IMPEDANCE MEASUREMENTS IN BRAIN TISSUE OF ANIMALS USING MICROVOLT SIGNALS

IMPEDANCE MEASUREMENTS IN BRAIN TISSUE OF ANIMALS USING MICROVOLT SIGNALS
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DOI:
10.1016/0014-4886(62)90069-9
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发表时间:
1962-01-01
影响因子:
5.3
通讯作者:
DIDIO, J
DIDIO, J
中科院分区:
医学2区
文献类型:
--
作者:
ADEY, WR;KADO, RT;DIDIO, J

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A technique is described for measurement of cerebral impedance with signals in the tissues of 1 to 20jiV amplitude, and having a current density of the order of 10-13 amperes per square micron of electrode surface at 1000 cycles/sec. The system will resolve a 1 per cent shift in resistive impedance, and is limited in sensitivity only by the input noise of the differential amplifier. Using chronically implanted coaxial electrodes in the cat for both EEG and impedance measurements, certain clear and consistent changes in impedance were observed, particularly in the dendritic layer of hippocampal pyramidal cells and in the septum, in response to somatic, olfactory, visual, and auditory stimuli, and to changing physiological states of consciousness, as well as drug-induced changes during barbiturate anesthesia and the effects of hallucinogenic agents. Certain repeatable changes were also observed during hippocampal seizures. Physiological peripheral stimuli all produced a transient decrease in impedance in the hippocampal dendritic layer. Arousal from normal sleep was also followed by a baseline shift towards a lower impedance. Waning of consciousness was accompanied by a return to a higher level. Normal sleep was accompanied by trains of very regular sinusoidal waves in the septum at about 3 cycles/min. During Nembutal anesthesia, there was a marked increase in impedance in hippocampal dendritic layers, and a return to pre-drug levels with recovery of consciousness. A psychotomimetic cyclo-hexamine drug produced a converse series of changes. Seizures induced in the hippocampus by septal stimulation were accompanied by small rapid perturbations in impedance, and followed by rhythmic impedance changes at about 1 cycle/sec, occurring on a rising impedance baseline. Differences were noted between impedance changes in the initial seizure episodes and those occurring from identical stimulation 10 days later. The possible relationship of these impedance changes to ionic shifts and volume changes between neuronal elements (or both) and glial tissue, and the extracellular space is discussed, with reference to a possible modulating influence by glial tissue on electronic phenomena in dendrites.