically Defined Net of Snail Neurons , 2005 .
[106] Kip A Ludwig,et al. Interfacing Conducting Polymer Nanotubes with the Central Nervous System: Chronic Neural Recording using Poly(3,4‐ethylenedioxythiophene) Nanotubes , 2009, Advanced materials.
[107] Jun Li,et al. Controlled drug release from biodegradable thermoresponsive physical hydrogel nanofibers. , 2010, Journal of controlled release : official journal of the Controlled Release Society.
[108] Lars Montelius,et al. Gallium phosphide nanowires as a substrate for cultured neurons. , 2007, Nano letters.
[109] G. Malliaras,et al. Electrical Control of Protein Conformation , 2012, Advanced materials.
[110] J. Donoghue,et al. Neuronal Interactions Improve Cortical Population Coding of Movement Direction , 1999, The Journal of Neuroscience.
[111] Paul M. George,et al. Electrically Controlled Drug Delivery from Biotin‐Doped Conductive Polypyrrole , 2006 .
[112] Sanjiv S Gambhir,et al. A pilot toxicology study of single-walled carbon nanotubes in a small sample of mice. , 2008, Nature nanotechnology.
[113] R. Aitken,et al. Carbon nanotubes: a review of their properties in relation to pulmonary toxicology and workplace safety. , 2006, Toxicological sciences : an official journal of the Society of Toxicology.
[114] W. D. de Heer,et al. Carbon Nanotubes--the Route Toward Applications , 2002, Science.
[115] J. Wolpaw,et al. Patients with ALS can use sensorimotor rhythms to operate a brain-computer interface , 2005, Neurology.
[116] F. Jonas,et al. Poly(alkylenedioxythiophene)s—new, very stable conducting polymers , 1992 .
[117] J. Macdonald,et al. Technique for Steering Spinal Cord Stimulator Electrode , 2011, Neurosurgery.
[118] M. Larkum,et al. Signaling of Layer 1 and Whisker-Evoked Ca2+ and Na+ Action Potentials in Distal and Terminal Dendrites of Rat Neocortical Pyramidal Neurons In Vitro and In Vivo , 2002, The Journal of Neuroscience.
[119] S. Cogan,et al. Retinal prostheses: current challenges and future outlook , 2007, Journal of biomaterials science. Polymer edition.
[120] J. Reynolds,et al. Poly(3,4‐ethylenedioxythiophene) and Its Derivatives: Past, Present, and Future , 2000 .
[121] James M Tour,et al. Biocompatibility of native and functionalized single-walled carbon nanotubes for neuronal interface. , 2006, Journal of nanoscience and nanotechnology.
[122] Andrew B. Schwartz,et al. Brain-Controlled Interfaces: Movement Restoration with Neural Prosthetics , 2006, Neuron.
[123] G. Oberdörster,et al. Nanotoxicology: An Emerging Discipline Evolving from Studies of Ultrafine Particles , 2005, Environmental health perspectives.
[124] David C. Martin,et al. Effect of Immobilized Nerve Growth Factor on Conductive Polymers: Electrical Properties and Cellular Response , 2007 .
[125] Yi Lin,et al. Functionalized carbon nanotubes: properties and applications. , 2002, Accounts of chemical research.
[126] A. Rinzler,et al. Carbon nanotube actuators , 1999, Science.
[127] P. Manson,et al. Biocompatibility of Fixation Materials in the Brain , 1997, Plastic and reconstructive surgery.
[128] Yuliang Cao,et al. Poly(vinyl alcohol)/poly(acrylic acid) hydrogel coatings for improving electrode-neural tissue interface. , 2009, Biomaterials.
[129] Hongda Chen,et al. PEDOT/MWCNT composite film coated microelectrode arrays for neural interface improvement , 2013 .
[130] L. Paninski,et al. Information about movement direction obtained from synchronous activity of motor cortical neurons. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[131] B. Song,et al. Sustained local delivery of bioactive nerve growth factor in the central nervous system via tunable diblock copolypeptide hydrogel depots. , 2012, Biomaterials.
[132] Boris Hofmann,et al. Diamond Transistor Array for Extracellular Recording From Electrogenic Cells , 2009 .
[133] Bryan E Pfingst,et al. The use of a dual PEDOT and RGD-functionalized alginate hydrogel coating to provide sustained drug delivery and improved cochlear implant function. , 2012, Biomaterials.
[134] R. Bellamkonda,et al. Materials for neural interfaces , 2012 .
[135] Nicholas A Kotov,et al. Electrical stimulation of neural stem cells mediated by humanized carbon nanotube composite made with extracellular matrix protein. , 2009, Nano letters.
[136] Li Li Zhang,et al. Layered graphene oxide nanostructures with sandwiched conducting polymers as supercapacitor electrodes. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[137] S. Moulton,et al. Organic Bionics: A New Dimension in Neural Communications , 2012 .
[138] Dong-il Dan Cho,et al. Roughened polysilicon for low impedance microelectrodes in neural probes , 2003 .
[139] K. Wise,et al. Performance of planar multisite microprobes in recording extracellular single-unit intracortical activity , 1988, IEEE Transactions on Biomedical Engineering.
[140] Charles M. Lieber,et al. Nanomaterials for Neural Interfaces , 2009 .
[141] S. Yoshida,et al. Role of MCP‐1 and MIP‐1α in retinal neovascularization during postischemic inflammation in a mouse model of retinal neovascularization , 2003, Journal of leukocyte biology.
[142] A. Atala,et al. Carbon nanotube applications for tissue engineering. , 2007, Biomaterials.
[143] Ji Won Suk,et al. Correction: Graphene and Graphene Oxide: Synthesis, Properties, and Applications , 2010 .
[144] W. Rall. Electrophysiology of a dendritic neuron model. , 1962, Biophysical journal.
[145] Andre K. Geim,et al. The rise of graphene. , 2007, Nature materials.
[146] Nigel H Lovell,et al. Impact of co-incorporating laminin peptide dopants and neurotrophic growth factors on conducting polymer properties. , 2010, Acta biomaterialia.
[147] Nigel H Lovell,et al. Conductive hydrogels: mechanically robust hybrids for use as biomaterials. , 2012, Macromolecular bioscience.
[148] A. Graybiel,et al. The substantia nigra of the human brain. II. Patterns of loss of dopamine-containing neurons in Parkinson's disease. , 1999, Brain : a journal of neurology.
[149] Andre K. Geim,et al. Electric Field Effect in Atomically Thin Carbon Films , 2004, Science.
[150] K. Novoselov,et al. A roadmap for graphene , 2012, Nature.
[151] Daryl R. Kipke,et al. Wireless implantable microsystems: high-density electronic interfaces to the nervous system , 2004, Proceedings of the IEEE.
[152] Huafeng Yang,et al. Graphene/AuNPs/chitosan nanocomposites film for glucose biosensing. , 2010, Biosensors & bioelectronics.
[153] Ying Wang,et al. Preparation, Structure, and Electrochemical Properties of Reduced Graphene Sheet Films , 2009 .
[154] Sylvia Daunert,et al. Integrating Biosensors and Drug Delivery: A Step Closer Toward Scalable Responsive Drug‐Delivery Systems , 2009 .
[155] H. K. Charles,et al. Multisite microprobes for neural recordings , 1991, IEEE Transactions on Biomedical Engineering.
[156] Charles M Lieber,et al. Flexible electrical recording from cells using nanowire transistor arrays , 2009, Proceedings of the National Academy of Sciences.
[157] Cees Dekker,et al. Influence of electrolyte composition on liquid-gated carbon nanotube and graphene transistors. , 2010, Journal of the American Chemical Society.
[158] Yang Xu,et al. Cytotoxicity effects of graphene and single-wall carbon nanotubes in neural phaeochromocytoma-derived PC12 cells. , 2010, ACS nano.
[159] David C. Martin,et al. Fuzzy gold electrodes for lowering impedance and improving adhesion with electrodeposited conducting polymer films , 2003 .
[160] Warren M Grill,et al. Implanted neural interfaces: biochallenges and engineered solutions. , 2009, Annual review of biomedical engineering.
[161] V. Finkenstadt. Natural polysaccharides as electroactive polymers , 2005, Applied Microbiology and Biotechnology.
[162] Peng Chen,et al. Biological and chemical sensors based on graphene materials. , 2012, Chemical Society reviews.
[163] M. Berggren,et al. Control of neural stem cell adhesion and density by an electronic polymer surface switch. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[164] L. Poole-Warren,et al. Development of bioactive conducting polymers for neural interfaces , 2010, Expert review of medical devices.
[165] E. Zrenner. Will Retinal Implants Restore Vision ? , 2002 .
[166] Lauren Flynn,et al. Manufacture of poly(2-hydroxyethyl methacrylate-co-methyl methacrylate) hydrogel tubes for use as nerve guidance channels. , 2002, Biomaterials.
[167] D. Kipke,et al. Long-term neural recording characteristics of wire microelectrode arrays implanted in cerebral cortex. , 1999, Brain research. Brain research protocols.
[168] Eva Syková,et al. Diffusion barriers evoked in the rat cortex by reactive astrogliosis , 1999, Glia.
[169] Ying Wang,et al. Application of graphene-modified electrode for selective detection of dopamine , 2009 .
[170] David C. Martin,et al. Electrochemical deposition and characterization of poly(3,4-ethylenedioxythiophene) on neural microelectrode arrays , 2003 .
[171] John R. Reynolds,et al. Electrochemical polymerization of poly(hydroxymethylated-3,4-ethylenedioxythiophene) (PEDOT-MeOH) on multichannel neural probes , 2004 .
[172] J. Ying,et al. Poly(3,4-ethylenedioxythiophene) (PEDOT) nanobiointerfaces: thin, ultrasmooth, and functionalized PEDOT films with in vitro and in vivo biocompatibility. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[173] N H Lovell,et al. Performance of conducting polymer electrodes for stimulating neuroprosthetics , 2013, Journal of neural engineering.
[174] T. Stieglitz,et al. Micromachined, Polyimide-Based Devices for Flexible Neural Interfaces , 2000 .
[175] S.F. Cogan,et al. Sputtered iridium oxide films (SIROFs) for low-impedance neural stimulation and recording electrodes , 2004, The 26th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[176] P. Tresco,et al. Acute microelectrode array implantation into human neocortex: preliminary technique and histological considerations. , 2006, Neurosurgical focus.
[177] D. Kipke,et al. Neural probe design for reduced tissue encapsulation in CNS. , 2007, Biomaterials.
[178] Chwee Teck Lim,et al. Origin of enhanced stem cell growth and differentiation on graphene and graphene oxide. , 2011, ACS nano.
[179] Qin Song,et al. The promotion of neurite sprouting and outgrowth of mouse hippocampal cells in culture by graphene substrates. , 2011, Biomaterials.
[180] Hong Liang,et al. Surface modification of a neural sensor using graphene , 2013 .
[181] Dean J Krusienski,et al. Emulation of computer mouse control with a noninvasive brain–computer interface , 2008, Journal of neural engineering.
[182] Hysell V. Oviedo,et al. Variation of Input-Output Properties along the Somatodendritic Axis of Pyramidal Neurons , 2005, The Journal of Neuroscience.
[183] M. Prato,et al. Carbon nanotube substrates boost neuronal electrical signaling. , 2005, Nano letters.
[184] Cees Dekker,et al. Nanotechnology: Carbon nanotubes with DNA recognition , 2002, Nature.
[185] R. Haddon,et al. Chemically functionalized water soluble single-walled carbon nanotubes modulate neurite outgrowth. , 2005, Journal of nanoscience and nanotechnology.
[186] R. Bellamkonda,et al. Biomaterials for the central nervous system , 2008, Journal of The Royal Society Interface.
[187] John P. Donoghue,et al. Bridging the Brain to the World: A Perspective on Neural Interface Systems , 2008, Neuron.
[188] M. Kuperstein,et al. A Practical 24 Channel Microelectrode for Neural Recording in Vivo , 1981, IEEE Transactions on Biomedical Engineering.
[189] A. MacDiarmid,et al. "Synthetic Metals": A Novel Role for Organic Polymers (Nobel Lecture). , 2001, Angewandte Chemie.
[190] Justin C. Williams,et al. Chronic neural recording using silicon-substrate microelectrode arrays implanted in cerebral cortex , 2004, IEEE Transactions on Biomedical Engineering.
[191] Liping Wang,et al. Poly(3,4-ethylenedioxythiophene)/poly(styrenesulfonate)-poly(vinyl alcohol)/poly(acrylic acid) interpenetrating polymer networks for improving optrode-neural tissue interface in optogenetics. , 2012, Biomaterials.
[192] S. Iijima. Helical microtubules of graphitic carbon , 1991, Nature.
[193] Jaume Esteve,et al. Influence of the degradation on the surface states and electrical characteristics of EOS structures , 1991 .
[194] M. Dresselhaus,et al. Synthesis and characterization of single-wall-carbon-nanotube-doped emeraldine salt and base polyaniline nanocomposites , 2005 .
[195] Neville Hogan,et al. Experimenting with Theoretical Motor Neuroscience , 2010, Journal of motor behavior.
[196] F. Solzbacher,et al. Integrated wireless neural interface based on the Utah electrode array , 2009, Biomedical microdevices.
[197] Yuliang Cao,et al. Electrodeposited polypyrrole/carbon nanotubes composite films electrodes for neural interfaces. , 2010, Biomaterials.
[198] M. Endo,et al. Carbon nanotubes: biomaterial applications. , 2009, Chemical Society reviews.
[199] Xinyan Tracy Cui,et al. Electrochemically controlled release of dexamethasone from conducting polymer polypyrrole coated electrode. , 2006, Journal of controlled release : official journal of the Controlled Release Society.
[200] G. Gabriel,et al. Easily made single-walled carbon nanotube surface microelectrodes for neuronal applications. , 2009, Biosensors & bioelectronics.
[201] Yung-Chan Chen,et al. Flexible UV‐Ozone‐Modified Carbon Nanotube Electrodes for Neuronal Recording , 2010, Advanced materials.
[202] A. Lambacher,et al. Electrical imaging of neuronal activity by multi-transistor-array (MTA) recording at 7.8 μm resolution , 2004 .
[203] Priscilla Kailian Ang,et al. Solution-gated epitaxial graphene as pH sensor. , 2008, Journal of the American Chemical Society.
[204] David C. Martin,et al. Layered carbon nanotube-polyelectrolyte electrodes outperform traditional neural interface materials. , 2009, Nano letters.
[205] Karen L. Smith,et al. Biohybrid Carbon Nanotube/Agarose Fibers for Neural Tissue Engineering , 2011, Advanced functional materials.
[206] S. Stankovich,et al. Graphene-based composite materials , 2006, Nature.
[207] Jacob T. Robinson,et al. Vertical nanowire electrode arrays as a scalable platform for intracellular interfacing to neuronal circuits. , 2012, Nature nanotechnology.
[208] Paras R. Patel,et al. Ultrasmall implantable composite microelectrodes with bioactive surfaces for chronic neural interfaces. , 2012, Nature materials.
[209] J Miller,et al. Minocycline increases quality and longevity of chronic neural recordings , 2007, Journal of neural engineering.
[210] Chun Li,et al. A pH-sensitive graphene oxide composite hydrogel. , 2010, Chemical communications.
[211] W. E. Billups,et al. Functionalization density dependence of single-walled carbon nanotubes cytotoxicity in vitro. , 2006, Toxicology letters.
[212] B. A. Hollenberg,et al. A MEMS fabricated flexible electrode array for recording surface field potentials , 2006, Journal of Neuroscience Methods.
[213] Hideki Shirakawa,et al. The Discovery of Polyacetylene Film: The Dawning of an Era of Conducting Polymers (Nobel Lecture). , 2001, Angewandte Chemie.
[214] H. Markram,et al. Interfacing Neurons with Carbon Nanotubes: Electrical Signal Transfer and Synaptic Stimulation in Cultured Brain Circuits , 2007, The Journal of Neuroscience.
[215] Jerald D. Kralik,et al. Chronic, multisite, multielectrode recordings in macaque monkeys , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[216] Stephen O'Leary,et al. The effect of polypyrrole with incorporated neurotrophin-3 on the promotion of neurite outgrowth from auditory neurons. , 2007, Biomaterials.
[217] I. Hunter,et al. Neuro-vascular central nervous recording/stimulating system: Using nanotechnology probes , 2005 .
[218] Bozhi Tian,et al. Nanowire transistor arrays for mapping neural circuits in acute brain slices , 2010, Proceedings of the National Academy of Sciences.
[219] Gordon G Wallace,et al. Polypyrrole-coated electrodes for the delivery of charge and neurotrophins to cochlear neurons. , 2009, Biomaterials.
[220] J. Glass,et al. Three-dimensional arrays of graphenated carbon nanotubes , 2012 .
[221] E. Smela,et al. Microfabricating conjugated polymer actuators. , 2000, Science.
[222] Binbin Xi,et al. Enhanced control and stability of polypyrrole electromechanical actuators , 2004 .
[223] Tal Dvir,et al. Nanowired three dimensional cardiac patches , 2011, Nature nanotechnology.
[224] C. R. Martin,et al. Smart nanotubes for bioseparations and biocatalysis. , 2002, Journal of the American Chemical Society.
[225] Longhua Guo,et al. Multilayered Polypyrrole-Coated Carbon Nanotubes To Improve Functional Stability and Electrical Properties of Neural Electrodes , 2011 .
[226] Edwin W H Jager,et al. Electrochemical modulation of epithelia formation using conducting polymers. , 2009, Biomaterials.
[227] L. M. Lira,et al. Conducting polymer–hydrogel composites for electrochemical release devices: Synthesis and characterization of semi-interpenetrating polyaniline–polyacrylamide networks , 2005 .
[228] Henrik Jörntell,et al. Nanowire-Based Electrode for Acute In Vivo Neural Recordings in the Brain , 2013, PloS one.
[229] Anthony Guiseppi-Elie,et al. Electroconductive hydrogels: synthesis, characterization and biomedical applications. , 2010, Biomaterials.
[230] Andrew B. Schwartz,et al. Cortical control for prosthetic devices , 1996, Smart Structures and Materials + Nondestructive Evaluation and Health Monitoring.
[231] Luciano Fadiga,et al. Biologically compatible neural interface to safely couple nanocoated electrodes to the surface of the brain. , 2013, ACS nano.
[232] Jun Li,et al. High efficient electrical stimulation of hippocampal slices with vertically aligned carbon nanofiber microbrush array , 2009, Biomedical microdevices.
[233] J. Csicsvari,et al. Intracellular features predicted by extracellular recordings in the hippocampus in vivo. , 2000, Journal of neurophysiology.
[234] Vikramaditya G. Yadav,et al. Cell and protein compatibility of parylene-C surfaces. , 2007, Langmuir : the ACS journal of surfaces and colloids.
[235] J. Hetke,et al. Surface modification of neural recording electrodes with conducting polymer/biomolecule blends. , 2001, Journal of biomedical materials research.
[236] David F. Williams. On the mechanisms of biocompatibility. , 2008, Biomaterials.
[237] M. Shim,et al. Functionalization of Carbon Nanotubes for Biocompatibility and Biomolecular Recognition , 2002 .
[238] N. Kotov,et al. Successful differentiation of mouse neural stem cells on layer-by-layer assembled single-walled carbon nanotube composite. , 2007, Nano letters.
[239] Gordon G Wallace,et al. Promoting neurite outgrowth from spiral ganglion neuron explants using polypyrrole/BDNF-coated electrodes. , 2009, Journal of biomedical materials research. Part A.
[240] E. Marg,et al. Indwelling multiple micro-electrodes in the brain. , 1967, Electroencephalography and clinical neurophysiology.
[241] A. Lambacher,et al. High-resolution multitransistor array recording of electrical field potentials in cultured brain slices. , 2006, Journal of neurophysiology.
[242] A. Nelson,et al. Carbon nanotubes promote neuron differentiation from human embryonic stem cells. , 2009, Biochemical and biophysical research communications.
[243] Ravi V Bellamkonda,et al. Anisotropic scaffolds facilitate enhanced neurite extension in vitro. , 2006, Journal of biomedical materials research. Part A.
[244] C. Su,et al. Electrical probing of submicroliter liquid using graphene strip transistors built on a nanopipette. , 2012, Small.
[245] X. Cui,et al. Electrochemically controlled release based on nanoporous conducting polymers , 2009 .
[246] E. Smela,et al. Controlled Folding of Micrometer-Size Structures , 1995, Science.
[247] R L Schultz,et al. The ultrastructure of the sheath around chronically implanted electrodes in brain , 1976, Journal of neurocytology.
[248] E. Fetz,et al. Compact movable microwire array for long-term chronic unit recording in cerebral cortex of primates. , 2007, Journal of neurophysiology.
[249] David C. Martin,et al. Polymerization of the conducting polymer poly(3,4-ethylenedioxythiophene) (PEDOT) around living neural cells. , 2007, Biomaterials.
[250] Anran Liu,et al. Electrochemical Deposition of Polypyrrole/Sulfonated Graphene Composite Films , 2010 .
[251] J. Nam,et al. Carbon Nanotube Monolayer Patterns for Directed Growth of Mesenchymal Stem Cells , 2007 .
[252] Clayton J. Underwood,et al. Characterization of microglial attachment and cytokine release on biomaterials of differing surface chemistry. , 2008, Biomaterials.
[253] David C. Martin,et al. In vivo studies of polypyrrole/peptide coated neural probes. , 2003, Biomaterials.
[254] Magnus Berggren,et al. Organic bioelectronics in nanomedicine. , 2011, Biochimica et biophysica acta.
[255] G. Pastorin,et al. Graphene for controlled and accelerated osteogenic differentiation of human mesenchymal stem cells. , 2011, ACS nano.
[256] M. Berggren,et al. Organic electronics for precise delivery of neurotransmitters to modulate mammalian sensory function. , 2009, Nature materials.
[257] M. Berggren,et al. Electronic control of Ca2+ signalling in neuronal cells using an organic electronic ion pump. , 2007, Nature materials.
[258] K. Djupsund,et al. Flexible polyimide microelectrode array for in vivo recordings and current source density analysis. , 2007, Biosensors & bioelectronics.
[259] Gordon G Wallace,et al. Optimising the incorporation and release of a neurotrophic factor using conducting polypyrrole. , 2006, Journal of controlled release : official journal of the Controlled Release Society.
[260] Miguel A. L. Nicolelis,et al. Brain–machine interfaces: past, present and future , 2006, Trends in Neurosciences.
[261] William A. Goddard,et al. Energetics, structure, mechanical and vibrational properties of single-walled carbon nanotubes , 1998 .
[262] He Shen,et al. Biomedical Applications of Graphene , 2012, Theranostics.
[263] James M. Anderson,et al. Biological Responses to Materials , 2001 .
[264] D. Szarowski,et al. Brain responses to micro-machined silicon devices , 2003, Brain Research.
[265] Y. Dan,et al. Spike-timing-dependent synaptic plasticity depends on dendritic location , 2005, Nature.
[266] S. Khondaker,et al. Graphene based materials: Past, present and future , 2011 .
[267] Shashi K. Murthy,et al. Bridging the Divide between Neuroprosthetic Design, Tissue Engineering and Neurobiology , 2009, Front. Neuroeng..
[268] R. J. Vetter,et al. Silicon-substrate intracortical microelectrode arrays for long-term recording of neuronal spike activity in cerebral cortex , 2003, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[269] A. Ivaska,et al. Electrochemical impedance spectroscopy of oxidized poly(3,4-ethylenedioxythiophene) film electrodes in aqueous solutions , 2000 .
[270] R. Normann,et al. Chronic recording capability of the Utah Intracortical Electrode Array in cat sensory cortex , 1998, Journal of Neuroscience Methods.
[271] Nicholas G Hatsopoulos,et al. The science of neural interface systems. , 2009, Annual review of neuroscience.
[272] Catherine Villard,et al. Neuronal architectures with axo-dendritic polarity above silicon nanowires. , 2012, Small.
[273] C. Schmidt,et al. Micropatterned Polypyrrole: A Combination of Electrical and Topographical Characteristics for the Stimulation of Cells , 2007, Advanced functional materials.
[274] M. Prato,et al. Biomedical applications of functionalised carbon nanotubes. , 2005, Chemical communications.
[275] Nigel H Lovell,et al. Cell attachment functionality of bioactive conducting polymers for neural interfaces. , 2009, Biomaterials.
[276] Jianshan Ye,et al. Graphene‐Modified Carbon Fiber Microelectrode for the Detection of Dopamine in Mice Hippocampus Tissue , 2011 .
[277] A F von Recum,et al. Macrophage response to microtextured silicone. , 1992, Biomaterials.
[278] Serge Picaud,et al. Purified Neurons can Survive on Peptide‐Free Graphene Layers , 2013, Advanced healthcare materials.
[279] David J. Anderson,et al. Electrochemical deposition and characterization of conducting polymer polypyrrole/PSS on multichannel neural probes , 2001 .
[280] Gabriel A. Silva,et al. Neuroscience nanotechnology: progress, opportunities and challenges , 2006, Nature Reviews Neuroscience.
[281] Geoffrey M. Spinks,et al. Mechanism of electromechanical actuation in polypyrrole , 1995 .
[282] Jerald D. Kralik,et al. Techniques for long-term multisite neuronal ensemble recordings in behaving animals. , 2001, Methods.
[283] Alessandra Bonanni,et al. Graphene for electrochemical sensing and biosensing , 2010 .
[284] Anton V. Liopo,et al. Stimulation of Neural Cells by Lateral Currents in Conductive Layer‐by‐Layer Films of Single‐Walled Carbon Nanotubes , 2006 .
[285] M. Ericson,et al. Vertically aligned carbon nanofiber arrays record electrophysiological signals from hippocampal slices. , 2007, Nano letters.
[286] Seeram Ramakrishna,et al. Applications of conducting polymers and their issues in biomedical engineering , 2010, Journal of The Royal Society Interface.
[287] K. Kiuchi,et al. Macrophage colony‐stimulating factor is expressed in neuron and microglia after focal brain injury , 2001, Journal of neuroscience research.
[288] Krystyna Jackowska,et al. New trends in the electrochemical sensing of dopamine , 2012, Analytical and Bioanalytical Chemistry.
[289] Lucas H. Hess,et al. Graphene Transistor Arrays for Recording Action Potentials from Electrogenic Cells , 2011, Advanced materials.
[290] K.D. Wise,et al. Silicon microsystems for neuroscience and neural prostheses , 2005, IEEE Engineering in Medicine and Biology Magazine.
[291] U. Hofmann,et al. Institute of Physics Publishing Journal of Micromechanics and Microengineering a 32-site Neural Recording Probe Fabricated by Drie of Soi Substrates , 2022 .
[292] Joseph J Pancrazio,et al. Neural interfaces at the nanoscale. , 2008, Nanomedicine.
[293] T. Hortobágyi,et al. Cross education and the human central nervous system , 2005, IEEE Engineering in Medicine and Biology Magazine.
[294] Jon A. Mukand,et al. Neuronal ensemble control of prosthetic devices by a human with tetraplegia , 2006, Nature.
[295] Say Chye Joachim Loo,et al. Cellular behavior of human mesenchymal stem cells cultured on single-walled carbon nanotube film , 2010 .
[296] P. Tresco,et al. Response of brain tissue to chronically implanted neural electrodes , 2005, Journal of Neuroscience Methods.
[297] D.B. McCreery,et al. Evaluation of the stability of intracortical microelectrode arrays , 2006, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[298] Amir M. Sodagar,et al. Microelectrodes, Microelectronics, and Implantable Neural Microsystems , 2008, Proceedings of the IEEE.
[299] Jiping He,et al. Polyimide-based intracortical neural implant with improved structural stiffness , 2004 .
[300] C. Schmidt,et al. Synthesis and characterization of polypyrrole-hyaluronic acid composite biomaterials for tissue engineering applications. , 2000, Journal of biomedical materials research.
[301] A. Levey,et al. Implanted neural electrodes cause chronic, local inflammation that is correlated with local neurodegeneration , 2009, Journal of neural engineering.
[302] Ulrich G. Hofmann,et al. A neural probe process enabling variable electrode configurations , 2004 .
[303] S. Boncompagni,et al. Layer-by-layer deposition of shortened nanotubes or polyethylene glycol-derivatized nanotubes on liposomes: A tool for increasing liposome stability , 2007 .
[304] Maurizio Prato,et al. Making carbon nanotubes biocompatible and biodegradable. , 2011, Chemical communications.
[305] C. Marin,et al. Biocompatibility of Intracortical Microelectrodes: Current Status and Future Prospects , 2010, Front. Neuroeng..
[306] K A Moxon,et al. Bioactive properties of nanostructured porous silicon for enhancing electrode to neuron interfaces , 2007, Journal of biomaterials science. Polymer edition.
[307] A. Heeger,et al. Semiconducting and Metallic Polymers: The Fourth Generation of Polymeric Materials , 2001, Angewandte Chemie.
[308] K. Wise,et al. An integrated-circuit approach to extracellular microelectrodes. , 1970, IEEE transactions on bio-medical engineering.
[309] Nicolas Y. Masse,et al. Reach and grasp by people with tetraplegia using a neurally controlled robotic arm , 2012, Nature.
[310] K. Mabuchi,et al. Parylene flexible neural probes integrated with microfluidic channels. , 2005, Lab on a chip.
[311] Andrew B Schwartz,et al. Cortical neural prosthetics. , 2004, Annual review of neuroscience.
[312] Edwin W H Jager,et al. Electrochemical control of growth factor presentation to steer neural stem cell differentiation. , 2011, Angewandte Chemie.
[313] Mutlu Avci,et al. Neural network modeling of voltage-dependent resistance of metallic carbon nanotube interconnects: An ab initio study , 2010, Expert Syst. Appl..
[314] Daryl R Kipke,et al. Conducting polymers on hydrogel-coated neural electrode provide sensitive neural recordings in auditory cortex. , 2010, Acta biomaterialia.
[315] Rajmohan Bhandari,et al. Neural electrode degradation from continuous electrical stimulation: Comparison of sputtered and activated iridium oxide , 2010, Journal of Neuroscience Methods.
[316] G. Wallace,et al. Conducting polymers with immobilised fibrillar collagen for enhanced neural interfacing. , 2011, Biomaterials.
[317] M. Suh,et al. The control of neural cell-to-cell interactions through non-contact electrical field stimulation using graphene electrodes. , 2011, Biomaterials.
[318] Wilfred Chen,et al. Reversible conversion of conducting polymer films from superhydrophobic to superhydrophilic. , 2005, Angewandte Chemie.
[319] E. Smela. Conjugated Polymer Actuators for Biomedical Applications , 2003 .
[320] T. Pizzorusso,et al. Pluronic-coated carbon nanotubes do not induce degeneration of cortical neurons in vivo and in vitro. , 2009, Nanomedicine : nanotechnology, biology, and medicine.
[321] Hou Chengyi,et al. Bio-applicable and electroactive near-infrared laser-triggered self-healing hydrogels based on graphene networks , 2012 .
[322] W. Rutten. Selective electrical interfaces with the nervous system. , 2002, Annual review of biomedical engineering.
[323] David C. Martin,et al. Chronic neural recordings using silicon microelectrode arrays electrochemically deposited with a poly(3,4-ethylenedioxythiophene) (PEDOT) film , 2006, Journal of neural engineering.
[324] A. Metters,et al. Hydrogels in controlled release formulations: network design and mathematical modeling. , 2006, Advanced drug delivery reviews.
[325] George G Malliaras,et al. Organic bioelectronics: a new era for organic electronics. , 2013, Biochimica et biophysica acta.
[326] David J Mooney,et al. The tensile properties of alginate hydrogels. , 2004, Biomaterials.
[327] Peng Chen,et al. Interfacing live cells with nanocarbon substrates. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[328] T G Yuen,et al. Histological evaluation of polyesterimide-insulated gold wires in brain. , 1995, Biomaterials.
[329] J. Hafner,et al. Fabry - Perot interference in a nanotube electron waveguide , 2001, Nature.
[330] X. Cui,et al. Sponge-like nanostructured conducting polymers for electrically controlled drug release. , 2009, Electrochemistry communications.
[331] Hongjie Dai,et al. Neural stimulation with a carbon nanotube microelectrode array. , 2006, Nano letters.
[332] F. Cui,et al. Regulation of charged groups and laminin patterns for selective neuronal adhesion. , 2006, Colloids and surfaces. B, Biointerfaces.
[333] W. Stark,et al. The degree and kind of agglomeration affect carbon nanotube cytotoxicity. , 2007, Toxicology letters.
[334] Andrew S. Whitford,et al. Cortical control of a prosthetic arm for self-feeding , 2008, Nature.
[335] María Teresa Cortés,et al. Artificial Muscles with Tactile Sensitivity , 2003 .
[336] Val Vallyathan,et al. Single- and Multi-Wall Carbon Nanotubes Versus Asbestos: Are the Carbon Nanotubes a New Health Risk to Humans? , 2010, Journal of toxicology and environmental health. Part A.
[337] B. Botterman,et al. Carbon nanotube coating improves neuronal recordings. , 2008, Nature nanotechnology.
[338] R. Haddon,et al. Water soluble single-walled carbon nanotubes inhibit stimulated endocytosis in neurons. , 2008, Nano letters.
[339] Weileun Fang,et al. A cone-shaped 3D carbon nanotube probe for neural recording. , 2010, Biosensors & bioelectronics.
[340] K. Wise,et al. An implantable CMOS circuit interface for multiplexed microelectrode recording arrays , 1992 .
[341] G. S. Wilson,et al. Biosensors for real-time in vivo measurements. , 2005, Biosensors & bioelectronics.
[342] M. U. Nollert,et al. Chemical modification of SWNT alters in vitro cell-SWNT interactions. , 2006, Journal of biomedical materials research. Part A.
[343] Daryl R Kipke,et al. Hybrid Conducting Polymer–Hydrogel Conduits for Axonal Growth and Neural Tissue Engineering , 2012, Advanced healthcare materials.
[344] M Salcman,et al. Design, fabrication, and in vivo behavior of chronic recording intracortical microelectrodes. , 1973, IEEE transactions on bio-medical engineering.
[345] Paola Bovolenta,et al. Nervous system proteoglycans as modulators of neurite outgrowth , 2000, Progress in Neurobiology.
[346] Stéphanie P. Lacour,et al. Flexible and stretchable micro-electrodes for in vitro and in vivo neural interfaces , 2010, Medical & Biological Engineering & Computing.
[347] Conrad D. James,et al. Extracellular recordings from patterned neuronal networks using planar microelectrode arrays , 2004, IEEE Transactions on Biomedical Engineering.
[348] Xiliang Luo,et al. Pure Graphene Oxide Doped Conducting Polymer Nanocomposite for Bio-interfacing. , 2013, Journal of materials chemistry. B.
[349] Nicholas G. Hatsopoulos,et al. Brain-machine interface: Instant neural control of a movement signal , 2002, Nature.
[350] Hui Hu,et al. Chemically Functionalized Carbon Nanotubes as Substrates for Neuronal Growth. , 2004, Nano letters.
[351] P. He,et al. Carbon nanotube-enhanced electrochemical DNA biosensor for DNA hybridization detection , 2003, Analytical and bioanalytical chemistry.
[352] Gero Decher,et al. Fuzzy Nanoassemblies: Toward Layered Polymeric Multicomposites , 1997 .
[353] G. Pfurtscheller,et al. Brain-Computer Interfaces for Communication and Control. , 2011, Communications of the ACM.
[354] Geoffrey T. Manley,et al. Involvement of aquaporin-4 in astroglial cell migration and glial scar formation , 2005, Journal of Cell Science.
[355] R. Mahajan,et al. Electrochemical detection of dopamine in the presence of ascorbic acid using graphene modified electrodes. , 2010, Biosensors & bioelectronics.
[356] J. Fawcett,et al. The glial scar and central nervous system repair , 1999, Brain Research Bulletin.
[357] Gordon G. Wallace,et al. Controlled delivery for neuro-bionic devices. , 2013, Advanced drug delivery reviews.
[358] Gilles Clermont,et al. THE ROLE OF INITIAL TRAUMA IN THE HOST'S RESPONSE TO INJURY AND HEMORRHAGE: INSIGHTS FROM A CORRELATION OF MATHEMATICAL SIMULATIONS AND HEPATIC TRANSCRIPTOMIC ANALYSIS , 2006, Shock.
[359] Mohammad Reza Abidian,et al. Multifunctional Nanobiomaterials for Neural Interfaces , 2009 .
[360] Bernard Tribollet,et al. Mixed ionic-electronic conduction of a conducting polymer film. Ac impedance study of polypyrrole , 1996 .
[361] K. Horch,et al. Biocompatibility of silicon-based electrode arrays implanted in feline cortical tissue. , 1993, Journal of biomedical materials research.
[362] Sheng-Zhen Zu,et al. Aqueous Dispersion of Graphene Sheets Stabilized by Pluronic Copolymers: Formation of Supramolecular Hydrogel , 2009 .
[363] Jun Li,et al. Vertically aligned carbon nanofiber arrays: an advance toward electrical-neural interfaces. , 2006, Small.
[364] Charles M. Lieber,et al. Three-Dimensional, Flexible Nanoscale Field-Effect Transistors as Localized Bioprobes , 2010, Science.
[365] Elisabeth Smela,et al. Surprising Volume Change in PPy(DBS): An Atomic Force Microscopy Study , 1999 .
[366] Yen-Chung Chang,et al. A flexible hydrophilic-modified graphene microprobe for neural and cardiac recording. , 2013, Nanomedicine : nanotechnology, biology, and medicine.
[367] David C. Martin,et al. Experimental and theoretical characterization of implantable neural microelectrodes modified with conducting polymer nanotubes. , 2008, Biomaterials.
[368] H. Markram,et al. Carbon nanotubes might improve neuronal performance by favouring electrical shortcuts. , 2009, Nature nanotechnology.
[369] Nigel H Lovell,et al. Substrate dependent stability of conducting polymer coatings on medical electrodes. , 2012, Biomaterials.
[370] Gustaaf Borghs,et al. Electrochemical deposition of polypyrrole/graphene oxide composite on microelectrodes towards tuning the electrochemical properties of neural probes , 2011 .
[371] P. Leleux,et al. Highly Conformable Conducting Polymer Electrodes for In Vivo Recordings , 2011, Advanced materials.
[372] F. Sesti,et al. Irreversible blocking of ion channels using functionalized single-walled carbon nanotubes , 2005 .
[373] M. Abidian,et al. Conducting‐Polymer Nanotubes for Controlled Drug Release , 2006, Advanced materials.
[374] S E Moulton,et al. Electrode-Cellular Interface , 2009, Science.
[375] Ravi V. Bellamkonda,et al. Dexamethasone-coated neural probes elicit attenuated inflammatory response and neuronal loss compared to uncoated neural probes , 2007, Brain Research.
[376] Gordon G Wallace,et al. Conducting polymers, dual neurotrophins and pulsed electrical stimulation--dramatic effects on neurite outgrowth. , 2010, Journal of controlled release : official journal of the Controlled Release Society.
[377] Masahiko Hara,et al. A new planar multielectrode array: recording from a rat auditory cortex , 2006, Journal of neural engineering.
[378] T. Stieglitz,et al. Polymers for neural implants , 2011 .
[379] Jonathan R Wolpaw,et al. Control of a two-dimensional movement signal by a noninvasive brain-computer interface in humans. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[380] Eduardo Fernández,et al. Long-term stimulation and recording with a penetrating microelectrode array in cat sciatic nerve , 2004, IEEE Transactions on Biomedical Engineering.
[381] K. Chinzei,et al. Mechanical properties of brain tissue in tension. , 2002, Journal of biomechanics.
[382] S. Cogan. Neural stimulation and recording electrodes. , 2008, Annual review of biomedical engineering.
[383] Jae Young Lee,et al. Polypyrrole-coated electrospun PLGA nanofibers for neural tissue applications. , 2009, Biomaterials.
[384] Andrew T. S. Wee,et al. Themed issue on carbon bioelectronics. , 2013, Journal of materials chemistry. B.
[385] H. Müller,et al. The CNS lesion scar: new vistas on an old regeneration barrier , 1998, Cell and Tissue Research.
[386] William M. Rabinowitz,et al. Better speech recognition with cochlear implants , 1991, Nature.
[387] Qibing Pei,et al. Conjugated polymers and the bending cantilever method: Electrical muscles and smart devices , 1992 .
[388] G. Wallace,et al. Use of Ionic Liquids for π-Conjugated Polymer Electrochemical Devices , 2002, Science.
[389] Daryl R. Kipke,et al. Voltage pulses change neural interface properties and improve unit recordings with chronically implanted microelectrodes , 2006, IEEE Transactions on Biomedical Engineering.
[390] Mario I. Romero,et al. Early Interfaced Neural Activity from Chronic Amputated Nerves , 2009, Front. Neuroeng..
[391] J. Muthuswamy,et al. Thin microelectrodes reduce GFAP expression in the implant site in rodent somatosensory cortex , 2007, Journal of neural engineering.
[392] Peter Wick,et al. Effects of carbon nanotubes on primary neurons and glial cells. , 2009, Neurotoxicology.
[393] Bin Liu,et al. Role of Microglia in Inflammation-Mediated Neurodegenerative Diseases: Mechanisms and Strategies for Therapeutic Intervention , 2003, Journal of Pharmacology and Experimental Therapeutics.
[394] Philippe Caroff,et al. Nanowire biocompatibility in the brain--looking for a needle in a 3D stack. , 2009, Nano letters.
[395] X. Navarro,et al. Differential growth of axons from sensory and motor neurons through a regenerative electrode: A stereological, retrograde tracer, and functional study in the rat , 2004, Neuroscience.
[396] D. Kipke,et al. Repeated voltage biasing improves unit recordings by reducing resistive tissue impedances , 2005, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[397] David C. Martin,et al. Neuronal cell loss accompanies the brain tissue response to chronically implanted silicon microelectrode arrays , 2005, Experimental Neurology.
[398] L. Cohen,et al. Brain–computer interface in paralysis , 2008, Current opinion in neurology.
[399] Xuan Cheng,et al. Poly(3,4-ethylenedioxythiophene)/multiwall carbon nanotube composite coatings for improving the stability of microelectrodes in neural prostheses applications. , 2013, Acta biomaterialia.
[400] F. Rosenthal. Extracellular potential fields of single PT-neurons. , 1972, Brain research.
[401] Gislin Dagnelie,et al. Visual perception in a blind subject with a chronic microelectronic retinal prosthesis , 2003, Vision Research.
[402] Yong Liu,et al. Biocompatible graphene oxide-based glucose biosensors. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[403] Liang Guo,et al. A lithographically-patterned, elastic multi-electrode array for surface stimulation of the spinal cord , 2008, Biomedical microdevices.