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F Eusebi

Publications and source records attributed to F Eusebi.

At least 73 records · Page 4Linked to original sources

Tunicamycin increases desensitization of acetylcholine receptors in cultured mouse muscle cells.

Whole-cell currents activated by acetylcholine (AcCho) were recorded in C2 mouse myotubes before and after prolonged treatment with tunicamycin, an inhibitor of glycosylation. In control cells the AcCho-induced currents decayed slowly even in the continuous presence of AcCho. After 24 hr of treatment with tunicamycin AcCho still elicited currents, but their size was significantly reduced and their decay was greatly accelerated. The binding of 125I-labeled alpha-bungarotoxin, a specific and irreversible antagonist of muscle AcCho receptors, was greatly reduced after tunicamycin treatment, and an equivalent reduction was observed after a long-lasting application of the AcCho agonist carbachol. We suggest that, after inhibition of glycosylation by tunicamycin, AcCho receptors are expressed correctly on the plasma membrane but these receptors desensitize more rapidly and are less efficient in binding alpha-bungarotoxin.

Animals↗

Interleukin-2 lengthens extrajunctional acetylcholine receptor channel open time in mammalian muscle cells.

The effect of interleukin-2 (rIL-2) on nicotinic acetylcholine receptors (nAChR) was examined on cultured muscle fibres isolated from the flexor digitorum brevis muscle (FDB) of the rat and on aneural mouse cultured C2 myotubes. Intracellular measurement of the sensitivity to iontophoretically applied ACh demonstrated that the sensitivity of the extrajunctional nAChRs in cultured fibres showed a transient increase after application of rIL-2 (2,000-3,000 units/ml). Cell-attached patch-clamp experiments on the same fibres proved that rIL-2 (2,000 units/ml) induces a significant increase in the mean open time of the extrajunctional nAChR channel. The other channel parameters were not significantly modified. The same applied also to aneural mouse patch-clamped C2 myotubes exposed to rIL-2 (2,000 units/ml). In freshly dissociated fibres no effects on nAChR channels were observed following rIL-2 application. 125I-rIL-2 binding experiments on either 7-day cultured or freshly dissociated adult muscle fibres showed that a specific binding with a Kd of 2.07 +/- 0.4 nM develops in cultured fibres but fails to occur immediately after dissociation. It is concluded that rIL-2 modulates the duration of extrajunctional nAChR channels in both myotubes and adult muscle cells, and that this effect is probably due to the activation of a second messenger system.

Animals↗

Modulation of voltage-activated channels by calcitonin gene-related peptide in cultured rat neurones.

1. Whole-cell currents were recorded from cultures of dissociated neocortical neurones of the rat. Rat alpha-calcitonin gene-related peptide (CGRP; 1 nM-1 microM) caused significant dose-dependent decreases in the voltage-activated transient (A-current) and delayed rectifier K+ currents. Forskolin (10 nM-20 microM) mimicked this effect. Peak K+ currents were gradually decreased after loading neurones with cyclic AMP (100 microM) through patch pipettes. CGRP was ineffective in neurones loaded with cyclic AMP. 2. CGRP (0.5-2 microM) increased cytosolic cyclic AMP concentration and this effect was mimicked by forskolin (5-40 microM). 3. CGRP (0.1-1 microM) reduced high-threshold Ca2+ currents; as did forskolin (5-20 microM) and cyclic AMP loaded into the neurones. In contrast, low-threshold Ca2+ currents were not affected by any of these agents. 4. Voltage-activated Na+ currents were significantly reduced by both CGRP (0.1-1 microM) and forskolin (5-20 microM). A similar effect was observed when cells were loaded with cyclic AMP. 5. We conclude that, in neocortical neurones, CGRP attenuates voltage-activated currents by stimulating the intracellular cyclic AMP signalling system.

Animals↗

Interleukin-2 suppresses established long-term potentiation and inhibits its induction in the rat hippocampus.

The effects of recombinant interleukin-2 (rIL-2) on the potentiation of the synaptic transmission were studied in rat hippocampal slices by using extracellular field potential recordings. The application of rIL-2 inhibited the induction of both short-term (STP) and long-term potentiation (LTP) in a dose-dependent manner. In addition, rIL-2 (1000 U/ml) reduced both post-tetanic potentiation (PTP) and LTP maintenance phase. The possible involvement of rIL-2 action on the synaptic potentiation with the enzymatic activity of protein kinase systems is discussed.

Animals↗

Effect of calcitonin gene-related peptide on synaptic transmission at the neuromuscular junction of the frog.

The effects of calcitonin gene-related peptide (CGRP) on synaptic mechanisms were studied at the frog neuromuscular junction by using classical electrophysiological techniques. CGRP reduced the quantal content of evoked neurotransmitter release, as well as the sensitivity of postsynaptic nicotinic acetylcholine receptors (AChRs). No effect on the frequency of the miniature end-plate potentials or on the desensitization of the AChRs could be observed. Both the measured effects may depend on the stimulation of the cyclic AMP second messenger system.

Animals↗

Glycosylation is required for maintenance of functional voltage-activated channels in growing neocortical neurons of the rat.

Voltage-activated currents were studied in whole-cell patch-clamped rat neocortical neurons growing in culture and treated with tunicamycin (TU), an inhibitor of protein N-glycosylation. The size of the Na+ current decreased progressively in the presence of TU (1-2 microM). This decrease was faster in growing 5-14 day-old neurons (to ca. 40% of control after 24 hours of treatment) than in fully grown 20-40-day-old neurons (to ca. 40% of control after 68 hours of treatment). The fast transient K+ current (A-current) was abolished, and the delayed rectifier K+ current was markedly reduced by a 24 hour treatment with TU (1-2 microM) in growing neurons. In contrast, in fully grown neurons these currents were unaffected by the same TU treatment. The size of the Ca2+ current was significantly reduced following a 24 hour treatment with TU (1-2 microM) in neurons at early stages of differentiation, but remained stable in 20-40-day-old neurons. It is concluded that protein glycosylation, presumably of the channel proteins themselves, is important for the functional expression of voltage-activated channels in embryonic cortical neurons during the early stages of cell growth in culture; the channels become less dependent on glycosylation in mature neurons.

Aging↗

Regulation of acetylcholine receptor desensitization in mouse myotubes by cytosolic cyclic AMP.

Whole-cell currents activated by bath applications of acetylcholine (ACh) (10-30 microM) were recorded from patch-clamped myotubes of the mouse C2 cell line. Increasing concentrations of forskolin caused a dose-dependent fast decay of ACh-activated currents as compared to the long-lasting ACh-currents in control cells. The forskolin-induced modulation of nicotinic ACh receptor (nAChR) desensitization was proportional to the drug-induced elevation in the cyclic AMP (cAMP) cellular content. Furthermore, an increase in the rate of decay of the ACh-current response, which paralleled an elevation in cAMP cellular content, was caused by treatment with a calcitonin gene-related peptide (1 microM), 8-Br-cAMP (0.5 mM), or by loading the myotubes with cAMP. These results therefore indicate that the desensitization of nAChR is a cAMP-related process in C2-myotubes.

8-Bromo Cyclic Adenosine Monophosphate↗

Acetylcholine-activated currents in quail myotubes expressing viral oncogenes.

Acetylcholine-activated currents were recorded in cultured myotubes arising from embryonic quail myoblasts transformed by the v-src and v-ras oncogenes. In src-myotubes, the whole cell inward current decayed more slowly than in non-transformed controls. In ras-myotubes, the current had a faster decay and smaller amplitude than in the controls. The single-channel conductance and mean open times recorded from cell-attached patches were similar in transformed and control cells. However, in ras-myotubes the frequency of channel openings strongly decreased with time. It is concluded that oncogenic tyrosine-specific protein kinase (v-src product) and G-like p21 protein (v-ras product) can induce differential changes in the function of nicotinic ACh receptor, perhaps related to specific biochemical events elicited in the establishment of the transformed state.

Acetylcholine↗

Effects of protein kinase C stimulation and free Ca2+ rise in mammalian egg activation.

Protein phosphorylation activity, chromosome segregation, and cortical granule exocytosis (CGE) have been studied in mouse eggs activated parthenogenetically by specific PKC stimulators such as 4 beta-phorbol 12-myristate 13-acetate (PMA) and 1-oleyl-2-acetylglycerol (OAG), or by agents inducing an immediate increase in cytosolic calcium concentration ([Ca2+]i) such as ethanol and Ca-ionophore A23187. When protein phosphorylation activity of mouse eggs was analyzed 10 min after different activation treatments, the phosphorylation of a 32 kDa polypeptide was a feature common to all different parthenogenetic agents used. The appearance of such labeling was independent of an increasing [Ca2+]i, as indicated by direct measurements of 1) cytosolic Ca2+ concentration with fura-2 and 2) exogenous Ca2+ entrance into activated eggs. Emission of the second polar body was blocked in PMA-elicited parthenogenones, whereas it was apparently normal in OAG-treated eggs, unless the eggs were continuously exposed to OAG. CGE was almost immediate in ethanol-activated eggs, but in PMA-treated cells, it occurred significantly later, with a timing corresponding to that found for the appearance of sustained Ca2+ oscillations in this system. Here, we propose that in mammalian eggs 1) PKC stimulation represents an early regulatory step in egg activation; 2) this kinase activity is turned off before the second meiotic cleavage; and 3) cytosolic free Ca2+ rise is essential for CGE occurrence.

Animals↗

Regulation of acetylcholine receptor function by the phorbol ester TPA in rat skeletal muscle.

(1) The effect of the phorbol ester 12-O-tetradecanoylphorbol-13-acetate (TPA), a specific activator of the protein kinase C (PrkC), on the function of junctional nicotinic acetylcholine receptors (nAChR) was examined on muscle fibres isolated from the M. flexor digitorum brevis of the rat. (2) In the presence of TPA the sensitivity of the whole endplates to iontophoretically applied ACh exhibited multiphasic oscillations: an early decrease followed by a delayed increase and, at the end again, a decrease to below pretreatment levels. This effect was more pronounced as the TPA concentration was increased in the range of 0.1-1 microM and was blocked by the PrkC-inhibitor 1-(5-isoquinolinyl-sulfonyl)-2-methylpiperazine (H-7). (3) TPA (0.1-0.5 microM) shortly applied to patch-clamped fibres caused a slight decrease in nAChR-channel slope conductance without affecting the mean lifetime. In a patch the opening frequency increased over time, after an initial decrease. (4) It is concluded that specific activation of the PrkC may be of regulatory significance on nAChR function.

Animals↗

Regulation of muscle acetylcholine receptor-channel function by interferon.

The effect of the antiviral agent interferon (IFN) on the function of the nicotinic acetylcholine receptor (AChR) channel, has been investigated in both mammalian cultured myotubes and adult fibres, using the single channel recording patch-clamp technique. Shortened AChR-channel lifetime, and occasionally reduced channel conductance and slowed opening frequency were seen with fibroblast IFN (IFN-beta) in the mouse myotubes, and with IFN-beta and leucocytes IFN (IFN-alpha), in the rat muscle fibres. These effects paralleled an increase in the cytosolic level of cAMP. This suggests that IFN exerts a regulatory action on AChR function. A similar regulatory action on other receptor may be responsible for some of the neurological side effects observed in patients treated with IFN.

Animals↗

Effects of calcitonin gene-related peptide on synaptic acetylcholine receptor-channels in rat muscle fibres.

Cultured myotubes and freshly dissociated muscle fibres from adult rats were exposed to calcitonin gene-related peptide (CGRP) and studied by patch-clamp recording during the peptide-induced maximal accumulation of cellular cyclic AMP (cAMP). Acetylcholine receptor- (AChR-) channel properties in myotubes were not modified by the presence of CGRP (10(-7) M). The peptide, applied to the non-patched membrane, significantly increased the variance of the AChR-channel amplitude distribution at the synaptic region of muscle fibres, and three classes of AChR-channels were resolved immediately after peptide application. AChR-channels at extrasynaptic regions of fibres from denervated muscles were unaffected by CGRP. It is suggested that CGRP may regulate the synaptic AChR-channel conductance through second messenger systems.

Animals↗

Microwave effects on acetylcholine-induced channels in cultured chick myotubes.

The behavior of cultured myotubes from chick embryos exposed to microwaves has been experimentally analyzed. Recordings of acetylcholine-induced currents have been obtained via patch-clamp techniques using both cell-attached (single-channel current recording) and whole-cell (total current recording) configurations. During the exposure to low-power microwaves the frequency of the ACh-activated single channel openings decreased, while the ACh-induced total current showed a faster falling phase. Channel open time and conductance were not affected by microwave irradiation. It is concluded that the exposure to microwaves increases the rate of desensitization and decreases the channel opening probability. The nonthermal origin and the molecular interaction mechanisms governing these electromagnetic-induced effects are discussed.

Acetylcholine↗

Influence of protein kinase C-stimulation by a phorbol ester on neurotransmitter release at frog end-plates.

1. The effect of the phorbol ester 12-O-tetradecanoylphorbol-13-acetate (TPA) on the stimulation-evoked neurotransmitter release has been investigated by measuring the quantal content (m) of end-plate potentials at frog neuromuscular junctions (Rana temporaria, M. sartorius). 2. After addition of TPA (0.1 up to 1 mumol/l) to the Ringer solution the m-values increased in a concentration-dependent manner up to more than 3 times the control values. 3. Inhibition of the activity of the protein kinase C through the inhibitor 1-(5-isoquinolinylsulfonyl)-2-methylpiperazine (H-7) blocked this effect of TPA. 4. The TPA effect was much more conspicuous when the m-value was reduced by raising the extracellular Mg2+ concentration. Between the control m-values and the n-fold increase in the m-value enhanced by TPA a hyperbolic relation was observed. 5. It is concluded that protein kinase C stimulation affects predominantly the spontaneous release of neurotransmitter at the frog neuromuscular junction and only very poorly the stimulation-evoked one.

Animals↗

Spontaneous channel activity induced by tumor promoter TPA in chick myotubes.

Patch-clamp recordings were used to study the activation of ion channels in the cell membrane of cultured embryonic chick myotubes treated with the specific activator of protein kinase C, the phorbol ester 12-O-tetradecanoyl-phorbol-13-acetate (TPA; 1 x 10(-7) M). Myotubes exhibited a spontaneous channel activity when the TPA-induced dedifferentiative processes developed. This consisted in the activation of inward current channels (approximately 35 pS conductance; approximately 6 ms open time). These spontaneously active channels were insensitive to alpha-bungarotoxin, curare, atropine and tetrodotoxin and were not inhibited by the withdrawal of TPA. It is suggested that a prolonged stimulation of the protein kinase C causes a irreversible deregulation of the membrane channel function during cell dedifferentiation.

Animals↗

Reduced acetylcholine-induced channel activity in dystrophic mouse myotubes.

Single channel recording patch-clamp technique was used in the mouse to compare the acetylcholine (ACh)-induced channel behaviour between normal and dystrophic myotubes. While open time and slope conductance were equivalent, ACh-induced channel opening frequency was more than 4-fold reduced in dystrophic compared to normal myotubes. In addition, the steady-state phosphorylation of the ACh receptor (AChR), tested by immunoprecipitation of 32P-labeled cells, indicated that the alpha-subunit was more heavily phosphorylated in the dystrophic myotubes. We propose that the degree of alpha-subunit phosphorylation of the AChR, which parallels the reduced AChR-channel opening probability, determines desensitization of the AChR in dystrophic myotubes.

Acetylcholine↗

Acetylcholine receptor channel properties in rat myotubes exposed to forskolin.

Rat myotubes exposed to forskolin were studied by patch-clamp technique in cell-attached single channel recording configuration. Channel open time and opening frequency of the main class of acetylcholine receptor- (AChR-) channels (accounting for more than 90% of all unitary events) decreased in the presence of forskolin (20-100 microM). The forskolin-induced action on the AChR function fully developed with a delay of 30-60 minutes from the peak of cytosolic cyclic AMP (cAMPi) concentration. Both cAMP (1 mM), applied intracellularly for 10 min, and dibutyryl cAMP (0.5 mM), applied extracellularly for 90 min, did not accelerate the rate of desensitization of myotubes studied in whole-cell patch-clamp recording configuration. It was concluded that the action of forskolin on AChR-channel function of rat myotubes could be not associated with the cAMPi-dependent phosphorylation of AChR.

Animals↗

Acetylcholine may regulate its own nicotinic receptor-channel through the C-kinase system.

Acetylcholine (ACh)-activated channel properties were examined on an aneural culture of chick embryo myotubes by using patch-clamp techniques. Changes in conductance, open time and closed time were induced by the selective activator of the calcium- and phospholipid-dependent C-kinase (PKc), 12-O-tetradecanoylphorbol-13-acetate (TPA). The action of TPA was mimicked by exogenous phospholipase C and was blocked by the PKc inhibitor, 1-(5-isoquinolinylsulphonyl)-2-methyl-piperazine. In addition to its gating action, ACh was shown to stimulate phosphoinositide turnover and to translocate PKc from the cytosol to the cell membrane. Both these ACh-induced effects were inhibited by curare and not substantially affected by atropine. Bath-applied ACh outside the patch-pipette in the cell-attached patch-clamp mode, had a strong effect on the ACh-activated channels in the patch membrane, in a way that resembled the action of TPA. These findings raise the possibility that ACh regulates its own nicotinic receptors through the C-kinase system.

Acetylcholine↗