Literature DB >> 12117764

Selective electrical interfaces with the nervous system.

Wim L C Rutten1.   

Abstract

To achieve selective electrical interfacing to the neural system it is necessary to approach neuronal elements on a scale of micrometers. This necessitates microtechnology fabrication and introduces the interdisciplinary field of neurotechnology, lying at the juncture of neuroscience with microtechnology. The neuroelectronic interface occurs where the membrane of a cell soma or axon meets a metal microelectrode surface. The seal between these may be narrow or may be leaky. In the latter case the surrounding volume conductor becomes part of the interface. Electrode design for successful interfacing, either for stimulation or recording, requires good understanding of membrane phenomena, natural and evoked action potential generation, volume conduction, and electrode behavior. Penetrating multimicroelectrodes have been produced as one-, two-, and three-dimensional arrays, mainly in silicon, glass, and metal microtechnology. Cuff electrodes circumvent a nerve; their selectivity aims at fascicles more than at nerve fibers. Other types of electrodes are regenerating sieves and cone-ingrowth electrodes. The latter may play a role in brain-computer interfaces. Planar substrate-embedded electrode arrays with cultured neural cells on top are used to study the activity and plasticity of developing neural networks. They also serve as substrates for future so-called cultured probes.

Entities:  

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Year:  2002        PMID: 12117764     DOI: 10.1146/annurev.bioeng.4.020702.153427

Source DB:  PubMed          Journal:  Annu Rev Biomed Eng        ISSN: 1523-9829            Impact factor:   9.590


  44 in total

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3.  Design, fabrication and evaluation of a conforming circumpolar peripheral nerve cuff electrode for acute experimental use.

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Review 5.  Multi-electrode array technologies for neuroscience and cardiology.

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Journal:  Nat Nanotechnol       Date:  2013-02       Impact factor: 39.213

Review 6.  A review of organic and inorganic biomaterials for neural interfaces.

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7.  Semiconductor nanomembrane tubes: three-dimensional confinement for controlled neurite outgrowth.

Authors:  Minrui Yu; Yu Huang; Jason Ballweg; Hyuncheol Shin; Minghuang Huang; Donald E Savage; Max G Lagally; Erik W Dent; Robert H Blick; Justin C Williams
Journal:  ACS Nano       Date:  2011-03-09       Impact factor: 15.881

8.  The fabrication of low-impedance nanoporous gold multiple-electrode arrays for neural electrophysiology studies.

Authors:  Erkin Seker; Yevgeny Berdichevsky; Matthew R Begley; Michael L Reed; Kevin J Staley; Martin L Yarmush
Journal:  Nanotechnology       Date:  2010-03-05       Impact factor: 3.874

9.  A generic framework for real-time multi-channel neuronal signal analysis, telemetry control, and sub-millisecond latency feedback generation.

Authors:  Christoph Zrenner; Danny Eytan; Avner Wallach; Peter Thier; Shimon Marom
Journal:  Front Neurosci       Date:  2010-10-21       Impact factor: 4.677

10.  Quantitative estimation of the nonstationary behavior of neural spontaneous activity.

Authors:  João-Batista Destro-Filho; Carlos-Alberto Estombelo-Montesco; Luiz-Otavio Murta-Junior; Sergio Martinoia; Michela Chiappalone; Suelen Moreira-Marques; Amanda F Neves
Journal:  Comput Intell Neurosci       Date:  2009-12-10
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