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PMID: 168359 Published · ppublish English Journal Article

Extracellular potassium changes in the spinal cord of the cat and their relation to slow potentials, active transport and impulse transmission.

The Journal of physiology ·Vol. 249 ·No. 1 ·1975-07-00 ·Pages 167-82

Krív N, Syková E, Vyklický L

Abstract

1. By means of K-specific double-barrelled micro-electrodes the time course of changes in K+ concentration in the extracellular space of the lumbar spinal cord was examined after peripheral tetanic stimulation and after a single volley in a mixed peripheral nerve in non-anaesthetized, intercollicularly decerebrated and spinalized cats. 2. Tetanic stimulation (100 Hz) which increases the [K]e from 3 to 9 mM is followed by a phase of reduced [K]e during which [K]e decreases by 0.5 mM below resting level, lasting 1-2 minutes before returning to its original resting level. Evidence is presented that this subnormal phase of [K]e reflects active processes redistributing accumulated K+ from extracellular space. 3. The subnormal phase of [K]e can be registered only when the microelectrode is located in very close vicinity of discharging neurones and is not primarily dependent on the absolute level of increased [K]e. This can be considered as evidence that the neurones and not the glial cells are responsible for active reabsorption of K+ from the extracellular space. 4. Increased E1K]e is reflected in focally recorded potentials as a negativity and decreased [K]e as a positivity. The latency of focally recorded positivity is, however, shorter than the latency of reduced [K]e. This makes it likely that the positivity reflects not only passive hyperpolarization of glial elements, but also an active, electrogenic ion transport across neuronal membrane. 5. The shortest latency of increased [K]e induced by a single volley in a mixed peripheral nerve was found to be 9 msec; the peak, representing 0.5 mM, was attained after 40 msec and the total duration was 200 msec. A theoretical consideration is put forward that the time course of transient increase in [K]e is consistent with the suggestion that K+ which accumulates in the spinal cord after neuronal discharge is responsible for primary afferent depolarization. 6. Evidence is presented that increased [K]e, induced by a long lasting peripheral stimulation, is accompanied by decreased efficacy of impulse transmission.

MeSH Terms
Animals Biological Transport, Active Blood Pressure Cats Electric Stimulation Evoked Potentials Extracellular Space/metabolism,physiology Hypoxia Potassium/metabolism,physiology Spinal Cord/metabolism,physiology Synapses/physiology Synaptic Transmission Time Factors
Chemicals
Potassium
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Krív N
Syková E
Vyklický L
References (16)
16 references, click to expand
  1. Slow potentials induced by changes of extracellular potassium in the spinal cord of the cat.
    Brain Res. 1975 Apr 4;87(1):77-80 PMID: 1168085
  2. The cord dorsum potentials in relation to peripheral source of afferent stimulation.
    Cold Spring Harb Symp Quant Biol. 1952;17:221-32 PMID: 13049168
  3. The interpretation of potential changes in the spinal cord.
    J Physiol. 1938 Apr 14;92(3):276-321 PMID: 16994975
  4. Differential high-impedance DC amplifier with negative input capacity.
    Physiol Bohemoslov. 1967;16(1):89-96 PMID: 4226648
  5. Post-stimulation changes of extracellular potassium concentration in the spinal cord of the rat.
    Brain Res. 1972 Oct 27;45(2):608-11 PMID: 4343681
  6. The effect of dopa on the spinal cord. 8. Presynaptic and "remote" inhibition of transmission from Ia afferents to alpha motoneurones.
    Acta Physiol Scand. 1974 Mar;90(3):618-39 PMID: 4364452
  7. Possible relationships between extracellular potassium activity and presynaptic inhibition in the spinal cord of the cat.
    Pflugers Arch. 1974;349(4):301-17 PMID: 4472242
  8. Extracellular K + activity and slow potential changes in spinal cord and medulla.
    Can J Physiol Pharmacol. 1972 Dec;50(12):1214-7 PMID: 4655054
  9. Rapid changes of potassium concentration at the outer surface of exposed single neurons during membrane current flow.
    J Gen Physiol. 1973 Mar;61(3):385-99 PMID: 4689624
  10. Slow hyperpolarization in cells presumed to be glia in cerebral cortex of cat.
    J Neurophysiol. 1973 Sep;36(5):879-92 PMID: 4805017
  11. Potassium, sustained focal potential shifts, and dorsal root potentials of the mammalian spinal cord.
    Brain Res. 1974 Mar 29;69(1):153-7 PMID: 4817909
  12. Changes of extracellular potassium concentration induced by neuronal activity in the sinal cord of the cat.
    J Physiol. 1974 Apr;238(1):1-15 PMID: 4838796
  13. Potassium-selective microelectrodes used for measuring the extracellular brain potassium during spreading depression and anoxic depolarization in rats.
    Brain Res. 1972 Apr 14;39(1):255-9 PMID: 5025649
  14. Intracellular potentials of inexcitable cells in epileptogenic cortex undergoing fibrillary gliosis after a local injury.
    Brain Res. 1971 May 7;28(2):181-201 PMID: 5113518
  15. Unidentified neuroglia potentials during propagated seizures in neocortex.
    Exp Neurol. 1971 Nov;33(2):239-55 PMID: 5124947
  16. Effect of nerve impulses on the membrane potential of glial cells in the central nervous system of amphibia.
    J Neurophysiol. 1966 Jul;29(4):788-806 PMID: 5966435
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1975-07-00
Pages
167-82
Language
English
Region
England
NLM ID
0266262
PMCID
PMC1309564
Subset
IM
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