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S G Cull-Candy

Publications and source records attributed to S G Cull-Candy.

At least 73 records · Page 4Linked to original sources

Properties of end-plate channels in rats immunized against acetylcholine receptors.

1. Rats injected with purified acetylcholine receptors (AChR) extracted from electric organs of Torpedo marmorata showed clinical symptoms consistent with the development of experimental myasthenia gravis.2. Sera of rats with this disease contain high levels of anti-AChR antibodies. However, no simple correlation was found between antibody titre and miniature end-plate current (m.e.p.c.) amplitude.3. M.e.p.c.s. at the end-plates of rats injected with AChR (Anti-R), emulsified in complete Freund Adjuvant (CFA), were reduced to about one third the size of controls taken from rats injected only with CFA (Anti-CFA). Mean m.e.p.c. (Anti-R) = 0.73 +/- 0.06 nA; mean m.e.p.c. (Anti-CFA) = 2.43 +/- 0.12 nA (V(m) = -80 mV, T = 20 degrees C).4. The m.e.p.c. decay time constant, tau(m.e.p.c.), is similar at immunized and control rat end-plates. tau(m.e.p.c.) (Anti-R) = 1.32 +/- 0.06 msec; tau(m.e.p.c.) (Anti-CFA) = 1.31 +/- 0.06 msec (V(m) = -80 mV, T = 20 degrees C).5. The end-plate current decay time constant, tau(e.p.c.), is similar at immunized and control end-plates and in both cases depends exponentially on membrane potential. The change in membrane potential required to produce an e-fold change in tau(e.p.c.) is 102.0 +/- 5.72 mV at immunized (Anti-R) end-plates and 92.3 +/- 6.14 mV at control (Anti-CFA) end-plates at T = 10 degrees C.6. Acetylcholine noise was examined at immunized and control rat end-plates at 10 degrees C. Analysis of noise indicates that the single channel conductance, gamma, and mean channel life-time, tau(noise), are essentially unchanged by immunization against AChR. gamma (Anti-R) = 13.15 +/- 0.53 pS; gamma (Anti-CFA) = 12.50 +/- 0.50 pS; tau(noise) (Anti-R) = 2.9 +/- 0.18 msec; tau(noise) (Anti-CFA) = 2.68 +/- 0.14 msec (V(m) = -80 mV, T = 10 degrees C).7. Mean quantal content and Ca(2+) dependence of the end-plate potential are unchanged at immunized end-plates.8. It is concluded that at immunized end-plates the number of activated receptor-channel complexes is reduced without modification of single channel properties. In this respect the immunized rat end-plate is a good model for myasthenia gravis affected human end-plates.

Acetylcholine↗

Single glutamate-activated channels recorded from locust muscle fibres with perfused patch-clamp electrodes.

1. Glutamate-activated single channels have been examined with conventional and internally perfused patch-clamp electrodes applied to the extrajunctional membrane of locust muscle fibres which were usually treated with concanavalin A to reduce desensitization. Channels opened by glutamate and other agonists have been compared.2. Recording patches were selected where there appeared to be only one active channel under the pipette. The conductance for single glutamate-activated channels was 150 pS and was not markedly dependent on clamp potential. The lifetimes of the channels were usually exponentially distributed with a mean of tau(glutamate) = 2.3 +/- 0.12 msec, T = 23 degrees C, V(m) = -60 mV.3. Channels opened by fluoroglutamate had a mean lifetime of tau(fluoroglutamate) = 1.4 +/- 0.1 msec; channels opened by quisqualate had a mean lifetime of tau(quisqualate) = 6.4 +/- 1.0 msec. The conductances of channels opened by fluoroglutamate, quisqualate and glutamate were not significantly different.4. The behaviour of individual receptor-channel complexes has been examined at various concentrations of glutamate. Drug solutions were applied through an internal perfusion pipette which allowed exchange of the solution in the patch-electrode tip within 10 sec. The distribution of channel closed times could be fitted with a single exponential. Channel lifetime was not markedly dependent on glutamate concentration (30-600 mum) whereas the channel closed time decreased with increasing glutamate concentration.5. The reciprocal of channel closed time vs. glutamate concentration had a slope value of 1.85 on logarithmic co-ordinates. The approximately second power dependence of net forward reaction rate on glutamate concentration suggests that at least two glutamate molecules activate a single receptor-channel complex.6. The apparent dissociation constant for the glutamate-receptor complex is large, being about 300-500 muM. If the receptors have an equally low affinity for neurally released transmitter, then only a small amount of the transmitter packet is expected to bind to receptors. Quisqualate and glutamate have similar receptor affinities whereas receptor affinity for fluoroglutamate is smaller.

Animals↗

Visualization of satellite cells in living muscle fibres of the frog.

Satellite cells were visualized in living muscle fibres of the frog. Single fibres or bundles consisting of a few fibres were isolated after treatment with collagenase, and viewed under the light microscope. Subsequent electron microscopy of identified cells confirmed that they were satellite muscle cells. Under the light microscope, satellite cells appear as fusiform cells, tapering into long fine processes usually orientated parallel to the muscle fibre axis. Horseradish peroxidase injected into the muscle fibre was not transferred to the satellite cells.

Animals↗

Induction of action potentials in cultured slow muscle fibres of the frog.

1. Slow muscle fibres of the frog were maintained in a simple organ culture system for up to 28 days at 18 degrees C. Slow fibres cultured for one week resembled innervated fibres in their lack of ability to generate an action potential. 2. By 10 days a few fibres had acquired the action potential mechanism and in muscles cultured for 28 days all slow fibres examined were capable of generating action potentials most of which reached or exceeded 0 mV membrane potential. 3. Slow muscle fibres which were denervated for two weeks in vivo retained their ability to generate overshooting action potentials after 4 weeks of culture. Thus, in the culture system described, slow muscle fibres are capable of developing action potentials and the action potential mechanism in these fibres remains for at least one month in culture.

Action Potentials↗

On the release of transmitter at normal, myasthenia gravis and myasthenic syndrome affected human end-plates.

1. Transmitter release has been studied at normal, myasthenia gravis (m.g.) and myasthenic syndrome (m.s.) affected human end-plates. At normal and diseased end-plates evoked transmitter release is Poisson for a mean quantal content, m less than ten. 2. The relation between log m and log [Ca]o, at normal and m.g. end-plates is linear, with a slope of 3.3-3.4. The value of m at m.g. end-plates is about five times larger than normal, below Ca 0.7 mM (Mg, 2mM). This difference in m is reduced at higher Ca levels. 3. The slope of the relation between log m.e.p.p. frequency and log [K]o is similar at normal and m.g. end-plates. Over its linear portion the relationship has a slope of approximately 6. 4. Fluctuations in the latency of evoked transmitter release were compared at normal and m.g. nerve terminals. At normal end-plates the probability of release reaches a peak about 0.3-0.4 msec after unitary e.p.p.s of the shortest latency and returns to zero about 1.0 msec after the peak. At m.g. end-plates the distribution of latencies shows less uniformity. 5. At m.s. end-plates m is approximately 5 in normal Ringer solution (2 mM-Ca, 1 mM-Mg). The relation between log m and log [Ca]o is linear, with a slope of 1.0-1.5. The K dependence of m.e.p.p. frequency appears reduced at m.s. end-plates. 6. Assuming a co-operative mechanism for transmitter release at normal human motor nerve terminals, the dissociation constant for the Ca complex is about 1.6X10(-3) M and the dissociation constant for the Mg complex is about 1.0X10(-3) M. 7. It is concluded that the presynaptic changes, at m.g. end-plates, are not the primary cause of the defect in nerve muscle transmission. At m.s. end-plates the presynaptic changes are sufficient to account for failure in transmission. Possible mechanisms for the abnormalities in transmitter release are considered.

Action Potentials↗

End-plate currents and acetylcholine noise at normal and myasthenic human end-plates.

1. The amplitudes and time courses of miniature end-plate currents (m.e.p.c.s) have been compared at normal and myasthenic (MG) human end-plates studied under voltage clamp. The m.e.p.c. amplitude at MG end-plates is reduced to about one third normal; mean m.e.p.c. (normal) = 2.6 +/- 0.2 nA, mean m.e.p.c. (MG) = 1.0 +/- 0.1 nA. The decay time constant of m.e.p.c.s (tau m.e.p.c.) is very similar at normal and MG end-plates; tau m.e.p.c. (normal) = 1.70 +/- 0.1 msec, tau m.e.p.c. (MG) = 1.80 +/- 0.13 msec (Vm = - 80 mV. T = 23 degrees C). 2. The equilibrium potential of the end-plate current (e.p.c.) at normal and myasthenic human end-plates is close to 0 mV. 3. Decay time constants tau e.p.c. and tau m.e.p.c. increase exponentially with membrane hyperpolarization. The voltage sensitivity of the time constants was similar at normal and MG end-plates. 4. Both normal and myasthenic e.p.c.s are greatly prolonged in the presence of neostigmine (10(-6) g/ml.). At the same time the voltage sensitivity of tau e.p.c. is slightly reduced. 5. In response to steady ionophoretically applied ACh the mean membrane currents obtained at MG end-plates were smaller than the normal under similar conditions. 6. Analysis of end-plate current noise obtained during the steady application of acetylcholine (ACh) to voltage clamped normal and MG human end-plates showed that the amplitude of the elementary current event (gamma) and the average channel life-fime (tau noise) was similar at the two sites: tau noise (normal) - 1.54 +/- 0.04 msec, tau noise (MG) = 1.60 +/- 0.11 msec; gamma(normal) - 22.3 +/- 1.57 PS, gamma (MG) = 20.25 +/- 1.93 pS (Vm = - 80 mV, T = 23 degrees C). The voltage sensitivity of the channel life time, measured from end-plate current noise, was similar at normal and MG end-plates. 7. At normal human end-plates a packet of transmitter opens about 1500 channels whereas at MG end-plates a packet opens only about 600 channels. It is calculated that the size of the transmitter packets released from MG-terminals is at least as large as the packet of the ACh released from normal human nerve terminals.

Acetylcholine↗

Glutamate sensitivity and distribution of receptors along normal and denervated locust muscle fibres.

1. Factors influencing the glutamate sensitivity of extrajunctional regions of innervated and denervated locust muscle fibres have been investigated. Properties of the two types of extrajunctional glutamate receptors, D- and H-receptors, have been studied in regions of high and low sensitivity. 2. The low level of extrajunctional sensitivity which is normally present in innervated fibres was 20-30 times higher at the muscle-tendon junction than at other sites; increased sensitivity extended about 20-40 micron from the tendon. After denervation or localized damage the entire extrajunctional sensitivity was increased approximately 100 times above control levels. 3. Applying L-glutamate (which activates D- and H-receptors) and DL-ibotenate (which activates H-receptors) from multibarrelled micropipettes showed that increased extrajunctional sensitivity resulted from an increase in D-receptors while H-receptors were apparently unchanged. 4. Coulomb dose vs. response relationships for the action of glutamate on D-receptors were similar when obtained at the muscle-tendon junction and nerve-muscle junction of innervated fibres or at extrajunctional regions in denervated fibres. 5. Time course of onset and percentage desensitization of D- and H-receptors in innervated fibres were similar. The percentage desensitization of D-receptors in extrajunctional regions of high sensitivity was greatly reduced. 6. It is suggested that D- and H-receptors are independent and that the trigger for increased receptor sensitivity acts specifically on D-receptors. In all respects so far studied, the D-receptors resemble extrajunctional ACh-receptors in vertebrate muscle.

Animals↗

Glutamate current noise: post-synaptic channel kinetics investigated under voltage clamp.

1. Analysis of voltage-clamped noise has been used to investigate the operation of glutamate receptors and associated channels at the locust nerve-muscle junction. Channels opened by glutamate and an agonist have been compared. 2. Glutamate-induced current fluctuations have a power spectrum with a single (1/frequency2) component which fits a simple model for the operation of channels. The form of the spectra for glutamate voltage noise and for 'background' noise has been determined. 3. The single channel conductance was estimated from the spectra, gamma glutamate = 122 +/- 0.4 (S.E.) pS. This estimate is independent of membrane potential and of the amplitude of membrane current change produced by glutamate. 4. The rate constant, alpha, for the closing of glutamate-operated channels depends exponentially on membrane potential, conforming to the equation alpha = approximately alphaeetaVm (approximately alpha = 0.26 +/- 0.014 msec-1, eta = 0.0054 +/- 0.001 msec-1); the duration of the channel lifetime (tau) decreases with hyperpolarization. Membrane potential dependence of alpha reduces as temperature is lowered. 5. For glutamate-operated channels, the temperature dependence of alpha and gamma fits the Arrhenius equation; alpha and gamma decrease exponentially as a function of T-1 (degrees K) with a descrete change in slope at about 6 degrees C, indicating a change in the activaiton energies of the respective rate processes. 6. Spectra of quisqualate-induced current fluctuations have the same form as spectra for glutamate noise. The single channel conductance was estimated from the spectra, gamma quisqualate = 120 +/- 3.9 (S.E.) pS. 7. The rate constnt, alpha, for the closing of quisqualate-induced channels depends exponentially on membrane potential. The duration of the open state for quisqualate channels was 2.2 times longer than for glutamate channels. 8. For glutamate receptors the voltage-sensitivity of the channel life-time is in the opposite direction to that of ACh receptors in vertebrate muscle. Possible explanations for the sharp change in the activation energy of the rate processes associated with the channel are discussed.

Alanine↗

The effects of taipoxin and notexin on the function and fine structure of the murine neuromuscular junction.

The isolated neurotoxins taipoxin and notexin from the venoms of the Elapidae, Oxyuranus scutellatus and Notechis scutatus scutatus respectively cause a neuromuscular block when administered to the mouse in vivo or to the phrenic nerve-hemidiaphragm preparation in vitro. The block is preceded by a latency period during which the toxins bind irreversibly to the nerve. The period is shortened by nerve activity. The frequency of the miniature end-plate potentials is gradually reduced, almost to zero, and their amplitude distribution is altered; small and very large miniature endplate potentials appearing. Ultrastructurally the endplates are altered in the presynaptic portion but not in the postsynaptic part. In an early stage of poisoning the axolemma has an increased number of omega-shaped indentations similar in size to synaptic vesicles. At a later stage, when the animals die of respiratory paralysis, the axolemmal indentations are more numerous and the synaptic vesicles greatly reduced in number, the remaining vesicles having a variable and frequently larger than normal size. When impulse activity in the phrenic nerve is stopped by cutting the nerve before the administration of toxin there is no reduction in the number of synaptic vesicles, only the appearance of an increased number of axolemmal indentations. It is suggested that taipoxin and notexin irreversibly interfere with the formation of synaptic vesicles by arresting vesicle membrane recycling at the level of the axolemma. When the pre-existing store of vesicles is depleted, by nerve activity, a neuromuscular block results.

Acetylcholine↗

Two types of extrajunctional L-glutamate receptors in locust muscle fibres.

L-glutamate applied iontophoretically to the extrajunctional membrane of locust muscle produced a biphasic response, depolarization followed by hyperpolarization (i.e. DH-response). Applying L-glutamate and DL-ibotenate from multibarrel micropipettes allowed comparison of their extrajunctional responses. While glutamate produced a two component response, ibotenate produced a single component H-response. 2. The equilibrium values for the H-responses to L-glutamate and DL-ibotenate applied at the same extrajunctional site were very similar. The equilibrium value was 59-5 +/- 5-4 mV indicating an increased Cl- conductance. The H-response was reversed and abolished in Cl- free medium. Picrotoxin 10(-3) M selectively blocked the H-component of the DH-response in a reversible manner. 3. The possibility that the D- and H-responses arose from the activation of two distinct types of extrajunctional glutamate receptors was investigated. Desensitization of the glutamate H-response by ibotenate and vice versa indicated the presence of an extrajunctional H-receptor sensitive to glutamate and ibotenate and an extrajunctional D-receptor sensitive to glutamate and insensitive to ibotenate. The junctional depolarizing response to glutamate was insensitive to ibotenate. 4. The presence of junctionally occurring H-receptors could not be discounted, although, if present, they were not measurably activated by the excitatory transmitter. 5. Double logarithmic plots (coulomb dose vs. response) for the actions of glutamate and ibotenate on H-receptors had values of 0-75, indicating that both drugs act on the same receptors with similar mechanisms. The value for the action of glutamate on the D-receptors was 1-5. 6. While the extrajunctional D-receptors show analogies to the extrajunctional ACh receptors in vertebrate muscle, the significance of the extrajunctional H-receptors remains speculative.

Animals↗

Effects of botulinum toxin on neuromuscular transmission in the rat.

1. Botulinum toxin (BoTx) type A partially blocks spontaneous transmitter release from nerve terminals in the rat. Minature end-plate potentials (m.e.p.p.s) are present at all end-plates, initially with a low frequency but increasing with time after posoning. Their amplitude distribution is at first skew with a predominace of very small m.e.p.p.s but, after a few days, larger than normal m.e.p.p.s appear. 2. Tetanic nerve stimulation, Black Widow Spider Venom, the Caionophore A 23187 or mechanical damage to nerve terminals increases the frequency of m.e.p.p.s and alters the amplitude distribution of m.e.p.p.s towards a normal Gaussian one; the m.e.p.p. size approaches that seen at normal end-plates. This was seen at any time after poisoning. 3. Nerve stimulation gives rise to end-plate potentials (e.p.p.s) of low amplitude and high failure rate. Statistical analysis indicates that evoked release is quantal in nature and follows Poisson statistics, quantum size being initially very small, but after a few days approaching normal size. Short-term tetanic nerve stimulation reversibly increases the quantum content of e.p.p.s and during early stages of paralysis long-term (2 hr) stimulation causes an apparently permanent increase in quantum size. 4. Raising the extracellular Ca concentration from 2 to 16 mM increases the frequency of m.e.p.p.s in normal muscle but not in BoTx poisoned ones. K-free medium or ouabain, which are believed to raise the intracellular Ca concentration in nerve terminals, similarly increases m.e.p.p. frequency in normal but not in poisoned muscles. When the Ca-ionophore A 23187 is used together with high extracellular Ca (greater than 4 mM) massive release of transmitter occurs from poisoned terminals. 5. The extracellular Ca concentration which causes a certain level of transmitter release in reponse to nerve impulses is considerably higher at BoTx poisoned end-plates than at normal ones. The slope value for Ca dependence of transmitter release is about 1-5 compared with about 3 at normal end-plates. 6. Tetraethylammonium (TEA) greatly increases the amount of transmitter released by nerve impulses and restores neuromuscular transmission during all stages of poisoning, although it has not effect on spontaneous transmitter release. In the presence of TEA the power relation between Ca concentration and quantum content at the BoTx poisoned end-plate is similar to that seen at normal end-plates. 7. It is suggested that in BoTx poisoning the mechanism for transmitter release has a reduced sensitivity to Ca, and the level for activation by intracellular Ca is elevated. Once the intracellular concentration of Ca is raised to this level, by tetanic nerve stimulation, mechanical injury to nerve terminals, the Ca-ionophore or the prolongation of the nerve action potential with TEA, augmented transmitter release occurs, similar to that which occurs in normal nerve terminals at a lower level of Ca.

Animals↗