Recording nerve signals in canine sciatic nerves with a flexible penetrating microelectrode array
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Sung-Joon Cho | Donghak Byun | Byeong Han Lee | Sohee Kim | Jong-Hyun Lee | Sung-Joon Cho | Donghak Byun | Jong-Hyun Lee | Sohee Kim | Joongkee Min | J. Min | B. Lee | JoongKee Min
[1] D. Kipke,et al. Insertion shuttle with carboxyl terminated self-assembled monolayer coatings for implanting flexible polymer neural probes in the brain , 2009, Journal of Neuroscience Methods.
[2] Jingquan Liu,et al. Sputtered iridium oxide modified flexible parylene microelectrodes array for electrical recording and stimulation of muscles , 2016 .
[3] I. Bechmann,et al. Effects of isoflurane anesthesia on F‐waves in the sciatic nerve of the adult rat , 2014, Muscle & nerve.
[4] G A Clark,et al. Non-invasive method for selection of electrodes and stimulus parameters for FES applications with intrafascicular arrays. , 2012, Journal of neural engineering.
[5] Gang Chen,et al. Microelectrode array stimulation combined with intrinsic optical imaging: A novel tool for functional brain mapping , 2016, Journal of Neuroscience Methods.
[6] Soo Hyun Lee,et al. Fabrication and characterization of implantable and flexible nerve cuff electrodes with Pt, Ir and IrOx films deposited by RF sputtering , 2010 .
[7] R. Normann,et al. A method for pneumatically inserting an array of penetrating electrodes into cortical tissue , 2006, Annals of Biomedical Engineering.
[8] Rajmohan Bhandari,et al. Effect of sputtering pressure on pulsed-DC sputtered iridium oxide films , 2009 .
[9] Stéphanie P. Lacour,et al. Research Update: Platinum-elastomer mesocomposite as neural electrode coating , 2015 .
[10] Wolfgang Eberle,et al. Bottom-up SiO2 embedded carbon nanotube electrodes with superior performance for integration in implantable neural microsystems. , 2012, ACS nano.
[11] Sung-Joon Cho,et al. Zebrafish needle EMG: a new tool for high-throughput drug screens. , 2015, Journal of neurophysiology.
[12] V. Fazan,et al. Aspects of the Macro and Microscopic Anatomy of the Sciatic Nerve in Wistar Rats , 2016 .
[13] T. Stieglitz,et al. A transverse intrafascicular multichannel electrode (TIME) to interface with the peripheral nerve. , 2010, Biosensors & bioelectronics.
[14] In Young Kim,et al. A thin film polyimide mesh microelectrode for chronic epidural electrocorticography recording with enhanced contactability , 2014, Journal of neural engineering.
[15] D. J. Warren,et al. Acute monitoring of genitourinary function using intrafascicular electrodes: selective pudendal nerve activity corresponding to bladder filling, bladder fullness, and genital stimulation. , 2014, Urology.
[16] Zhuolin Xiang,et al. A flexible three-dimensional electrode mesh: An enabling technology for wireless brain–computer interface prostheses , 2016, Microsystems & Nanoengineering.
[17] Silvestro Micera,et al. Spatial and Functional Selectivity of Peripheral Nerve Signal Recording With the Transversal Intrafascicular Multichannel Electrode (TIME) , 2016, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[18] K. Horch,et al. A silicon-based, three-dimensional neural interface: manufacturing processes for an intracortical electrode array , 1991, IEEE Transactions on Biomedical Engineering.
[19] S. Yen,et al. Ultra-thin flexible polyimide neural probe embedded in a dissolvable maltose-coated microneedle , 2014 .
[20] Chengkuo Lee,et al. Flexible Epineural Strip Electrode for Recording in Fine Nerves , 2016, IEEE Transactions on Biomedical Engineering.
[21] Ken Yoshida,et al. Assessment of Biocompatibility of Chronically Implanted Polyimide and Platinum Intrafascicular Electrodes , 2007, IEEE Transactions on Biomedical Engineering.
[22] Justin C. Sanchez,et al. Abiotic-biotic characterization of Pt/Ir microelectrode arrays in chronic implants , 2014, Front. Neuroeng..
[23] P. Tresco,et al. Differences Exist in the Left and Right Sciatic Nerves of Naïve Rats and Cats , 2015, Anatomical record.
[24] T. G. McNaughton,et al. Recording Properties and Biocompatibility of Chronically Implanted Polymer-based Intrafascicular Electrodes , 1998, Annals of Biomedical Engineering.
[25] Alison I. Weber,et al. Comparing the effects of isoflurane and pentobarbital on the responses of cutaneous mechanoreceptive afferents , 2013, BMC Anesthesiology.
[26] Justin A. Blanco,et al. Dissolvable films of silk fibroin for ultrathin conformal bio-integrated electronics. , 2010, Nature materials.
[27] R. Stein,et al. Selective stimulation of cat sciatic nerve using an array of varying-length microelectrodes. , 2001, Journal of neurophysiology.
[28] R. Garman,et al. Light Microscopic Sciatic Nerve Changes in Control Beagle Dogs from Toxicity Studies , 2011, Toxicologic pathology.
[29] E. Valderrama,et al. Polyimide cuff electrodes for peripheral nerve stimulation , 2000, Journal of Neuroscience Methods.
[30] Sohee Kim,et al. Development of integrated flexible penetrating microelectrode array with interconnection cable for use in various nervous systems , 2015, 2015 IEEE SENSORS.
[31] S. Corr,et al. Ultrasonographic assessment of the canine sciatic nerve. , 2007, Veterinary radiology & ultrasound : the official journal of the American College of Veterinary Radiology and the International Veterinary Radiology Association.
[32] G A Clark,et al. Restoring motor control and sensory feedback in people with upper extremity amputations using arrays of 96 microelectrodes implanted in the median and ulnar nerves , 2016, Journal of neural engineering.
[33] J.P. Donoghue,et al. Reliability of signals from a chronically implanted, silicon-based electrode array in non-human primate primary motor cortex , 2005, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[34] Wei Zhao,et al. A Flexible Microneedle Electrode Array With Solid Silicon Needles , 2012, Journal of Microelectromechanical Systems.
[35] M B A Fontes. Electrodes for bio-application: recording and stimulation , 2013 .
[36] Steffen B. E. Wolff,et al. A polymer-based neural microimplant for optogenetic applications: design and first in vivo study. , 2013, Lab on a chip.
[37] Rajmohan Bhandari,et al. A novel masking method for high aspect ratio penetrating microelectrode arrays , 2009 .
[38] A. Yetim,et al. Using of artificial neural network for the prediction of tribological properties of plasma nitrided 316L stainless steel , 2015 .
[39] T. Ueyama. The topography of root fibres within the sciatic nerve trunk of the dog. , 1978, Journal of anatomy.
[40] Heather Anna Cary Wark,et al. Restoration From Acute Urinary Dysfunction Using Utah Electrode Arrays Implanted Into the Feline Pudendal Nerve , 2015, Neuromodulation : journal of the International Neuromodulation Society.
[41] David J. Warren,et al. Recording and Decoding for Neural Prostheses , 2016, Proceedings of the IEEE.
[42] Reid R. Harrison,et al. Recording sensory and motor information from peripheral nerves with Utah Slanted Electrode Arrays , 2011, 2011 Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[43] Xavier Navarro,et al. Topographical distribution of motor fascicles in the sciatic‐tibial nerve of the rat , 2010, Muscle & nerve.
[44] Sung Joon Cho,et al. Fabrication of a flexible penetrating microelectrode array for use on curved surfaces of neural tissues , 2013 .
[45] Eugenio Guglielmelli,et al. Invasive neural interfaces: the perspective of the surgeon. , 2014, The Journal of surgical research.
[46] Almut Branner,et al. Capabilities of a penetrating microelectrode array for recording single units in dorsal root ganglia of the cat , 2003, Journal of Neuroscience Methods.
[47] Daniel J. Lee,et al. Conducting polymer electrodes for auditory brainstem implants. , 2015, Journal of materials chemistry. B.
[48] K. Wise,et al. An integrated-circuit approach to extracellular microelectrodes. , 1970, IEEE transactions on bio-medical engineering.
[49] Wei Wang,et al. A Parylene Self-Locking Cuff Electrode for Peripheral Nerve Stimulation and Recording , 2014, Journal of Microelectromechanical Systems.
[50] G A Clark,et al. The foreign body response to the Utah Slant Electrode Array in the cat sciatic nerve. , 2014, Acta biomaterialia.
[51] D. Hutchinson,et al. A histological analysis of human median and ulnar nerves following implantation of Utah slanted electrode arrays. , 2016, Biomaterials.
[52] M. Keith,et al. A neural interface provides long-term stable natural touch perception , 2014, Science Translational Medicine.
[53] Rajmohan Bhandari,et al. Neural electrode degradation from continuous electrical stimulation: Comparison of sputtered and activated iridium oxide , 2010, Journal of Neuroscience Methods.
[54] J. Mortimer,et al. A spiral nerve cuff electrode for peripheral nerve stimulation , 1988, IEEE Transactions on Biomedical Engineering.
[55] David J. Anderson,et al. Novel multi-sided, microelectrode arrays for implantable neural applications , 2011, Biomedical microdevices.
[56] Paras R. Patel,et al. Ultrasmall implantable composite microelectrodes with bioactive surfaces for chronic neural interfaces. , 2012, Nature materials.
[57] F. Solzbacher,et al. In vitro comparison of sputtered iridium oxide and platinum-coated neural implantable microelectrode arrays , 2010, Biomedical materials.
[58] Brian J. Kim,et al. Micromachining of Parylene C for bioMEMS , 2016 .
[59] Robert A. Gaunt,et al. Microelectrode Array Recordings from the Ventral Roots in Chronically Implanted Cats , 2014, Front. Neurol..
[60] Michael D Joseph,et al. Poly(3,4-ethylenedioxythiophene) (PEDOT) polymer coatings facilitate smaller neural recording electrodes , 2011, Journal of neural engineering.
[61] R. Oostenveld,et al. A MEMS-based flexible multichannel ECoG-electrode array , 2009, Journal of neural engineering.
[62] H A C Wark,et al. Behavioral and cellular consequences of high-electrode count Utah Arrays chronically implanted in rat sciatic nerve , 2014, Journal of neural engineering.
[63] D. Durand,et al. Functionally selective peripheral nerve stimulation with a flat interface nerve electrode , 2002, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[64] J. Pan,et al. Silane-parylene coating for improving corrosion resistance of stainless steel 316L implant material , 2011 .
[65] Mohamad Sawan,et al. Design and Implementation Challenges of Microelectrode Arrays: A Review , 2013 .
[66] Kip A Ludwig,et al. Use of a Bayesian maximum-likelihood classifier to generate training data for brain–machine interfaces , 2011, Journal of neural engineering.
[67] Ken Yoshida,et al. Intrafascicular electrodes for stimulation and recording from mudpuppy spinal roots , 2000, Journal of Neuroscience Methods.
[68] Christian Ethier,et al. Intrafascicular stimulation of monkey arm nerves evokes coordinated grasp and sensory responses. , 2013, Journal of neurophysiology.
[69] P. Tresco,et al. A new high-density (25 electrodes/mm2) penetrating microelectrode array for recording and stimulating sub-millimeter neuroanatomical structures , 2013, Journal of neural engineering.
[70] Craig T. Nordhausen,et al. Single unit recording capabilities of a 100 microelectrode array , 1996, Brain Research.
[71] Silvestro Micera,et al. A critical review of interfaces with the peripheral nervous system for the control of neuroprostheses and hybrid bionic systems , 2005, Journal of the peripheral nervous system : JPNS.
[72] K. Djupsund,et al. Flexible polyimide microelectrode array for in vivo recordings and current source density analysis. , 2007, Biosensors & bioelectronics.
[73] Kaiqi Su,et al. Detection and classification of natural odors with an in vivo bioelectronic nose. , 2015, Biosensors & bioelectronics.
[74] Shun-Ho Huang,et al. In vitro and in vivo characterization of SU-8 flexible neuroprobe: From mechanical properties to electrophysiological recording , 2014 .
[75] U. Schnakenberg,et al. Sputtered Iridium Oxide Films as Charge Injection Material for Functional Electrostimulation , 2004 .
[76] Eduardo Fernández,et al. Long-term stimulation and recording with a penetrating microelectrode array in cat sciatic nerve , 2004, IEEE Transactions on Biomedical Engineering.
[77] S. Cogan. Neural stimulation and recording electrodes. , 2008, Annual review of biomedical engineering.
[78] Yei Hwan Jung,et al. Injectable, Cellular-Scale Optoelectronics with Applications for Wireless Optogenetics , 2013, Science.
[79] Winnie Jensen,et al. Stimulation Selectivity of the “Thin-Film Longitudinal Intrafascicular Electrode” (tfLIFE) and the “Transverse Intrafascicular Multi-Channel Electrode” (TIME) in the Large Nerve Animal Model , 2014, IEEE Transactions on Neural Systems and Rehabilitation Engineering.