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G M Shepherd

Publications and source records attributed to G M Shepherd.

At least 19 recordsLinked to original sources

Hyperexcitability associated with localizable lesions in epileptic patients.

Intracellular recordings from neurons were carried out in cortical slices obtained from tissue removed from patients suffering from intractable seizures. The patients were divided into two groups based on the presence or absence of an anatomical abnormality that could be imaged preoperatively. The lesion or its surround was the presumptive epileptogenic area. The tissue removed from the patients without lesions was removed either for biopsy purposes or for access to epileptic tissue and was not considered epileptogenic. All neurons from patients without an imageable lesion, and some (19%) from patients with an imageable lesion, responded to orthodromic stimuli with a sequence of synaptic excitation followed by inhibition; these properties resembled those of normal rodent cortical slices. Different responses, classified as abnormal, were observed in 81% of the neurons in tissue specimens obtained near lesions. The most common was prolonged synaptic excitation with no noticeable inhibition, even at high stimulus strengths. In three resections, long latency all-or-none depolarization shifts were observed that resemble the classic paradoxical depolarization shift seen in in vivo extracellular recordings. Loss of specific inhibitory systems within the cortex may contribute in part to these abnormal responses.

Cerebral Cortex

Low levels of somatostatin-like immunoreactivity in neocortex resected from presumed seizure foci in epileptic patients.

The concentration of somatostatin-like immunoreactivity (SS-LI) was determined by radioimmunoassay in neocortical tissue resected from 20 patients with pharmacologically intractable complex partial seizures. Most resections included either the anterior temporal pole neocortex (15 cases) or cingulate gyrus neocortex (3 cases). The concentration of SS-LI was lowest in cortical tissue immediately adjacent to cortical tumors. Preoperative electrical recordings suggested that this tissue was the seizure focus. In vitro recordings showed that this tissue also exhibited abnormal hyperexcitable synaptic responses. Higher levels of SS-LI, similar to normal values previously reported in human cortex, were present in non-focal temporal neocortical tissue (resected from patients in whom the seizure focus was in the ipsilateral hippocampus) in which no hyperexcitable synaptic activity was present in vitro. The functional loss of inhibitory transmitters suggested by the low SS-LI levels might provide a theoretical basis for the hyperexcitability observed in vivo and in vitro.

Cerebral Cortex

Neurotransmitter antagonists block some odor responses in olfactory receptor neurons.

The first step in olfactory transduction is the recognition of odor molecules by membrane bound receptors belonging to the superfamily of G-protein coupled receptors; other members of this family are involved in neurotransmission. Based on the considerable homology between individual members of this family, we have investigated the ability of well-known neurotransmitter antagonists to block the olfactory response. Adrenergic and muscarinic antagonists were found to block some odor induced currents (45-55%) with an IC50 between 15 and 75 microM. By contrast, antagonists of glutamate and GABA receptors, which do not belong to this receptor superfamily, were ineffective. These results suggest that further pharmacological analysis may be useful for characterizing and classifying the family of odor receptors.

2-Amino-5-phosphonovalerate

A model of NMDA receptor-mediated activity in dendrites of hippocampal CA1 pyramidal neurons.

1. The role of synaptic activation of NMDA (N-methyl-D-aspartate) receptor-mediated conductances on CA1 hippocampal pyramidal cells in short-term excitability changes was studied with the use of a computational model. Model parameters were based on experimental recordings from dendrites and somata and previous hippocampal simulations. Representation of CA1 neurons included NMDA and non-NMDA excitatory dendritic synapses, dendritic and somatic inhibition, five intrinsic membrane conductances, and provision for activity-dependent intracellular and extracellular ion concentration changes. 2. The model simulated somatic and dendritic potentials recorded experimentally. The characteristic CA1 spike afterdepolarization was a consequence of the longitudinal spread of dendritic charge, reactivation of slow Ca(2+)-dependent K+ conductances, slow synaptic processes (NMDA-dependent depolarizing and gamma-aminobutyric acid-mediated hyperpolarizing currents) and was sensitive to extracellular potassium accumulation. Calcium currents were found to be less important in generating the spike afterdepolarization. 3. Repetitive activity was influenced by the cumulative activation of the NMDA-mediated synaptic conductances, the frequency-dependent depression of inhibitory synaptic responses, and a shift in the potassium reversal potential. NMDA receptor activation produced a transient potentiation of the excitatory postsynaptic potential (EPSP). The frequency dependence of EPSP potentiation was similar to the experimental data, reaching a maximal value near 10 Hz. 4. Although the present model did not have compartments for dendritic spines, Ca2+ accumulation was simulated in a restricted space near the intracellular surface of the dendritic membrane. The simulations demonstrated that the Ca2+ component of the NMDA-operated synaptic current can be a significant factor in increasing the Ca2+ concentration at submembrane regions, even in the absence of Ca2+ spikes. 5. Elevation of the extracellular K+ concentration enhanced the dendritic synaptic response during repetitive activity and led to an increase in intracellular Ca2+ levels. This increase in dendritic excitability was partly mediated by NMDA receptor-mediated conductances. 6. Blockade of Ca(2+)-sensitive K+ conductances in the dendrites increased the size of EPSPs leading to a facilitation of dendritic and somatic spike activity and increased [Ca2+]i. NMDA receptor-mediated conductances appeared as an amplifying component in this mechanism, activated by the relatively depolarized membrane potential. 7. The results suggest that dendritic NMDA receptors, by virtue of their voltage-dependency, can interact with a number of voltage-sensitive conductances to increase the dendritic excitatory response during periods of repetitive synaptic activation. These findings support experimental results that implicate NMDA receptor-mediated conductances in the short-term response plasticity of the CA1 hippocampal pyramidal neuron.

Animals

Noradrenergic inhibition of synaptic transmission between mitral and granule cells in mammalian olfactory bulb cultures.

Noradrenergic modulation of the glutamatergic-GABAergic synapses between mitral/tufted (M/T) and granule cells has been implicated in some forms of olfactory learning (Brennan et al., 1990). Norepinephrine (NE) has been shown to disinhibit mitral cells (Jahr and Nicoll, 1982), but its site of action is not well defined. The effects of NE on synaptic transmission between monosynaptically coupled pairs of mitral and granule cells have been examined using primary culture and whole-cell recording techniques. Intracellular stimulation of M/T cells evoked dual-component EPSPs in granule cells consisting of both NMDA and AMPA (alpha-amino-3-hydroxy-5-methyl-4-isoxazoleproprionic acid) receptor-mediated mechanisms. The EPSPs were reversibly inhibited by approximately 50% during application of 30 microM NE. NE had no effect, however, on the membrane current evoked by exogenous application of glutamate, indicating a presynaptic site of action. The effect of NE on EPSPs was mimicked by the alpha-adrenergic agonist clonidine but not by the beta-adrenergic agonist isoproterenol. NE had no significant effect on either accommodation or macroscopic currents in either M/T or granule cells. NE also inhibited spontaneous GABAergic IPSPs recorded in M/T cells, by a presynaptic alpha-adrenergic-mediated mechanism. These results support previous results suggesting a disinhibitory role for NE in the olfactory bulb. This action, however, is at least in part mediated by a reduction in mitral cell-mediated granule cell excitation.

Animals

Sensational science. Sensory Transduction: 45th Annual Symposium of the Society of General Physiologists, Marine Biological Laboratory, Woods Hole, MA, USA, September 5-8, 1991.

In the course of several days of formal and informal talks, in the idyllic setting of Woods Hole, the impression grew among many of the participants that useful common themes have emerged for comparison among sensory transduction systems. Many of these were made explicit in a talk on biophysical principles of sensory transduction by Steven Block (Cambridge, MA, USA). In one hour, Block summarized the rest of the symposium and much more, in a dazzling tour through the senses. One of his points was that all sensory transducers must fulfill common goals: detection of the signal, which involves the functions of collecting, selecting or tuning, and capture of the stimulus; amplification, to raise the signal energy (without adding noise) for transmission to other parts of the organism; adaptation or feedback, to extract behaviorally useful parts of the signal; termination, to re-prime the system for the next signal; and encoding, which puts the information in a useful form for downstream processing or effector elements. Another useful comparison was between quantum-detecting systems, such as photoreception and olfaction, where the energy of the stimulus quantum (photon or odor ligand) is large and a uniform response is desired, and noise-limited systems, such as auditory transduction or magnetoreception, where thermal noise is larger than the smallest stimuli and time-averaging helps pull the signal out of the noise. A third observation from Block was that sensory transduction systems--while often performing at physical limits--have not necessarily been perfected by the process of evolution.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Results of the National Institute of Allergy and Infectious Diseases Collaborative Clinical Trial to test the predictive value of skin testing with major and minor penicillin derivatives in hospitalized adults.

BACKGROUND: A history (or lack thereof) of penicillin allergy is known to be unreliable in predicting reactions on subsequent administration of the drug. This study tests the usefulness of four penicillin allergen skin tests in the prediction of IgE-mediated reactions subsequent to administration of penicillin. METHODS: Eight centers cooperated in the National Institute of Allergy and Infectious Diseases trial of the predictive value of skin testing with major and minor penicillin derivatives. Hospitalized adults were tested with a major determinant (octa-benzylpenicilloyl-ocytalysine) and a minor determinant mixture and its components (potassium benzylpenicillin, benzylpenicilloate, and benzylpenicilloyl-N-propylamine). Patients then received a therapeutic course of penicillin and were observed, for 48 hours, for adverse reactions compatible with an IgE-mediated immediate or accelerated allergy. RESULTS: Among 726 history-positive patients, 566 with negative skin tests received penicillin and only seven (1.2%) had possibly IgE-mediated reactions. Among 600 history-negative patients, 568 with negative skin tests received penicillin and none had a reaction. Only nine of the 167 positive skin test reactors received a penicillin agent and then usually by cautious incremental dosing. Two (22%) of these nine patients had reactions compatible with IgE-mediated immediate or accelerated penicillin allergy; both were positive to the two determinants. CONCLUSIONS: These data corroborate previous data about the negative predictive value of negative skin tests to these materials. The reaction rate in skin test-positive patients was significantly higher than in those with negative skin tests, demonstrating the positive predictive value of positive tests to both major and minor determinants. The number of patients positive only to the major determinant or only to the minor determinant mix was too small to draw conclusions about the positive predictive value of either reagent alone.

Adult

Inhibition of the olfactory cyclic nucleotide gated ion channel by intracellular calcium.

When olfactory receptor neurons are exposed to sustained application of odours, the elicited ionic current is transient. This adaptation-like effect appears to require the influx of Ca2+ through the odour-sensitive conductance; in the absence of extracellular Ca2+ the current remains sustained. Odour transduction proceeds through a G-protein-based second messenger system, resulting finally in the direct activation of an ion channel by cyclic AMP. This channel is one possible site for a negative feedback loop using Ca2+ as a messenger. In recordings of single cyclic AMP gated channels from olfactory receptor neurons, the open probability of the channel in saturating cAMP concentrations was dependent on the concentration of intracellular Ca2+. It could be reduced from 0.6 in 100 nm Ca2+ to 0.09 in 3 microM Ca2+. However, as neither the single channel conductance nor the mean open time were affected by Ca+ concentration, this does not appear to be a mechanism of simple channel block. Rather, these results suggest that intracellular Ca2+ acts allosterically to stabilize a closed state of the channel.

Ambystoma

Serial reconstructions of granule cell spines in the mammalian olfactory bulb.

The morphology of olfactory bulb granule cell spines and their dendrodendritic synaptic relations with mitral and tufted cell dendrites were examined using serial electron micrographs and 3D computer reconstructions. Most granule cell spines were pedunculated with large elliptical heads and necks (stems) longer than those described for exclusively postsynaptic spines elsewhere in the nervous system. The spines typically contained a mitochondrion, which most likely reflects the metabolic requirements of the presynaptic functions of these spines. In several cases multiple spine heads were observed connected to the parent dendritic trunk via a common neck. In addition, dendritic varicosities making synaptic connections were noted. In the data set sampled, all of the reconstructions supported the hypothesis of divergence of granule cell connectivity: in no instance was a granule cell found to contact repeatedly the same mitral or tufted cell dendrite. Examination of the topological organization of reciprocal dendrodendritic synaptic connections with mitral/tufted cell dendrites revealed parallel rows of spine heads on mitral/tufted secondary dendrites separated by intervening zones of several microns in which no synaptic appositions were found. The results provide evidence regarding rules of connectivity underlying the function of local circuits in mediating lateral inhibition in the external plexiform layer of the olfactory bulb.

Animals

Activation of the sensory current in salamander olfactory receptor neurons depends on a G protein-mediated cAMP second messenger system.

Olfactory receptor neurons respond to odor stimulation with an inward cationic current. Under whole-cell patch clamp, individual, isolated olfactory receptors were exposed to pharmacological agents known to interact with distinct enzymes in a putative second messenger cascade, and their response to odors was measured. IBMX prolonged the odor-evoked current and also reduced its amplitude. cAMP and cGMP induced a current electrically identical to the odor current, but the current showed desensitization only with cAMP. GTP-gamma-s prolonged and GDP-beta-s interfered with the odor-evoked current. The long latency seen in the odor response appears to be mainly due to the loading of the G protein and secondarily to the requirement for cAMP accumulation. The main source of the response decay appears to be cyclic nucleotide hydrolysis.

1-Methyl-3-isobutylxanthine

Tip-link integrity and mechanical transduction in vertebrate hair cells.

An attractive hypothesis for hair-cell transduction is that fine, filamentous "tip links" pull directly on mechanically sensitive ion channels located at the tips of the stereocilia. We tested the involvement of tip links in the transduction process by treating bundles with a BAPTA-buffered, low-Ca2+ saline (10(-9) M). BAPTA abolished the transduction current in a few hundred milliseconds. BAPTA treatment for a few seconds eliminated the tip links observed by either scanning or transmission electron microscopy. BAPTA also eliminated the voltage-dependent movement and caused a positive bundle displacement of 133 nm, in quantitative agreement with a model for regulation of tension. We conclude that tip links convey tension to the transduction channels of hair cells.

Animals

Toward a pharmacology of odor receptors and the processing of odor images.

Odor molecules may be considered as molecular ligands which bind to receptors in the olfactory sensory neurons to give rise to the sensory response. Binding studies in whole sensory epithelia suggest that the receptors also bind muscarinic cholinergic antagonists. Preliminary electrophysiological evidence indicates that muscarinic and beta adrenergic antagonists block odor-elicited membrane currents in single isolated salamander sensory neurons. These results support the idea that models developed for analyzing ligand binding by members of the 7 transmembrane domain family of membrane receptors may apply rather closely to olfactory transduction. We suggest that sensory neurons express single receptor types with differing degrees of affinity for different ligands. We further suggest that glomeruli in the olfactory bulb function as labeled lines for particular sets of odor ligand determinants, and that interglomerular circuits bind together similar glomeruli and enhance contrast between dissimilar glomeruli. The odor image laid down in the sensory neuron population is thus subjected to abstracting and enhancement at the glomerular stage, prior to being transmitted for further processing in the deeper layers of the olfactory bulb and in the olfactory cortex.

Animals

A kinetic model of the odor response in single olfactory receptor neurons.

The detection of odor molecules by olfactory receptors is a biochemical process, but the neural signal is electrical. The transformation of chemical information into a change in membrane potential, i.e. the process of signal transduction, is accomplished in olfactory receptor neurons by a multi-step second messenger pathway resulting finally in the activation of ion channels by cAMP. Many of the biochemical and physiological details of this process are beginning to be appreciated, giving rise to a comprehensive model of the basic mechanisms of olfactory transduction that has much in common with those of other signal transduction systems. One interesting result of these new insights is that the olfactory neuron may act more as a molecule counter than a concentration detector, as had been believed previously.

Action Potentials

Electrotonic structure of olfactory sensory neurons analyzed by intracellular and whole cell patch techniques.

1. Experimental studies employing whole cell patch recordings from freshly isolated olfactory sensory neurons of the salamander (Ambystoma tigrinum) yield much higher estimates of specific membrane resistance (Rm) than studies using conventional intracellular recordings from in situ neurons. Because Rm is critical for understanding information transfer in these cells, we have used computational methods to analyze the possible reasons for this difference. 2. Compartmental models were constructed for both the in situ and isolated neurons, using SABER, a general-purpose simulation program. For Rm in the in situ cell, we used a high value of 100,000 omega.cm2, as estimated in the whole cell recordings from isolated cells. A shunt across the cell membrane caused by the penetrating microelectrode was simulated by several types of shunt mechanisms, and its effects on lowering the apparent value of resting membrane potential (MP), input resistance (RN), and membrane time constant (tau m) and increasing the electrotonic length (L) were analyzed. 3. A good approximation of the electrotonic properties recorded intracellularly was obtained in the in situ model with high Rm combined with an electrode shunt consisting of Na and K conductances. A raised K conductance (1-5 nS) helps to maintain the resting MP while contributing to the increased conductance, which lowers RN and shortens the apparent tau m toward the experimental values. 4. Combined shunt resistances of 0.1-0.2 G omega (5-10 nS) gave the best fits with the experimental data. These shunts were two to three orders of magnitude smaller than the values reported from intracellular penetrations in muscle cells and motoneurons. This may be correlated with the smaller electrode tips used in the recordings from these small neurons. We thus confirm the prediction that even small values of electrode shunt have relatively large effects on the recorded electrotonic properties of small neurons, because of their high RN (2-5 G omega). 5. We have further explored the effects on electrotonic structure of a nonuniform Rm by giving higher Rm values to the distally located cilia compared with the proximal soma-dendritic region, as indicated by recent experiments. For the same RN, large increases in ciliary Rm above 100,000 omega.cm2 can be balanced by relatively small decreases below that value in soma-dendritic Rm. A high ciliary Rm appears to be a specialization for transduction of the sensory input, as reported also in photoreceptors and hair cells.

Ambystoma

Single odor-sensitive channels in olfactory receptor neurons are also gated by cyclic nucleotides.

Olfactory transduction is thought to occur by processes that are mainly restricted to the specialized cilia emanating from the distal end of the receptor neuron's single dendrite. The involvement of a cAMP-based second messenger system seems likely, and a cyclic nucleotide-sensitive current has been recorded in patches of membrane from the cilia. However, the small diameter of the cilia and the high density of channels within the membrane limit the application of the patch recording technique in the cilia. We have found that the cAMP-sensitive channels also exist at a much lower density within the far more accessible dendritic membrane. Recording from on-cell patches, we have observed single-channel activity in response to extracellularly applied odor substances. The channels have a single-channel conductance of 40 pS and a reversal potential near 0 mV. These same channels are activated by treatments that elevate intracellular cyclic nucleotide concentrations. The results provide a direct demonstration that the cyclic nucleotide-gated channel is the conductance pathway for the odor-elicited current.

1-Methyl-3-isobutylxanthine