Characterising the frequency response of impedance changes during evoked physiological activity in the rat brain
File(s)Faulkner_2018_Physiol._Meas._39_034007.pdf (1.13 MB)
Published version
Author(s)
Faulkner, Mayo
Hannan, Sana
Aristovich, Kirill
Avery, James
Holder, David
Type
Journal Article
Abstract
OBJECTIVE: Electrical impedance tomography (EIT) can image impedance changes associated with evoked physiological activity in the cerebral cortex using an array of epicortical electrodes. An impedance change is observed as the externally applied current, normally confined to the extracellular space is admitted into the conducting intracellular space during neuronal depolarisation. The response is largest at DC and decreases at higher frequencies due to capacitative transfer of current across the membrane. Biophysical modelling has shown that this effect becomes significant above 100 Hz. Recordings at DC, however, are contaminated by physiological endogenous evoked potentials. By moving to 1.7 kHz, images of somatosensory evoked responses have been produced down to 2 mm with a resolution of 2 ms and 200 μm. Hardware limitations have so far restricted impedance measurements to frequencies <2 kHz. The purpose of this work was to establish the optimal frequency for extending EIT to image throughout the brain and to characterise the response at frequencies >2 kHz using improved hardware. APPROACH: Impedance changes were recorded during forepaw somatosensory stimulation in both cerebral cortex and the VPL nucleus of the thalamus in anaesthetised rats using applied currents of 1 kHz to 10 kHz. MAIN RESULTS: In the cortex, impedance changed by -0.04 ± 0.02 % at 1 kHz, reached a peak of -0.13 ± 0.05 % at 1475 Hz and decreased to -0.05 ± 0.02 % at 10 kHz. At these frequencies, changes in the thalamus were -0.26 ± 0.1%, -0.4 ± 0.15 % and -0.08 ± 0.03 % respectively. The signal-to-noise ratio was also highest at 1475 Hz with values of -29.5 ± 8 and -31.6 ±10 recorded from the cortex and thalamus respectively. Signficance: This indicates that the optimal frequency for imaging cortical and thalamic evoked activity using fast neural EIT is 1475 Hz.
Date Issued
2018-03-01
Date Acceptance
2018-02-16
Citation
Physiological Measurement, 2018, 39 (3)
ISSN
0967-3334
Publisher
IOP Publishing
Journal / Book Title
Physiological Measurement
Volume
39
Issue
3
Copyright Statement
© 2018 Institute of Physics and Engineering in Medicine. Original content from this work may be used under the terms of the Creative Commons Attribution 3.0 licence.Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
License URL
Identifier
https://www.ncbi.nlm.nih.gov/pubmed/29451499
Subjects
Science & Technology
Life Sciences & Biomedicine
Technology
Biophysics
Engineering, Biomedical
Physiology
Engineering
electrical impedance tomography
fast neural EIT
evoked potentials
ELECTRIC IMPEDANCE
TOMOGRAPHY
NEURONS
CORTEX
ORGANIZATION
STIMULATION
POTENTIALS
RESONANCE
NEOCORTEX
COMPLEX
Animals
Brain
Electric Impedance
Female
Rats
Rats, Sprague-Dawley
Signal-To-Noise Ratio
Thalamus
Tomography
Brain
Thalamus
Animals
Rats
Rats, Sprague-Dawley
Tomography
Electric Impedance
Female
Signal-To-Noise Ratio
Biomedical Engineering
0903 Biomedical Engineering
0906 Electrical and Electronic Engineering
1116 Medical Physiology
Publication Status
Published
Coverage Spatial
England
Article Number
ARTN 034007
Date Publish Online
2018-04-02