Abstract
The electric organ of G. carapo is formed by linearly arrayed electroplaques which lie in four tubes on each side of the fish. In one tube the electroplaques are innervated on their rostral surfaces, in the others on the caudal. Both surfaces of each electroplaque produce spikes, and either can be excited alone by a suitably oriented externally applied stimulating current. The innervated surface, however, has a lower threshold, and in the normal organ activity, which is a continuous discharge at 35 to 60/sec., it is always fired first by the large neurally evoked postsynaptic potential. The spike of the innervated face then fires the opposite face. The potential recorded external to the innervated face is initially negative and becomes positive when the other face fires. The potential outside the other face is inverted. The p.s.p.'s are electrically inexcitable, have short duration, and are augmented by hyperpolarization. A single electroplaque is innervated by several nerve fibers, which produce summative p.s.p.'s. Homosynaptic facilitation of p.s.p.'s is common. The synapses are cholinoceptive. The organ discharge begins with synchronized activity in the rostrally innervated electroplaques. After a brief interval, the electroplaques in the other three tubes fire. The organ discharge therefore is triphasic, resulting from the summation of the two diphasic components that are oppositely directed and asynchronous. Observations on the sensory role of the organ are included.
Keywords
ELECTROPHYSIOLOGY
FISH
MeSH Terms
Animals
Electric Organ
Electrophysiology
Fishes
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
BENNETT M V
GRUNDFEST H
References (20)
20 references, click to expand
-
The interpretation of spike potentials of motoneurones.
J Physiol. 1957 Dec 3;139(2):198-231
PMID: 13492209
-
The site of impulse initiation in a nerve cell of a crustacean stretch receptor.
J Physiol. 1958 Aug 29;143(1):138-48
PMID: 13576465
-
The fine structure of electric tissue.
Exp Cell Res. 1958;14(Suppl 5):168-82
PMID: 13586289
-
Electrical inexcitability of synapses and some consequences in the central nervous system.
Physiol Rev. 1957 Jul;37(3):337-61
PMID: 13465318
-
Steps in the production of motoneuron spikes.
J Gen Physiol. 1957 May 20;40(5):735-52
PMID: 13428986
-
The membrane potentials during rest and activity of the ray electroplate.
J Physiol. 1958 Jul 14;142(2):251-74
PMID: 13564434
-
Extracellular potentials from single spinal motoneurons.
J Gen Physiol. 1959 Mar 20;42(4):749-60
PMID: 13631201
-
Biophysical aspects of neuro-muscular transmission.
Prog Biophys Biophys Chem. 1956;6:121-70
PMID: 13420190
-
Diverse forms of activity in the somata of spontaneous and integrating ganglion cells.
J Physiol. 1957 Oct 30;138(3):341-64
PMID: 13481878
-
Activity in Electrogenic Organs of Knifefishes.
Science. 1954 Nov 19;120(3125):845-6
PMID: 17768988
-
[Nerve-electroplaque junction of Gymnotus].
J Physiol (Paris). 1954;46(3):823-40
PMID: 13222277
-
Response of single motoneurons to direct stimulation in toad's spinal cord.
J Neurophysiol. 1955 Sep;18(5):472-85
PMID: 13252436
-
A quantitative description of membrane current and its application to conduction and excitation in nerve.
J Physiol. 1952 Aug;117(4):500-44
PMID: 12991237
-
Mechanisms of direct and neural excitability in electroplaques of electric eel.
J Gen Physiol. 1955 Jan 20;38(3):319-60
PMID: 13221776
-
Peripheral mechanism of nervous activity in lateral eye of horseshoe crab.
J Neurophysiol. 1957 May;20(3):245-54
PMID: 13429388
-
Mechanisms of bioelectric activity in electric tissue. I. The response to indirect and direct stimulation of electroplaques of Electrophorus electricus.
J Gen Physiol. 1953 Sep;37(1):91-110
PMID: 13084894
-
Membrane potentials in the electroplates of the electric eel.
J Physiol. 1953 Feb 27;119(2-3):315-51
PMID: 13035755
-
An analysis of extracellular potentials from single neurons in the lateral geniculate nucleus of the cat.
J Gen Physiol. 1958 Jan 20;41(3):543-64
PMID: 13491821
-
Bioelectric effects of ions microinjected into the giant axon of Loligo.
J Gen Physiol. 1954 Nov 20;38(2):245-82
PMID: 13211999
-
[Role of nervous control in the synchronization of function of the elements of the electric organ of the eel, Electrophorus electricus L..].
J Physiol (Paris). 1953;45(3):533-46
PMID: 13152675