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PMID: 1097639 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Ionic mechanism of the efferent olivo-cochlear inhibition studied by cochlear perfusion in the cat.

The Journal of physiology ·Vol. 247 ·No. 2 ·1975-05-00 ·Pages 407-28

Desmedt JE, Robertson D

Abstract

1. A method for perfusing the scala tympani of the cat's cochlea from basal turn to apex is described. The perfusion with modified Krebs solution did not interfere with the recording of cochlear microphonic (CM) and neural responses to sound, nor with the efferent inhibition elicited by stereotaxic stimulation of the crossed olivo-cochlear bundle (COCB) in the medulla. 2. Cochlear perfusion with solutions in which most of the chloride was replaced by large anions (sulphate or gluconate) decreased or eliminated auditory nerve or the ventral cochlear nucleus. These effects were reversible. They were only observed if the rate of perfusion (2-20 mul/min) was adequate to reduce the chloride concentration in perilymph below about 80 mM, this being estimated, in different perfusion of the same cochlea, by a chloride-selective electrode. 3. The COCB-induced negative shift of the endocochlear potential recorded with a glass micro-electrode inserted into the scala media was abolished by I.V. strychnine o.2 mg/kg. It was decreased when the perilymph chloride was reduced to 50-70 mM and could be abolished when the perilymph chloride dropped to about 5 mM. 4. The COCB-induced potentiation of the cochlear microphonic potential was also reduced by chloride substitution but the pattern of this effect differed from that of neural inhibition. 5. Similar cochlear perfusions with a solution in which the small diameter bromide anion was substituted for chloride did not affect the COCB-efferent effects. 6. The data indicate that the inhibitory transmitter released by COCB terminals elicits an increased conductance to small anions (normally to chloride) in the membrane of the auditory dendrite and of the outer hair cell. The significance of the COCB-induced negative shift of endocochlear potential and of the potentiation of CM is discussed, as well as the pre- and post-synaptic mechanisms involved in the efferent gating exerted on the auditory input. The latter would seem to involve primarily a post-synaptic mechanism at efferent axo-dendritic synapses.

MeSH Terms
Acoustic Stimulation Animals Cats Chlorides/analysis,pharmacology Cochlea/analysis,physiology Electric Stimulation Electrophysiology/methods Medulla Oblongata/physiology Neural Inhibition/drug effects Neurons/physiology Neurons, Efferent/physiology Olivary Nucleus/physiology Perfusion Stereotaxic Techniques
Chemicals
Chlorides
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Desmedt J E
Robertson D
References (40)
40 references, click to expand
  1. A model for transducer action in the cochlea.
    Cold Spring Harb Symp Quant Biol. 1965;30:181-90 PMID: 5219471
  2. Effects of the electrical stimulation of the crossed olivocochlear bundle on cochlear potentials recorded with intracochlear electrodes in guinea pigs.
    J Acoust Soc Am. 1971 Jun;49(6):1762-9 PMID: 5125722
  3. Auditory receptor organs of reptiles, birds, and mammals.
    Contrib Sens Physiol. 1971;5:129-78 PMID: 5117608
  4. Mechanism of production of cochlear microphonics.
    J Acoust Soc Am. 1970 Feb;47(2):498-503 PMID: 5439648
  5. Effect of sodium deficiency on cochlear potentials.
    J Acoust Soc Am. 1968 Mar;43(3):462-70 PMID: 5640952
  6. Efferent inhibition in the cochlea related to hair-cell dc activity: study of postsynaptic activity of the crossed olivocochlear fibres in the cat.
    J Acoust Soc Am. 1967 Mar;41(3):666-75 PMID: 6045076
  7. The organization of the cochlear receptor.
    Fortschr Hals Nasen Ohrenheilkd. 1966;13:1-227 PMID: 5914145
  8. The specific ionic conductances and the ionic movements across the motoneuronal membrane that produce the inhibitory post-synaptic potential.
    J Physiol. 1955 Nov 28;130(2):326-74 PMID: 13278905
  9. FUNCTIONAL PROPERTIES OF THE EFFERENT COCHLEAR BUNDLE OF THE PIGEON REVEALED BY STEREOTAXIC STIMULATION.
    Exp Neurol. 1965 Jan;11:1-26 PMID: 14272556
  10. [ULTRASTRUCTURE OF SYNAPSES AT THE LEVEL OF SPECIAL SOMATIC SENSITIVITY RECEPTORS, AND MORE PARTICULARLY IN THE ORGAN OF CORTI OF THE PIGEON].
    Bull Acad R Med Belg. 1964;4:729-55 PMID: 14255605
  11. [INFLUENCE OF TEMPERATURE ON THE PROGRESSIVE CURVE OF AN INHIBITION PROCESS].
    C R Hebd Seances Acad Sci. 1964 Nov 9;259:3367-70 PMID: 14253248
  12. THE EFFECT OF ANION INJECTION AND CHANGES IN THE EXTERNAL POTASSIUM AND CHLORIDE CONCENTRATION ON THE REVERSAL POTENTIALS OF THE IPSP AND ACETYLCHOLINE.
    Comp Biochem Physiol. 1964 Feb;11:199-213 PMID: 14158590
  13. NEURAL INHIBITION IN A BIRD: EFFECT OF STRYCHNINE AND PICROTOXIN.
    Nature. 1963 Nov 9;200:583-5 PMID: 14082237
  14. EXPERIMENTAL OBSERVATIONS ON THE FLUID PHYSIOLOGY OF THE INNER EAR.
    Ann Otol Rhinol Laryngol. 1963 Sep;72:687-712 PMID: 14062420
  15. Recent observations on the olivo-cochlear bundle.
    Ann Otol Rhinol Laryngol. 1963 Jun;72:489-506 PMID: 13993142
  16. Further study on anion permeability of inhibitory post-synaptic membrane of cat motoneurones.
    J Physiol. 1962 Oct;164:150-6 PMID: 13956993
  17. Structure of the nerve endings on the external hair cells of the guinea pig cochlea as studied by serial sections.
    J Ultrastruct Res. 1961 Dec;5:523-56 PMID: 13914158
  18. Mode of action of the efferent olivo-cochlear bundle on the inner ear.
    Nature. 1961 Dec 30;192:1263-5 PMID: 13885734
  19. Stria vascularis as source of endocochlear potential.
    J Neurophysiol. 1959 Mar;22(2):149-55 PMID: 13642091
  20. Membrane permeability change during inhibitory transmitter action in crustacean muscle.
    J Physiol. 1958 Nov 10;144(1):176-91 PMID: 13599117
  21. [Inhibitory and stimulating action of acetylcholine on the heart of warm-blooded animals; spontaneous generator potential].
    Pflugers Arch. 1958;266(6):653-64 PMID: 13601004
  22. Hearing.
    Annu Rev Physiol. 1957;19:417-38 PMID: 13412063
  23. Suppression of auditory nerve activity by stimulation of efferent fibers to cochlea.
    J Neurophysiol. 1956 Sep;19(5):424-37 PMID: 13367873
  24. Nerve impulses in individual auditory nerve fibers of guinea pig.
    J Neurophysiol. 1954 Mar;17(2):97-122 PMID: 13143414
  25. The electrolytes of the labyrinthine fluids.
    Laryngoscope. 1954 Mar;64(3):141-53 PMID: 13143922
  26. [Labyrinthine fluids].
    Acta Otorhinolaryngol Belg. 1950;4(2-4):216-23 PMID: 14777306
  27. Effects of calcium on sound-evoked cochlear potentials in the guinea pig.
    J Acoust Soc Am. 1966 Sep;40(3):583-90 PMID: 5967265
  28. The perfusion of the scala tympani of the cat's cochlea with low-chloride solutions: effect on olivo-cochlear inhibition.
    Arch Int Physiol Biochim. 1973 Sep;81(3):553-4 PMID: 4127499
  29. A study of the electrochemistry and osmotic relationships of the cochlear fluids in the neonatal rat at the time of the development of the endocochlear potential.
    J Physiol. 1971 Feb;212(3):739-61 PMID: 5557069
  30. Ionic mechanisms of a two-component cholinergic inhibition in Aplysia neurones.
    J Physiol. 1972 Aug;225(1):85-114 PMID: 4679686
  31. Anion permeability of the inhibitory post-synaptic membrane of the crayfish neuromuscular junction.
    J Physiol. 1967 Aug;191(3):575-90 PMID: 6051794
  32. Sound-proofed rooms for experimentation in sensory physiology.
    Arch Int Physiol Biochim. 1967 Apr;75(2):352-3 PMID: 4166462
  33. Variations in the effects of electric stimulation of the crossed olivocochlear bundle on cat single auditory-nerve-fiber responses to tone bursts.
    J Acoust Soc Am. 1970 Oct;48(4):966-77 PMID: 5480391
  34. The effects of perfusing the perilymphatic space with artificial endolymph.
    Ann Otol Rhinol Laryngol. 1970 Aug;79(4):754-65 PMID: 5316677
  35. Innervation densities of the cochlea.
    Acta Otolaryngol. 1972 Feb-Mar;73(2):235-48 PMID: 5015157
  36. Contrasting effects of centrifugal olivo-cochlear inhibition and of middle ear muscle contraction on the response characteristics of the cat's auditory nerve.
    Brain Res. 1971 Jul 23;30(2):375-84 PMID: 5099176
  37. Efferent nerve fibres: postsynaptic action on hair cells.
    Nat New Biol. 1973 May 16;243(124):89-91 PMID: 4512963
  38. The release of acetylcholine from nerve endings by graded electric pulses.
    Proc R Soc Lond B Biol Sci. 1967 Jan 31;167(1006):23-38 PMID: 4382589
  39. Ionic permeability of the inhibitory postsynaptic membrane of lobster muscle fibers.
    J Gen Physiol. 1969 Oct;54(4):437-61 PMID: 4309874
  40. Structural basis for directional sensitivity in cochlear and vestibular sensory receptors.
    Cold Spring Harb Symp Quant Biol. 1965;30:115-32 PMID: 5295824
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1975-05-00
Pages
407-28
Language
English
Region
England
NLM ID
0266262
PMCID
PMC1309476
Subset
IM
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