Abstract
Small doses of botulinum toxin can produce partial blockage of transmitter release at the nerve--muscle junction. 2. Subthreshold e.p.p.s, 3--10 days after poisoning, show a distribution of amplitudes that is fitted by Poisson statistics. Successive e.p.p.s. in a short train show a marked facilitation. 3. Two weeks or more after poisoning with a dose of toxin that paralyses the whole muscle, when nerve--muscle transmission is in course of recovery, subthreshold e.p.p.s have an amplitude distribution that is fitted by binomial statistics. This property of transmission is similar to those described in newly formed nerve--muscle junctions, during embryogenesis or regeneration. 4. Muscle fibres with subthreshold transmission in the 5--10 day group of muscles were all supersensitive to ACh, as were a number of fibres in which nerve stimulation still produced an action potential. 5. Two weeks or more after poisoning, muscle fibres with subthreshold transmission had lost their extrajunctional ACh-sensitivity, as had many fibres with m.e.p.p.s of roughly normal frequency but no response to nerve stimulation. 6. In diaphragm muscles poisoned with botulinum toxin between 1 and 4 days previously, the rate of fast axonal transport of radioactively labelled proteins down the phrenic nerve is not greatly affected, but the amount of materials carried is reduced to about one quarter of normal. These labelled proteins accumulate in the intramuscular portion of the phrenic nerve, in or near the nerve terminals, to a much greater extent than in controls, showing that the normal release of some of these materials has been prevented by the toxin. 7. It is concluded that the blockage of the trophic effects of nerves by botulinum toxin is due to a blockage of release of trophic factors other than ACh. 8. The muscle nerve cannot maintain a muscle in its normal state simply by activation of contraction, and a regenerating nerve terminal can restore a muscle towards its normal state before it can release enough ACh to produce muscle contraction.
MeSH Terms
Acetylcholine/pharmacology,physiology
Action Potentials
Animals
Axonal Transport
Botulinum Toxins/pharmacology
Diaphragm/innervation
Electrophysiology
In Vitro Techniques
Motor Endplate/physiology
Muscle Contraction
Nerve Regeneration
Nerve Tissue Proteins/metabolism
Neuromuscular Junction/drug effects,physiology
Phrenic Nerve/physiology
Rats
Synaptic Transmission/drug effects
Chemicals
Nerve Tissue Proteins
Botulinum Toxins
Acetylcholine
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Bray J J
Harris A J
References (33)
33 references, click to expand
-
Quantal components of the end-plate potential.
J Physiol. 1954 Jun 28;124(3):560-73
PMID: 13175199
-
Is acetylcholine the trophic neuromuscular transmitter?
Arch Neurol. 1967 Aug;17(2):206-18
PMID: 6028248
-
An intracellular study of the action of repetitive nerve volleys and of botulinum toxin on miniature end-plate potentials.
J Physiol. 1956 Nov 28;134(2):264-77
PMID: 13398910
-
Properties of regenerating neuromuscular synapses in the frog.
J Physiol. 1960 Nov;154:190-205
PMID: 13770626
-
Supersensitivity of skeletal muscle produced by botulinum toxin.
J Physiol. 1960 Jun;151:598-607
PMID: 13837723
-
An analysis of the end-plate potential recorded with an intracellular electrode.
J Physiol. 1951 Nov 28;115(3):320-70
PMID: 14898516
-
The action of botulinum toxin on the neuro-muscular junction.
J Physiol. 1949 Aug;109(1-2):10-24
PMID: 15394302
-
Studies on the trophic influence of nerve on skeletal muscle.
Eur J Pharmacol. 1972 Dec;20(3):256-60
PMID: 4118681
-
Proceedings: Neurotrophic control of skeletal muscle of the rat.
J Physiol. 1974 May;239(1):31P-33P
PMID: 4137129
-
Characteristics of transmitter release at regenerating frog neuromuscular junctions.
J Physiol. 1974 Jun;239(3):571-94
PMID: 4152807
-
Nerve impulses and trophic effect. Absence of fibrillation after prolonged and reversible conduction block.
Arch Neurol. 1970 Jan;22(1):57-63
PMID: 4311668
-
The effect of type D botulinum toxin on frog neuromuscular junctions.
J Physiol. 1971 Sep;217(2):497-515
PMID: 4329008
-
Control of ACh sensitivity by muscle activity in the rat.
J Physiol. 1972 Mar;221(2):493-513
PMID: 4336524
-
Miniature end-plate potentials at mammalian neuromuscular junctions poisoned by botulinum toxin.
Nat New Biol. 1972 May 3;237(70):26-7
PMID: 4337978
-
Effects of muscle stretch on transmitter release at end-plates of rat diaphragm and frog sartorius muscle.
J Physiol. 1973 Apr;230(2):391-403
PMID: 4350771
-
Neurotrophic control of colchicine effects on muscle?
Nature. 1974 May 31;249(456):473-4
PMID: 4365362
-
A statistical analysis of the release of acetylcholine at newly formed synapses in striated muscle.
J Physiol. 1974 Apr;238(1):93-107
PMID: 4365809
-
The relationship of transmitter release and storage to fine structure in a sympathetic ganglion.
J Neurocytol. 1974 Jun;3(2):133-60
PMID: 4366332
-
Chronic effects of botulinum toxin on neuromuscular transmission and sensitivity to acetylcholine in slow and fast skeletal muscle of the mouse.
J Physiol. 1974 Aug;241(1):127-39
PMID: 4371301
-
Observations on the action of type A botulinum toxin on frog neuromuscular junctions.
J Physiol. 1974 Jul;240(2):227-53
PMID: 4371582
-
Transmission abolished on a cholinergic synapse after injection of acetylcholinesterase into the presynaptic neurone.
Nature. 1974 Aug 9;250(5466):496-8
PMID: 4377745
-
Uptake of [3H]colchicine from silastic implants by mammalian nerves and muscles.
Exp Neurol. 1974 Sep;44(3):404-16
PMID: 4621070
-
Effects of vinblastine and colchicine on neural regulation of the fast and slow skeletal muscles of the rat.
Exp Neurol. 1972 Dec;37(3):607-34
PMID: 4650896
-
Acetylcholine supersensitivity: the role of neurotrophic factors.
Brain Res. 1973 Aug 17;58(1):255-9
PMID: 4731204
-
Growth of capillaries during long-term activity in skeletal muscle.
Bibl Anat. 1973;11:395-8
PMID: 4789069
-
The effect of contractile activity on fibrillation and extrajunctional acetylcholine-sensitivity in rat muscle maintained in organ culture.
J Physiol. 1974 Feb;237(1):157-82
PMID: 4856656
-
Iontophoretic application of acetylcholine: advantages of high resistance micropipettes in connection with an electronic current pump.
Pflugers Arch. 1974 Apr 22;348(3):263-72
PMID: 4857964
-
The response of motor neurones to intramuscular injection of botulinum toxin.
J Physiol. 1969 Jun;202(3):611-30
PMID: 4892690
-
Changes in motor innervation and cholinesterase localization induced by botulinum toxin in skeletal muscle of the mouse: differences between fast and slow muscles.
J Neurol Neurosurg Psychiatry. 1970 Feb;33(1):40-54
PMID: 4907278
-
Trophic regulation of acetylcholine sensitivity of muscle: effect of electrical stimulation.
Science. 1972 May 5;176(4034):514-6
PMID: 5032352
-
An electron microscopic study of the changes induced by botulinum toxin in the motor end-plates of slow and fast skeletal muscle fibres of the mouse.
J Neurol Sci. 1971 Sep;14(1):47-60
PMID: 5119451
-
Excitation and axonal flow: autoradiographic study on motoneurons intracellularly injected with a 3H-amino acid.
Exp Brain Res. 1970;10(2):197-204
PMID: 5434498
-
An investigation of spontaneous activity at the neuromuscular junction of the rat.
J Physiol. 1956 Jun 28;132(3):650-66
PMID: 13332600