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Effects of ethosuximide and tetramethylsuccinimide on cultured cortical neurons.

In cultured cortical neurons, ethosuximide (ESM) had unexpected actions for an antiepileptic drug; it slightly diminished the effects of inhibitory neurotransmitters, GABA, and glycine. ESM had no direct membrane effects, did not change action potential characteristics or alter spontaneous activity, and did not reverse the effects of convulsants that are GABA antagonists. The structurally related convulsant tetramethylsuccinimide (TMSM) reduced the amplitude of GABA-mediated inhibitory postsynaptic potentials and antagonized responses to applied GABA, effects not reversed by ESM. The convulsant effects of TMSM include a blockade of postsynaptic GABA actions, but the antiepileptic effects of ESM are not due to an enhancement of GABA-mediated inhibition.

Animals↗

Comparison of the actions of adenosine at pre- and postsynaptic receptors in the rat hippocampus in vitro.

1. Intracellular microelectrode recordings were used to study the cellular location, the receptor pharmacology, and the mechanism of action of adenosine on pyramidal cells and presynaptic axonal endings in area CA3 of organotypic hippocampal slice cultures. 2. Adenosine (bath applied at 50 microM) caused a 10-15 mV hyperpolarization of CA3 cells, as well as a 75-100% decrease in the amplitude of excitatory and polysynaptic inhibitory postsynaptic potentials (EPSPs and IPSPs). Adenosine had no effect on the amplitude of monosynaptic IPSPs elicited in the presence of excitatory amino acid receptor antagonists, but did reduce the amplitude of isolated EPSPs, elicited after blocking GABAA receptors and reducing subsequent epileptic bursts with excitatory amino acid receptor antagonists. These data indicate that adenosine receptors are located on excitatory, but not inhibitory, presynaptic elements. 3. The A1 receptor antagonist 8-cyclopentyl-1,3-dipropylxanthine (DPCPX, bath applied at 200 nM) blocked the pre- and postsynaptic actions of adenosine. DPCPX had no effect on the amplitude of control synaptic responses, suggesting that there is no tonic activation of adenosine receptors in hippocampal slice cultures under control conditions. The A1 receptor agonists R-N6-phenylisopropyladenosine (R-PIA) mimicked all pre- and postsynaptic actions of adenosine. 4. Pertussis toxin pretreatment (500 ng/ml for 48 h) prevented adenosine from activating postsynaptic K+ conductance, but not from inhibiting EPSPs. In contrast, stimulation of protein kinase C with phorbol ester (phorbol 12, 13-dibutyrate, 1 microM for 10 min) reduced the presynaptic, but not the postsynaptic, actions of adenosine. 5. Barium (bath applied at 1 mM) blocked the adenosine-activated K+ conductance, but not the inhibition of isolated EPSPs by adenosine. 6. Adenosine at 0.03-1 microM reduced the frequency of, or blocked, spontaneous epileptiform bursting produced by bicuculline. DPCPX (200 nM) increased the rate of spontaneous bursting, consistent with a tonic activation of adenosine receptors during hyperactivity, and led to the development of prolonged ictal-like bursts, suggesting that the endogenous release of adenosine may contribute to the termination of epileptic bursts. 7. We conclude that adenosine acts at pre- and postsynaptic receptors which are pharmacologically indistinguishable. Postsynaptically, adenosine increases a barium-sensitive K+ conductance via a pertussis toxin-sensitive GTP-binding protein. The presynaptic action of adenosine must, however, be mediated by some other mechanism.

Adenosine↗

Medullary control of lumbar motoneurons during carbachol-induced motor inhibition.

The present study examined the effects of stimulation of the medullary nucleus reticularis gigantocellularis (NRGc) on the Ia-monosynaptic reflex and the membrane potential of lumbar motoneurons. Stimulation of the NRGc was carried out in acute decerebrate cats during motor suppression induced by the intrapontine microinjection of carbachol. During carbachol-induced motor suppression, compared with control conditions (prior to the administration of carbachol), NRGc stimulation resulted in a statistically significant reduction in the Ia-monosynaptic reflex. This effect was maximal at an interval of 45 ms following NRGc stimulation. NRGc stimulation also induced, in lumbar motoneurons, a large amplitude (3.17 mV +/- 0.36 [S.E.M.]), long duration (54.73 ms +/- 3.52 [S.E.M.]) inhibitory postsynaptic potential whose peak coincided with the interval of maximum reflex suppression. These results suggest that carbachol activates pontine neurons that excite cells of the medullary NRGc. We believe that these medullary neurons, in addition to those of the nucleus pontis oralis (NPO)7, participate in the modulation of the descending inhibitory pathway that is responsible for the phenomenon of response-reversal and generalized atonia during naturally occurring active (i.e. REM) sleep.

Animals↗

Control of locomotion in marine mollusc Clione limacina. X. Effects of acetylcholine antagonists.

The swimming central pattern generator (CPG) of the pteropod mollusc Clione limacina is located in the pedal ganglia. It consists of three groups of interneurons (7, 8, and 12) which generate the rhythmical activity and determine the temporal pattern of the motor output, that is, phasic relations between different groups of motor neurons supplying dorsal (group 1 and 3 motor neurons) and ventral (group 2 and 4 motor neurons) muscles of the wings. In this work peripheral and central effects of acetylcholine (ACh) antagonists on the swimming control in C. limacina has been studied. The ACh antagonist atropine blocked transmission from the wing nerves to wing muscles, while gallamine triethiodide (Flaxedil), d-tubocurarine, and alpha-bungarotoxin did not affect the neuromuscular transmission. In the pedal ganglia, the ACh antagonists atropine and gallamine triethiodide blocked inhibitory postsynaptic potentials (IPSPs) produced by group 8 interneurons onto group 7 interneurons and motor neurons of groups 1 and 3. d-Tubocurarine and alpha-bungarotoxin did not affect IPSPs produced by group 8 interneurons. Although atropine and gallamine triethiodide blocked IPSPs produced by group 8 interneurons in antagonistic neurons, these drugs did not influence excitatory postsynaptic potentials (EPSPs) produced by group 8 interneurons onto group 12 interneurons. The main pattern of the swimming rhythm with an alternation of two phases of the swimming cycle persisted after elimination of inhibitory connections from group 8 interneurons to antagonistic neurons by the ACh antagonists. This suggests that there are redundant mechanisms in the system controlling C. limacina's swimming. This redundancy ensures reliable operation of the system and contributes to its flexibility.

Acetylcholine↗

Cellular correlates of neuronal hyperexcitability in the vicinity of photochemically induced cortical infarcts in rats in vitro.

Intrinsic membrane properties and synaptic responses of neocortical neurons located lateral to photochemically induced ischemic lesions were investigated using neocortical slice preparation. In comparison to neurons from control slices, these neurons had a significantly less negative resting membrane potential without any significant change in input resistance. In addition, gamma-aminobutyric acid (GABA) mediated synaptic inhibition was found to be less efficient; the conductances of both the early and late inhibitory postsynaptic potentials (IPSPs) were significantly smaller, and the reversal potential of the early IPSP was shifted to a more positive value. In some of the neurons, 'epileptiform' postsynaptic potentials could be elicited, which were abolished after wash-in of the N-methyl-D-aspartic acid (NMDA)-receptor antagonist D-2-amino-5-phosphonovaleric acid (AP-5). The results provide a possible explanation for the hyperexcitability found in the vicinity of cortical infarcts.

2-Amino-5-phosphonovalerate↗

Intrinsic properties and evoked responses of guinea pig subicular neurons in vitro.

1. Intracellular recordings were used to examine the membrane properties and evoked responses of subicular neurons in horizontal and parasagittal slices from guinea pig brain as a step toward understanding excitatory transmission through the hippocampus. 2. Most cells (49/74) could fire a burst discharge, a portion of which was Ca2+ dependent, in response to direct depolarization or in response to orthodromic or antidromic activation. Other cells (23/74) could not be made to burst, but instead fired single repetitive spikes when directly depolarized or single spikes in response to orthodromic or antidromic activation. Two recorded cells appeared to be interneurons and differed from bursting and non-bursting cells in action-potential shape and response to extracellular stimulation. 3. Bursting cells differed from nonbursting cells in their membrane properties: 1) their time constants were typically shorter (averaging 7.4 ms for bursting cells and 11.5 ms for nonbursting cells), 2) they exhibited a pronounced "sag" in the potential response to hyperpolarizing current injection, and 3) they responded at the break of a hyperpolarizing stimulus with a depolarization (anodal break potential). The sag and the anodal break potential were not detected in recordings from nonbursting neurons. 4. A single-spiking mode could be induced in bursting cells by depolarization from resting potential to about -60 mV. Conversely, hyperpolarization of nonbursting cells did not convert them to bursting cells. 5. Both bursting and nonbursting cell types could be antidromically driven. Whereas both excitatory and inhibitory postsynaptic potentials (EPSPs and IPSPs) were prominent in nonbursting cells, IPSPs were observed at a lower stimulus intensities than EPSPs in most cells. EPSPs were evident in bursting cells and they triggered burst discharges. IPSPs in bursting cells were detected only when these cells were depolarized, eliminating burst responses. 6. Spontaneous firing rates were low (averaging < 1 spike/s) for both cell types. Addition of picrotoxin produced spontaneous burst or EPSP responses in bursting cells, synchronous with different patterns of picrotoxin-induced population bursts originating in CA3 and/or entorhinal cortex. Individual subicular cells followed CA3 or entorhinal cortex or both. No such activity was recorded in nonbursting cells. No increases in activity in either cell type were seen after picrotoxin application to isolated pieces of subicular cortex.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Noradrenergic modulation of synaptic transmission between olfactory bulb neurons in culture: implications to olfactory learning.

Noradrenergic modulation of the glutamatergic-GABAergic synapses between mitral/tufted (M/T) and granule cells has been implicated in some forms of olfactory learning (5), but the mechanism of action is unknown. Intracellular stimulation of M/T cells in primary culture, evoked glutamate-mediated excitatory postsynaptic potentials (EPSPs) in granule cells that were reversibly inhibited by approximately 50% during application of norepinephrine (NE). NE had no effect, however, on the membrane current evoked by the application of glutamate, indicating a presynaptic site of action. The effect of NE on EPSPs was mimicked by the alpha receptor agonist clonidine, but not by the beta receptor agonist isoproteronol. NE also inhibited spontaneous GABAergic inhibitory postsynaptic potentials recorded in M/T cells, by a presynaptic alpha-adrenergic mediated mechanism. NE and clonidine also inhibited high threshold calcium currents. The effects of NE on calcium currents were irreversible in the presence of internal GTP gamma S and prevented by pertussis toxin, suggesting a G protein-coupled mechanism. Pertussis toxin also prevented the effects of NE on synaptic transmission. These results support previous results suggesting a disinhibitory role for NE in the olfactory bulb. This action is, at least in part, due to a reduction in mitral cell mediated granule cell excitation through inhibition of presynaptic calcium influx.

Animals↗

Induction of giant depolarizing potentials by zinc in area CA1 of the rat hippocampus does not result from block of GABAB receptors.

The possibility that zinc (Zn2+) induces giant depolarizing potentials (GDPs) by blocking pre- and postsynaptic gamma-aminobutyric acidB (GABAB) receptors in area CA1 of rat hippocampal slices was investigated. Monosynaptic GABAA receptor-mediated fast and GABAB receptor-mediated late inhibitory postsynaptic potentials (IPSPs) were evoked in the presence of the excitatory amino acid (EAA) receptor antagonists 6,7-dinitroquinoxaline-2,3-dione (DNQX) and D,L-amino-5-phosphonovalerate (APV). Addition of Zn2+ (0.3 mM) resulted in the appearance of long-lasting GDPs which obscured monosynaptic late IPSPs. The GABAA receptor antagonist bicuculline methiodide (BMI; 30 microM) blocked fast monosynaptic IPSPs and GDPs, revealing a monosynaptic late IPSP that was prolonged in the presence of Zn2+ and blocked by the GABAB receptor antagonist CGP 35,348 (100 microM). The selective GABAB receptor agonist baclofen (10 microM) depressed monosynaptic IPSPs and population excitatory postsynaptic potentials (pEPSPs) by acting at presynaptic GABAB receptors. Depression of synaptic potentials by baclofen was unaffected by Zn2+. These results suggest that induction of GDPs in area CA1 does not result from an action of Zn2+ at GABAB receptors. We suggest instead that Zn2+ induces GDPs by inducing synchronized discharge of GABAergic interneurons.

2-Amino-5-phosphonovalerate↗

Role of glutamatergic synaptic transmission in synchronized discharges of hilar neurons in guinea pig hippocampal slices.

The role of glutamatergic excitatory synaptic transmission in the synchronization of burst discharges in hilar neurons was studied using paired intracellular recording from hilar neurons and granule cells of guinea pig hippocampal slices. The convulsant 4-aminopyridine (4-AP, 50-100 microM) induced synchronous burst discharges in hilar neurons time locked to giant inhibitory postsynaptic potentials (IPSPs) in granule cells. The non-N-methyl-D-aspartic acid (non-NMDA) receptor antagonist 6-cyano-7-nitroquinoxaline-2,3-dione (CNQX, 5-10 microM) disrupted this synchrony. The inhibitory effect of gamma-aminobutyric acid (GABA)B receptor stimulation on the frequency of synchronous activity was smaller in the presence of CNQX than in its absence. We conclude that glutamatergic synapses operating through non-NMDA receptors are required for the synchronization but not for the generation of burst discharges which are induced by 4-AP in hilar neurons.

4-Aminopyridine↗

Activity-dependent enhancement of hyperpolarizing and depolarizing gamma-aminobutyric acid (GABA) synaptic responses following inhibition of GABA uptake by tiagabine.

The effects of the 7-aminobutyric acid (GABA) uptake blocker tiagabine on isolated inhibitory postsynaptic potentials (IPSPs) were examined in CA1 pyramidal cells of the rat hippocampal slice preparation. The IPSPs were elicited by either single stimuli or by high frequency (100 Hz, 200 ms) stimulation (HFS) of inhibitory interneurons. Bath applied tiagabine (20 microM) produced little or no increase in the amplitude of IPSPs evoked by low (30-50 microA) or high (200-400 microA) intensity single stimuli. Only the duration of IPSPs evoked by high intensity stimuli was substantially prolonged by tiagabine, the time integral of the hyperpolarizing response being increased 3.2-fold. HFS elicited much larger fast and slow IPSPs than a single stimulus. In addition, with increments in the intensity (80-550 microA) of HFS, a GABA(A) receptor-mediated depolarizing response of progressively larger amplitude appeared between, and overlapped with, the fast and slow hyperpolarizing components of the IPSP. Tiagabine application markedly increased the GABA-mediated responses evoked by both low and high intensity HFS. Increasing the intensity of HFS enhanced the drug effect. Thus, measurements of the time integral of evoked responses showed that with weak (60 microA) HFS, tiagabine caused a 3.6-fold increase in the area of hyperpolarization while, in contrast, with strong (530 microA) HFS, tiagabine produced a 13.5-fold increase in the depolarizing actions of GABA. Our results suggest that tiagabine, a therapeutically effective anticonvulsant, may paradoxically increase, through a GABA(A) receptor-mediated mechanism, neuronal depolarization during the high frequency discharge of neurons involved in epileptiform activity.

Animals↗

Involvement of GABA and glycine in recurrent inhibition of spinal motoneurons.

1. Recurrent inhibitory postsynaptic potentials (IPSPs) were recorded intracellularly from chloride-loaded motoneurons in the isolated lumbar spinal cord of neonatal rats (day 5-day 12). This in vitro preparation exhibited an intact and functional recurrent inhibitory pathway that displayed characteristics previously described for this pathway in other species. 2. Although strychnine (1-5 microM) depressed the chloride-dependent recurrent synaptic potentials evoked by ventral root stimulation by 48.2 +/- 2.7% (mean +/- SE, n = 13), confirming that part of the recurrent IPSP is mediated by a glycinergic mechanism, in every case a residual strychnine-resistant synaptic potential was observed. 3. The gamma-aminobutyric acid (GABA) antagonist bicuculline, in low concentrations (2-10 microM), depressed the recurrent synaptic potentials in a dose-dependent manner by 27.0 +/- 4.3% (range 0-49%, n = 19). Application of bicuculline almost eliminated the strychnine-resistant component of the IPSP. However, in some motoneurons, a small synaptic potential remained after combined application of strychnine and bicuculline. 4. The selective antagonists of GABA uptake, (+/-)-nipecotic acid (1 mM) and guvacine (1 mM), increased the amplitude of recurrent synaptic potentials in 12 of 16 motoneurons by 37.2 +/- 7.2% (range 12.6-84.2%). 5. The excitatory amino acid antagonists kynurenic acid (1 mM), 6-cyano-7-nitroquinoxaline-2,3-dione [CNQX (10 microM)] and 6,7-dinitroquinoxaline-2,3-dione (10 microM) potentiated recurrent synaptic potentials in 5 of 7 motoneurons. However, CNQX (10-15 microM) in the presence of strychnine and bicuculline virtually abolished the synaptic potential remaining after application of the inhibitory amino acid antagonists. It is concluded that ventral root stimulation evokes a small excitatory amino acid-mediated synaptic potential in neonatal rat motoneurons. 6. An antidromic synaptic potential due to electrotonic coupling between motoneurons was unaffected by changes in membrane potential, chloride loading, or antagonists of glycine, GABA, excitatory amino acid, and acetylcholine receptors. 7. The results suggest that a major portion of the strychnine-resistant component of the IPSP is mediated by a GABAergic mechanism. It is concluded that both glycinergic and GABAergic mechanisms play a role in recurrent inhibition of motoneurons in the mammalian spinal cord. It is unknown whether these inhibitory amino acids are released by a single pool of Renshaw cells or by neurochemically distinct populations.

Animals↗

N-methyl-D-aspartate receptor antagonists reduce synaptic excitation in the hippocampus.

The hypothesis that synaptic excitation in the CA1 region of the hippocampus is mediated in part by N-methyl-D-aspartate (NMDA) receptors was tested using intra- and extracellular recording techniques. Synaptic potentials elicited by stratum radiatum stimulation were examined in individual neurons before and after bath application of the NMDA receptor antagonist, DL-2-amino-5-phosphonovalerate (APV). This antagonist reduced both excitatory and inhibitory postsynaptic potentials (EPSPs and IPSPs). When IPSPs were suppressed by the addition of picrotoxin, EPSPs were seen in isolation. APV reduced these EPSPs but did not block synaptic transmission. This antagonist demonstrated anticonvulsant actions when tested against picrotoxin-induced epileptiform activity. These results suggest that, as in the spinal cord and neocortex, synaptic excitation in the CA1 region of the hippocampus is partially mediated by APV-sensitive NMDA receptors. The fact that synaptic activity is not blocked by NMDA antagonists indicates that EPSPs in CA1 neurons are not mediated solely by this receptor.

2-Amino-5-phosphonovalerate↗

Nonmonotonic synaptic excitation and imbalanced inhibition underlying cortical intensity tuning.

Intensity-tuned neurons, characterized by their nonmonotonic response-level function, may play important roles in the encoding of sound intensity-related information. The synaptic mechanisms underlying intensity tuning remain unclear. Here, in vivo whole-cell recordings in rat auditory cortex revealed that intensity-tuned neurons, mostly clustered in a posterior zone, receive imbalanced tone-evoked excitatory and inhibitory synaptic inputs. Excitatory inputs exhibit nonmonotonic intensity tuning, whereas with tone intensity increments, the temporally delayed inhibitory inputs increase monotonically in strength. In addition, this delay reduces with the increase of intensity, resulting in an enhanced suppression of excitation at high intensities and a significant sharpening of intensity tuning. In contrast, non-intensity-tuned neurons exhibit covaried excitatory and inhibitory inputs, and the relative time interval between them is stable with intensity increments, resulting in monotonic response-level function. Thus, cortical intensity tuning is primarily determined by excitatory inputs and shaped by cortical inhibition through a dynamic control of excitatory and inhibitory timing.

Acoustic Stimulation↗

A differential synaptic input to the motor nuclei of triceps surae from the caudal and lateral cutaneous sural nerves.

1. Postsynaptic potentials (PSPs) were recorded in 115 triceps surae motoneurons of 10 chloralose-anesthetized adult cats (spinal cord intact), upon electrical stimulation of the caudal and lateral cutaneous sural nerve branches (CCS and LCS, respectively). 2. With twice threshold (2T) stimulation of CCS, excitatory PSPs (EPSPs) were the predominant effect in 95% of all medial gastrocnemius (MG) motoneurons tested (min. central latency 1.5 ms; mean 2.4 ms). In only a few MG cells was the EPSP followed by an inhibitory postsynaptic potential (IPSP) and in only one cell was an IPSP the sole effect. Increasing the stimulus intensity to 5T tended to enhance both the later EPSP and IPSP components, with less change in the amplitude or latency of the earliest EPSPs. 3. In lateral gastrocnemius (LG) and soleus (SOL) motoneurons, 2T CCS stimulation led to either inhibition or no potential change in the majority of cells tested: EPSPs were the predominant effect in only 15 and 30% of LG and SOL cells, respectively (min. central latency 2.5 ms; mean 3.0 ms) and rarely occurred without subsequent inhibition. Again, increasing the stimulus intensity to 5T had more of an effect on later rather than earlier PSP components. 4. A predominance of depolarization in MG motoneurons but not in SOL motoneurons is in agreement with previous findings that CCS excitation is more powerful in "fast type" triceps surae motoneurons. However, the strong predominance of hyperpolarizing effects of CCS stimulation in the present LG population is evidence that such an organization does not transcend triceps surae motor nuclei as a whole. 5. Postsynaptic effects of LCS stimulation at 2T were frequently weak or absent but increasing the stimulus intensity to 5T produced predominant inhibition in 71% of all triceps surae motoneurons studied (n = 107). Of the few cells which did receive excitation from this nerve, most were MG, a few were SOL, and none were LG. These EPSPs occurred more frequently at 5T than at lower stimulation strengths. 6. The results indicate that excitation produced by electrical stimulation of the ipsilateral CCS nerve occurs preferentially in the MG portion of triceps surae and with the shortest central latencies. Effects of LCS stimulation are largely inhibitory throughout the motor nuclei comprising triceps surae but even here, the presence of excitation occurs more frequently in MG. A comparison of these results with those in other reports is discussed.

Animals↗

Ionic mechanism of GABAA biphasic synaptic potentials in gustatory nucleus of the solitary tract.

Gamma-aminobutyric acid (GABA) is the principal neurotransmitter of synaptic inhibition in the gustatory nucleus of the solitary tract (rNST). High-frequency activation of GABA neurons in the rNST results in biphasic inhibitory postsynaptic potentials (IPSPs) that are initially hyperpolarizing but then became depolarizing. Our results indicate that high-frequency stimulation evokes redistribution of Cl- and K+ ions that shifts IPSP reversal potential in a more positive direction, which produces a biphasic or depolarizing IPSP.

Animals↗

Activity-dependent disinhibition. II. Effects of extracellular potassium, furosemide, and membrane potential on ECl- in hippocampal CA3 neurons.

1. Single-electrode voltage-clamp recordings were made from CA3 pyramidal cells in organotypic hippocampal slice cultures for measurement of membrane currents underlying both the gamma-aminobutyric acid (GABA)-mediated, Cl- -dependent inhibitory postsynaptic potential (IPSC), evoked in response to stimulation of the mossy fiber pathway, and responses to iontophoretically applied GABA. Their reversal potentials are presumed to equal the equilibrium potential for Cl- (37). Mechanisms underlying activity-dependent increases in the intracellular concentration of Cl- ([Cl-]i) were investigated by describing active and passive pathways for Cl- influx and efflux. 2. During 99-s applications of GABA, driving force declined by 51% due to increases in [Cl-]i; thus passive Cl- influx through GABA-activated pathways can significantly affect [Cl-]i. 3. Decreasing the extracellular K+ concentration ([K+]o) from 5.8 to 1 mM caused a rapid hyperpolarizing shift in the mean IPSC reversal potential (EIPSC) from -67.6 to -81.9 mV, even when membrane potential (Vm) was maintained constant and depolarized with respect to EIPSC. 4. Decreasing [K+]o from 5.8 to 1 mM caused a rapid hyperpolarizing shift in the mean GABA reversal potential (EGABA) from -64.7 to -81.1 mV, even when Vm was maintained constant and depolarized with respect to EGABA. Reducing the extracellular Cl- concentration from 153 to 89 mM, while maintaining [K+]o constant at 1 mM, shifted the mean EGABA from -81.1 to -66.2 mV, an amount close to that predicted by the Nernst equation for Cl-. We conclude that reducing [K+]o caused a hyperpolarizing shift in EGABA and EIPSC by decreasing [Cl-]i. 5. The shift of EIPSC and EGABA upon alteration of [K+]o did not result from contamination of the responses by additional K+-mediated components because it was unaffected by block of K+ channels with intracellular Cs+. 6. Reducing the extracellular Na+ concentration from 141 to 70 mM had no effect on EGABA. 7. Furosemide, bath-applied at 5 X 10(-4) M while holding Vm depolarized with respect to EIPSC, caused a rapid, reversible decrease in IPSC driving force averaging 69%, consistent with the presence of a furosemide-sensitive outward Cl- -transport system. 8. Reducing [K+]o from 5.8 to 1 mM in the presence of 5 X 10(-4) M furosemide produced a smaller shift of EIPSC from -61.0 to -71.2 mV, however, after washout of furosemide from [K+]o = 1 mM saline, EIPSC shifted further to -89.8 mV.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Dorsal spinocerebellar tract neurons are not subjected to postsynaptic inhibition during carbachol-induced motor inhibition.

Dorsal spinocerebellar tract (DSCT) neurons in Clarke's column in the lumbar spinal cord of cats anesthetized with alpha-chloralose were recorded intracellularly. The membrane potential activity and electrophysiological properties of these neurons were examined before and during the state of active-sleep-like motor inhibition induced by the injection of carbachol into the nucleus pontis oralis. The synaptic activity of DSCT neurons during carbachol-induced motor inhibition did not change compared with that during control conditions. In particular, there was an absence of inhibitory postsynaptic potentials (IPSPs) in high-gain recordings from DSCT neurons and the resting membrane potential of DSCT neurons was not significantly hyperpolarized during carbachol-induced motor inhibition. The mean amplitude of both monosynaptic excitatory postsynaptic potentials and disynaptic IPSPs evoked in DSCT neurons following stimulation of group I muscle afferents after the injection of carbachol was similar to that evoked before the injection of carbachol. There were no significant changes in the mean input resistance and membrane time constant of DSCT neurons during carbachol-induced motor inhibition. We conclude that, in contrast to lumbar motoneurons, DSCT neurons in Clarke's column are not postsynaptically inhibited during carbachol-induced motor inhibition. Therefore the population of spinal cord Ib interneurons that inhibit both DSCT neurons and lumbar motoneurons is not likely to be the interneurons that are responsible for the postsynaptic inhibition of motoneurons that occurs during carbachol-induced motor inhibition. The present findings also indicate that transmission through the DSCT is not modulated by postsynaptic inhibition at the level of DSCT neurons during carbachol-induced motor inhibition.

Animals↗

Intracellular analysis of synaptic potentials in rat neostriatum following stimulation of the cerebral cortex, thalamus, and substantia nigra.

Intracellular recordings were obtained from neostriatal neurons of unparalyzed male hooded rats anesthetized with urethane. Electrical stimulation of the cerebral cortex (Cx), centromedian-parafascicular area of the thalamus (CMP), and the substantia nigra (SN) elicited monosynaptic excitatory postsynaptic potentials (EPSPs) in neostriatal neurons. Response latencies were, on the average, 3.7 msec, 3.3 msec, and 3.8 msec, for Cx, CMP and SN stimulation, respectively. Over 85% of recorded neurons showed convergence of inputs from all three stimulation sites. The SN induced EPSP sometimes had two components, with the second component beginning 10-15 msec after the first. EPSPs from all three stimulation sites were often followed by inhibitory postsynaptic potentials (IPSPs) lasting from 50-250 msec. Double shock experiments indicated that SN induced EPSPs could be reduced in amplitude by 20-80% when preceded by conditioning stimulation to Cx, CMP or SN. In contrast, the EPSP elicited by Cx stimulation were unaffected by conditioning stimulation. Some recorded neurons were morphologically identified by means of intracellular injection of horseradish peroxidase. All were "medium spiny" neurons. The results of the present study agree well with those of previous studies of cat caudate neurons, and extend them to rat neostriatal neurons.

Afferent Pathways↗