Literature DB >> 16119243

An array of microactuated microelectrodes for monitoring single-neuronal activity in rodents.

Jit Muthuswamy1, Murat Okandan, Aaron Gilletti, Michael S Baker, Tilak Jain.   

Abstract

Arrays of microelectrodes used for monitoring single- and multi-neuronal action potentials often fail to record from the same population of neurons over a period of time for several technical and biological reasons. We report here a novel Neural Probe chip with a 3-channel microactuated microelectrode array that will enable precise repositioning of the individual microelectrodes within the brain tissue after implantation. Thermal microactuators and associated microelectrodes in the Neural Probe chip are microfabricated using the Sandia's Ultraplanar Multi-level MEMS Technology (SUMMiTV) process, a 5-layer polysilicon micromachining technology of the Sandia National labs, Albuquerque, NM. The Neural Probe chip enables precise bi-directional positioning of the microelectrodes in the brain with a step resolution in the order of 8.8 microm. The thermal microactuators allow for a linear translation of the microelectrodes of up to 5 mm in either direction making it suitable for positioning microelectrodes in deep structures of a rodent brain. The overall translation in either direction was reduced to approximately 2 mm after insulation of the microelectrodes with epoxy for monitoring multi-unit activity. Single unit recordings were obtained from the somatosensory cortex of adult rats over a period of three days demonstrating the feasibility of this technology. Further optimization of the microelectrode insulation and chip packaging will be necessary before this technology can be validated in chronic experiments.

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Year:  2005        PMID: 16119243      PMCID: PMC1635790          DOI: 10.1109/TBME.2005.851478

Source DB:  PubMed          Journal:  IEEE Trans Biomed Eng        ISSN: 0018-9294            Impact factor:   4.538


  18 in total

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Authors:  M S Fee; A Leonardo
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3.  A microelectrode drive for long term recording of neurons in freely moving and chaired monkeys.

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4.  Multisite microprobes for neural recordings.

Authors:  N A Blum; B G Carkhuff; H K Charles; R L Edwards; R A Meyer
Journal:  IEEE Trans Biomed Eng       Date:  1991-01       Impact factor: 4.538

5.  Electrostatic microactuators for precise positioning of neural microelectrodes.

Authors:  Jit Muthuswamy; Murat Okandan; Tilak Jain; Aaron Gilletti
Journal:  IEEE Trans Biomed Eng       Date:  2005-10       Impact factor: 4.538

6.  A 16-fold semi-microelectrode for intracortical recording of field potentials.

Authors:  O Prohaska; F Pacha; P Pfundner; H Petsche
Journal:  Electroencephalogr Clin Neurophysiol       Date:  1979-11

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Authors:  P Pochay; K D Wise; L F Allard; L T Rutledge
Journal:  IEEE Trans Biomed Eng       Date:  1979-04       Impact factor: 4.538

8.  An integrated-circuit approach to extracellular microelectrodes.

Authors:  K D Wise; J B Angell; A Starr
Journal:  IEEE Trans Biomed Eng       Date:  1970-07       Impact factor: 4.538

9.  A review of printed circuit microelectrodes and their production.

Authors:  R S Pickard
Journal:  J Neurosci Methods       Date:  1979-12       Impact factor: 2.390

10.  A practical 24 channel microelectrode for neural recording in vivo.

Authors:  M Kuperstein; D A Whittington
Journal:  IEEE Trans Biomed Eng       Date:  1981-03       Impact factor: 4.538

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  11 in total

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Journal:  J Neurosci Methods       Date:  2011-09-12       Impact factor: 2.390

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Journal:  J Neurosci Methods       Date:  2008-03-18       Impact factor: 2.390

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4.  Nonhermetic Encapsulation Materials for MEMS-Based Movable Microelectrodes for Long-Term Implantation in the Brain.

Authors:  Nathan Jackson; Sindhu Anand; Murat Okandan; Jit Muthuswamy
Journal:  J Microelectromech Syst       Date:  2009-01-01       Impact factor: 2.417

5.  Highly doped polycrystalline silicon microelectrodes reduce noise in neuronal recordings in vivo.

Authors:  Rajarshi Saha; Nathan Jackson; Chetan Patel; Jit Muthuswamy
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6.  Electrothermal Microactuators With Peg Drive Improve Performance for Brain Implant Applications.

Authors:  Sindhu Anand; Jemmy Sutanto; Michael S Baker; Murat Okandan; Jit Muthuswamy
Journal:  J Microelectromech Syst       Date:  2012-07-13       Impact factor: 2.417

7.  Long-Term Neural Recordings Using MEMS Based Movable Microelectrodes in the Brain.

Authors:  Nathan Jackson; Arati Sridharan; Sindhu Anand; Michael Baker; Murat Okandan; Jit Muthuswamy
Journal:  Front Neuroeng       Date:  2010-06-18

8.  Autonomous control for mechanically stable navigation of microscale implants in brain tissue to record neural activity.

Authors:  Sindhu Anand; Swathy Sampath Kumar; Jit Muthuswamy
Journal:  Biomed Microdevices       Date:  2016-08       Impact factor: 2.838

9.  Assessment of gliosis around moveable implants in the brain.

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Journal:  J Neural Eng       Date:  2009-06-25       Impact factor: 5.379

10.  Flexible Chip Scale Package and Interconnect for Implantable MEMS Movable Microelectrodes for the Brain.

Authors:  Nathan Jackson; Jit Muthuswamy
Journal:  J Microelectromech Syst       Date:  2009-04-01       Impact factor: 2.417

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