Literature DB >> 15503964

Multiple-electrode nerve cuffs for low-velocity and velocity-selective neural recording.

J Taylor1, N Donaldson, J Winter.   

Abstract

In the paper, a method using multiple-electrode nerve cuffs is presented that enables electroneurographic signals (ENG) to be recorded selectively by action potential velocity. The theory uses a one-dimensional model of the electrodes in the cuff. Using this model, the transfer function for a single tripole is derived, and it is shown that more than one tripole signal can be recorded from within a cuff. When many tripole signals are available and are temporally aligned by artificial delays and summed, there is a significant increase in the amplitude of the recorded action potential, depending on the cuff length and the action potential velocity, with the greatest gain occurring for low velocities. For example, a cuff was considered that was constrained by surgical considerations to 30 mm between the end electrodes. For action potentials with a velocity of 120 m s(-1), it was shown that, as the number of tripoles increased from one, the peak energy spectral density of the recorded output increased by a factor of about 1.6 with three tripoles, whereas, for 20 m s(-1), the increase was about 19, with ten tripoles. The time delays and summation act as a velocity-selective filter. With consideration of the energy spectral densities at frequencies where these are maximum (to give the best signal-to-noise ratio), the tuning curves are presented for these velocity-selective filters and show that useful velocity resolution is possible using this method. For a 30 mm cuff with nine tripoles, it is demonstrated that it is possible to resolve at least five distinct velocity bands in the range 20-120m s(-1).

Mesh:

Year:  2004        PMID: 15503964     DOI: 10.1007/bf02347545

Source DB:  PubMed          Journal:  Med Biol Eng Comput        ISSN: 0140-0118            Impact factor:   2.602


  29 in total

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  8 in total

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3.  Noise and selectivity of velocity-selective multi-electrode nerve cuffs.

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4.  A phantom axon setup for validating models of action potential recordings.

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5.  An implantable ENG detector with in-system velocity selective recording (VSR) capability.

Authors:  Chris Clarke; Robert Rieger; Martin Schuettler; Nick Donaldson; John Taylor
Journal:  Med Biol Eng Comput       Date:  2016-09-16       Impact factor: 2.602

6.  The Design of a Low Noise, Multi-Channel Recording System for Use in Implanted Peripheral Nerve Interfaces.

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7.  Thin Film Multi-Electrode Softening Cuffs for Selective Neuromodulation.

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8.  The Use of the Velocity Selective Recording Technique to Reveal the Excitation Properties of the Ulnar Nerve in Pigs.

Authors:  Felipe Rettore Andreis; Benjamin Metcalfe; Taha Al Muhammadee Janjua; Winnie Jensen; Suzan Meijs; Thomas Gomes Nørgaard Dos Santos Nielsen
Journal:  Sensors (Basel)       Date:  2021-12-23       Impact factor: 3.576

  8 in total

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