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J Dudel

Publications and source records attributed to J Dudel.

At least 37 records · Page 2Linked to original sources

Functional and immunocytochemical identification of glutamate autoreceptors of an NMDA type in crayfish neuromuscular junction.

Functional and immunocytochemical identification of glutamate autoreceptors of an NMDA type in crayfish neuromuscular junction. J. Neurophysiol. 80: 2893-2899, 1998. N-Methyl--aspartate (NMDA) reduces release from crayfish excitatory nerve terminals. We show here that polyclonal and monoclonal antibodies raised against the mammalian postsynaptic NMDA receptor subunit 1 stain specifically the presynaptic membrane of release boutons of the crayfish neuromuscular junction. In crayfish ganglionic membranes, the polyclonal antibody recognizes a single protein band that is somewhat larger (by approximately 30 kD) than the molecular weight of the rat receptor. Moreover, the monoclonal (but not the polyclonal) antibody abolishes the physiological effect of NMDA on glutamate release. The monoclonal antibody did not prevent the presynaptic effects of glutamate, which also reduces release by activation of quisqualate presynaptic receptors. Only when 6-cyano-7-nitroquinoxatine-2,3,dione (CNQX) was added together with the monoclonal antibody was the presynaptic effect of glutamate blocked. These results show that presynaptic glutamate receptors of the crayfish NMDA type are involved in the regulation of neurotransmitter release in crayfish axon terminals. Although the crayfish receptor differs in its properties from the mammalian NMDA receptor, the two receptors retained some structural similarity.

Animals↗

Changes in the ultrastructure of surviving distal segments of severed axons of the rock lobster.

Peripheral axons of lobsters can survive for many months after axotomy. We have investigated the structural and ultrastructural changes seen after axotomy using confocal microscopy and electron microscopy. While the proximal stump had a normal appearance, the distal part of the cut axon became lobulated, and glial cells penetrated the original glial tube (axon tube) in which the axon normally runs. The changes proceeded from the cut end towards the muscle. As time elapsed, the axon tube seemed to be filled with glial cells, but interposed small profiles of the original axon could be identified by injection of a fluorescent dye into the axon. The glial cells send cytoplasmic projections deep into folds of the axolemma, and nuclei were found at the end of these long processes. Proliferation of glial cells was also seen.

Abdomen↗

Activation kinetics and single channel properties of recombinant alpha1beta2gamma2L GABA(A) receptor channels.

Recombinant alpha1beta2gamma2L GABA(A) receptor channels, transiently expressed in HEK 293 cells, were investigated using the patch-clamp technique in combination with a device for ultra-fast solution exchange. The dose-response relationship revealed an EC50 of 11.6 +/- 0.9 microM and saturated with 3 mM GABA. The slope between 0.001 and 0.01 mM GABA was 2.2 +/- 0.4, indicating at least three binding sites for GABA. The rise time decreased from about 120 ms at 0.001 mM GABA to about 0.8 ms at 10 mM GABA. Single channel openings were grouped in bursts with an average duration of 10.3 +/- 3.0 ms. More than 95% of the current was represented by a single channel slope conductance of about 29 pS.

Cell Line↗

Metabotropic glutamate autoreceptors on nerve terminals of crayfish muscle depress or facilitate release.

In lobster and crayfish neuromuscular junctions superfusion of the excitatory transmitter L-glutamate (L-Glu) has been shown to depress release from motor axon terminals. In crayfish the effect depended on the level of depolarization of the terminal, Glu facilitating release when large depolarizing stimuli were applied. The presynaptic inhibition by Glu could be blocked only with a combination of blockers of Glu channels of the AMPA and N-methyl-D-aspartate (NMDA) types. We report that the effects of Glu can be mimicked by superfusion of (1S,3R)-1-aminocyclo-pentane-1.3-dicarboxylic acid (t-ACPD), an agonist of vertebrate metabotropic Glu-receptors. However, in the recent run of experiments the majority of terminals reacted with facilitation of release on superfusion by Glu or t-ACPD, even when the depolarizing stimuli to the terminal or the control rate of release were low. Average facilitation by 5 microM Glu was by a factor of 4.5. Facilitory responses were not blocked by the combination of APV and CNQX, and thus two types of metabotropic receptors seem to be present, their proportion varying for unknown reasons.

Animals↗

A patch clamp study of a glutamatergic chloride channel on pharyngeal muscle of the nematode Ascaris suum.

Glutamatergic chloride channels on the pharyngeal muscle of Ascaris suum could be activated with glutamate and ivermectin and reversibly blocked with picrotoxin using the patch clamp technique. No activation was observed with GABA, glycine and acetylcholine. Most of the current was carried by the main subconductance state of 21 pS. Two smaller subconductance states occurred rarely. Open time histograms could be best fitted by two time constants of tau(o1) = 0.33 ms and tau(o2) = 9.8 ms present at all glutamate concentrations applied. The results suggest that some properties of the channel investigated here are different from other glutamatergic chloride channels reported from various animals.

Acetylcholine↗

Evoked transmitter release at neuromuscular junctions in wild type and cysteine string protein null mutant larvae of Drosophila.

Cysteine string proteins (CSPs) are synaptic vesicle proteins thought to be involved in neurotransmitter release. To obtain more information about the function of these proteins motor nerve terminals of wild type and CSP null mutant Drosophila larvae were depolarized and excitatory postsynaptic currents (EPSCs) were recorded with an extracellular electrode at 16-18 degrees C. At this temperature the amplitude of average EPSCs was reduced and the time constant of the exponential fit of the current decay was increased in CSP null mutant compared to wild type larvae. The number of quanta released per pulse was not different but the time course of release was distributed differently in CSP null mutant and wild type larvae. In measurements of the latency of quantal EPSCs the probability of release after a pulse reached a lower peak value and the decay after the peak was delayed in CSP null mutant compared to wild type larvae. In addition facilitation in response to twin-pulse stimulation was slightly increased at low levels of release in CSP null mutant larvae. It is concluded that CSPs are involved in neurotransmitter release and help to synchronise evoked release at nerve terminals.

Animals↗

The amplitude of quantal currents is reduced during short-term depression at neuromuscular synapses in Drosophila.

Focal extracellular excitatory postsynaptic currents were recorded to investigate short-term depression at glutamatergic Drosophila neuromuscular synapses. The amplitudes of quantal excitatory postsynaptic currents (qEPSCs) elicited before and after depolarizations eliciting large release were compared. Depression reduced the amplitude of the qEPSCs to 0.65 +/- 0.14 of control. Recovery from depression and of the receptor channels from desensitization follow a similar time course. Thus receptor desensitization seems to be involved in short-term depression at Drosophila neuromuscular junctions.

Animals↗

Desensitization and resensitization kinetics of glutamate receptor channels from Drosophila larval muscle.

Outside-out patches from wild-type Drosophila larval muscle were exposed to L-glutamate (glu) using a piezo-driven application system. Glu receptor channels opened and desensitized in response to rapid applications of 10 mM glu. Desensitization was fitted with an exponential function with a mean time constant of desensitization (tau d) of 15 ms in response to 10 mM glu. The tau d was concentration dependent and decreased to 6 ms (on average) with 0.7 mM glu and increased again to 12 ms (on average) in response to 0.5 mM glu. Desensitization in response to longer applications of glu was almost complete, but surprisingly, even a 1-ms pulse of 3 mM glu produced about 30% desensitization. In the presence of low glu concentrations, the response to a pulse was reduced and was about halved by preequilibration with 30 microM glu. Recovery from desensitization was not concentration dependent and was fitted with an exponential function with a mean time constant of 150 ms. During recovery the channels rarely opened. Kinetic schemes were fitted to these results, and a circular reaction scheme was found to fit the data best. An important feature of the scheme is desensitization from a lower ligated closed state. This allows substantial desensitization of synaptic receptor channels in response to quantal release of transmitter, in part without opening of the channels. Desensitization reduces the probability of the channels opening in response to a subsequent release for a period of time determined by the rate of recovery from desensitization and might serve as a form of molecular short-term memory.

Animals↗

Open channel and competitive block of the embryonic form of the nicotinic receptor of mouse myotubes by (+)-tubocurarine.

1. Embryonic-like nicotinic channels were studied in mouse myotubes. Channel currents were measured by patch clamping outside-out excised patches to which pulses of agonists and drugs could be applied by a liquid filament switch. The holding potential of the patches was generally around-10 to-40 mV. 2. Pulses of 100 microM or 1 mM acetylcholine (ACh) elicited average channel currents which reached a maximum open probability of 0.93 within 0.5-1.0 ms, decayed with a time constant of desensitization of 20-80 ms, and fell rapidly to zero at the end of the pulse. When such pulses together with increasing concentrations of (+)-tubocurarine (TC) were applied to outside-out patches, the time constant of current decay, tau, decreased beginning at concentrations of TC added to the test solution of > 10 microM, and the peak amplitude of the current decreased markedly at concentrations of TC of > 30 microM due to an open channel block of nicotinic channels by TC. 3. When the outside-out patches were pre-incubated with TC, the peak current elicited by pulses of 100 microM ACh or 1 mM ACh + TC decreased markedly, beginning with concentrations of TC > 30 nM due to a competitive block. 4. The results could be quantitatively modelled by computer calculations based on a circular reaction scheme containing desensitization. TC blocked the open state as well as the unliganded closed state of the embryonic-like nicotinic receptors of mouse myotubes. Also the blocked open channel was subject to desensitization. 5. The rates of block and unblock of the open channel were 3 x 10(6) M-1 S-1 and 0.8 S-1, respectively, and those of the competitive block were 0.5 x 10(6) M-1 S-1 and 0.1 S-1, respectively (at 20 degrees C).

Acetylcholine↗

A molecular scheme for the reaction between gamma-aminobutyric acid and the most abundant chloride channel on crayfish deep extensor abdominal muscle.

Single-channel measurements were performed with the aim of constructing a detailed molecular scheme for the reaction between gamma-aminobutyric acid (GABA) and a chloride channel of crayfish deep extensor abdominal muscle (DEAM). GABA was applied in pulses to outside-out patches of muscle membrane, and, based on the dose-response of the peak currents and of their rise times, a linear model with five binding steps has been proposed. Evaluation of the single-channel kinetics indicated at least three open states. Two of them originate most probably from the fully liganded receptor state and are grouped in mixed bursts due to their different life times. The third one appears independently, outside the bursts, and originates from a lower liganded receptor state. Simulations of the dose-responses and the open time distributions with this model led to a set of rate constants which generated relatively optimal fits.

Abdominal Muscles↗

Characterization and molecular reaction scheme of a chloride channel expressed after axotomy in crayfish.

The nerve to the deep extensor abdominal muscle (DEAM) in crayfish species Astacus astacus, containing four excitatory and one inhibitory motor axons, was cut in the third segment on one side of the animal. The distal axon stump was not subject to phagocytosis but was present for months after the axotomy. The two lateral bundles of the DEAM were prepared 4-6 weeks after the axotomy. The gamma-aminobutyric-acid-(GABA-) activated chloride channel of these bundles was characterized by applying pulses of GABA to outside-out patches of the muscle membrane and measuring the responses. Based on the dose/response relationship of the peak current and of the rise time as well as on single-channel kinetics, a detailed molecular scheme for the reaction of the channel with GABA was derived. This scheme contains four binding steps of the agonist to the receptor and two open states. Simulations of the dose/response relationships with this model resulted in a set of rate constants which generate proper fits. In comparison to the channels present in innervated muscles, the channels of denervated muscles have a higher affinity for GABA, a lower single-channel conductance, four versus five binding steps, and non-cooperative binding. The first three of these adaptations of denervated muscles correspond to similar changes in denervated vertebrate muscles.

Abdominal Muscles↗

Activation kinetics of glutamate receptor channels from wild-type Drosophila muscle.

Outside-out patches from wild-type Drosophila larval muscle were exposed briefly to L-Glutamate (Glu) using a piezo-driven application system. Glu in concentrations of 0.1 to 30 mM was applied and the responses to repeated applications of a given concentration were averaged. The peak current, î, and the current rise time, tr, from 0.1 î to 0.9 î were determined from the averages. Half-maximum activation of the channels was reached with approximately 2 mM Glu. î increased proportional to the power n = 3. 5 to n = 5.8 (average of four experiments, n = 4.4) for Glu concentrations between 0.3 and 0.5 mM. tr increased from approximately 0.2 ms at 10 mM Glu to a value of approximately 3.5 ms at 0.2 mM Glu. A linear reaction scheme with five binding steps preceding the channel-opening conformational change is proposed as the kinetic mechanism of channel activation and investigated in computer simulations. A set of rate constants assuming the same affinity for each binding site is found to describe the data better than one assuming positive cooperativity. The results are very similar to those for Glu-gated channels of crayfish and locust muscle, which is evidence for a common kinetic mechanism of these channels.

Animals↗

Kinetics of homomeric GluR6 glutamate receptor channels.

We studied the kinetics of the unedited version of rat GluR6 glutamate (glu) receptor channels, GluR6Q, in outside-out patches using a system for submillisecond solution exchange. Half-maximum activation of the channels was reached with approximately 0.5 microM glu. The maximum slope of the double-logarithmic plot of the peak current versus glu was approximately 1.3, indicating that at least two binding steps are necessary to open the channels. Currents in response to a pulse of 10 microM glu had a short rise time (10-90% of peak current) of approximately 220 microseconds at approximately 20 degrees C. The rise time increased with falling glu concentration, reaching approximately 6.0 ms with 10 microM glu. In the continued presence of glu, the channels desensitized, and this desensitization can be described with a single time constant of approximately 7.0 ms for a pulse of 10 microM glu. The steady-state current in response to a long pulse of 10 microM glu was below 1/280th of the peak current. The time constant of desensitization was found to be independent of concentration between 30.0 and 0.3 microM glu, but to be increased for lower concentrations. After a short pulse of 1 ms duration and 10 or 0.3 microM glu, currents decayed with a time constant of approximately 2.5 ms. Recovery from desensitization after a pulse took approximately 5 s, and the half-time of recovery was approximately 2.2 s. Continuous application of low concentrations of glutamate reduced the peak currents in response to a pulse of 10 microM glu markedly. Fifty percent response reduction was observed in the continuous presence of approximately 0.3 microM glu. Our results for homomeric GluR6 agree with a cyclical reaction scheme developed for completely desensitizing, glu-activated channels on crayfish muscles.

Animals↗

Glutamate depresses release by activating non-conventional glutamate receptors at crayfish nerve terminals.

The present study shows that release of glutamate from crayfish nerve terminals is inhibited at low depolarizing current pulses by glutamate, N-methyl-D-aspartate (NMDA) and quisqualate. These agonists elicit inhibitory effects at concentrations as low as 10(-8) M (quisqualate) and 10(-7) M (glutamate and NMDA). The NMDA-mediated inhibition is blocked by (+/-)-2-amino-5-phosphonovaleric acid (APV). The quisqualate-mediated inhibition is blocked by 6-cyano-7-nitroquinoxaline-2,3-dione (CNQX). Both CNQX and APV are needed to block glutamate-mediated inhibition. The inhibition of release is not accompanied by a detectable change in presynaptic membrane conductance at the secondary branch. Using fura-2, Ca2+ accumulation during repetitive stimulation (100 Hz) was monitored in single release boutons. Inhibition of release, elicited by 10(-4) M glutamate, was not associated with a reduction in the accumulation of Ca2+. We show that the glutamate released from a single or a few release boutons during normal activity acts similarly to glutamate added externally, i.e. it inhibits its own release.

2-Amino-5-phosphonovalerate↗

Open channel block by physostigmine and procaine in embryonic-like nicotinic receptors of mouse muscle.

Embryonic-like nicotinic channels were studied in mouse myotubes. Channel currents were measured by patch-clamping outside-out excised patches to which pulses of agonists and drugs could be applied by a liquid filament switch. The holding potential of the patches was generally around 40 mV. Pulses of 10(-4) M acetylcholine elicited average channel currents which reached a peak open probability, P(o,peak,) of 0.93 within 0.5 ms and decayed with a time constant of desensitization of 20-80 ms. When physostigmine (10(-5) to 10(-3) M) or procaine (3 x 10(-5) to 10(-3) M) was added to the acetylcholine pulses, a fast decay component of the current appeared which shortened to a time constant of 0.5 ms for the maximal drug concentrations. The fast decay was followed by a slow one which declined in amplitude with increasing concentrations of the drugs. After the end of pulses of 10 M acetylcholine plus 3 x 10(-4) M physostigmine the average current rose again, reaching a peak with approximately 5 ms delay, and then decayed slowly. The amplitude of this recovery current was approximately 0.4 P(o,peak) after 5 ms pulses and decreased with increasing pulse duration due to desensitization. The results can be quantitatively modelled based on a circular reaction scheme involving desensitization. Physostigmine and procaine bind to the open state to cause channel block. Also, the blocked channel was subject to desensitization. The rate constants of block were 6 x 10(6) M(-1) s(-1) for physostigmine and 2 x 10(6) M(-1) s(-1) for procaine, and the rate of unblocking was 200 s(-1) for both blockers (at -40 mV and 20 degrees C).

Animals↗

Immunoglobulin G from a patient with Miller-Fisher syndrome rapidly and reversibly depresses evoked quantal release at the neuromuscular junction of mice.

A neuromuscular blocking factor has been described in the serum of patients with Miller-Fisher syndrome (MFS). We here examined the effect of immunoglobulins (Ig) on neuromuscular transmission in mice recording quantal endplate currents by means of a perfused macro-patch-clamp electrode. Ig and IgM- and IgG-fractions from an anti-GQ1b-positive patient with typical MFS were highly purified. After application of MFS-IgG, quantal release decreased 1000-fold within 2 min. Returning to control solution the average release came back to the baseline level within 4 min. In contrast, control-IgG and MFS-IgM did not cause any blocking effect. The very fast and fully reversible presynaptic blockade of release caused by the highly purified IgG-fraction may be one factor producing muscle weakness in MFS.

Animals↗

Recordings of glutamate-gated ion channels in outside-out patches from Drosophila larval muscle.

Outside-out patches of membrane were excised from muscle fibers 6 and 7 of third-instar wild-type Drosophila larvae. Channels were observed to open in response to short pulses of L-glutamate. At a holding potential of -60 mV, the channels opened to one main conductance level of about 120 pS. The current-voltage plot for the channels was linear and reversed around 0 mV holding potential. The channels were also activated by quisqualate but not by aspartate, N-methyl-D-aspartate (NMDA), kainate, glycine, gamma-aminobutyric acid (GABA) and acetylcholine. At high glutamate concentrations (3 or 10 mM), channel activation reached a peak within 0.3 ms. The channels opened in 'bursts' flickering between open and closed states. The channels opened only for a few milliseconds after switching on the glutamate and channel activity declined after the initial surge to zero with time constants between 5 and 20 ms. During applications of low glutamate concentrations (0.2-0.5 mM) to the same patch the channels opened much less frequently and during most applications no openings were observed. The openings observed were short and 'bursts' of openings were rare. Two exponential components were identified in the open-time distribution obtained with pulsed applications of glutamate (0.5-10 mM) with time constants of about 0.1 and 2.0 ms. The kinetics of the channels seem to be similar to the kinetics of certain glutamate gated channels found on muscle of crayfish and locust.

Animals↗

GABAergic inhibition of crayfish deep extensor abdominal muscle exhibits a steep dose-response relationship and a high degree of cooperativity.

A patch-clamp study was done to characterize the recently found GABAergic (i.e. gamma-aminobutyric acid) inhibitory synaptic channels of crayfish deep extensor abdominal muscle. Outside-out patches were rapidly activated by GABA to measure the dose/response curves for the open probability of the channels, Po, and the rise time, tr, (time from Po = 0.1 to Po = 0.9). In some of the patches the GABA-activated currents decayed due to desensitization and such patches were not studied further. Rare channel openings were elicited with 0.1 mM GABA. The Po at this low concentration of GABA was 0.0005 to 0.01. Application of 10 mM GABA was necessary to reach the maximal Po of 0.9. The slope of the dose/response relationship in the double logarithmic plot was 5.4 +/- 1.1 (mean +/- SD; n = 9) between 0.1 mM and 0.2 mM GABA. The plot of tr versus GABA concentration had a peculiar shape, recently found to be characteristic for positive cooperativity of the binding sites. tr increased from a minimum at 10 mM GABA with declining concentrations of GABA and reached a peak at 0.4 mM GABA. Below 0.4 mM GABA, tr decreased again. With 0.2 mM GABA tr was 0.40 +/- 0.1 (mean +/- SD; n = 4) of the peak value measured at 0.4 mM GABA. Simulations were compared with the experimental results and a linear reaction scheme with five binding sites for GABA was established to describe the dose/response curves for Po and tr.

Abdominal Muscles↗