Search PubMed⌕ Search

PubMed · 8548479

Non-invasive electrogastrography. Part 2. Human electrogastrogram.

Abstract

The electrical activity of human stomach muscle wall-electrogastrogram (EGG), was led off by surface (cutaneous) electrodes placed on the abdominal wall and recorded on an electrogastrograph. A method for complete elimination of the cardiac artefact was elaborated and successfully implemented. It consists of a preliminary elimination of the QRS complex, based on its higher amplitude and slope. The eliminated intervals were replaced by linear segments. A subsequent low-pass filtering allowed to obtain a high quality EGG signal. The electrical activity of the stomach of healthy volunteers was characterized by waves with a frequency of 3.35 +/- 0.09 cpm during the quiescent periods and 2.99 +/- 0.14 cpm during the activity periods of the migrating myoelectrical complex (MMC). Bearing in mind the correlation between the bursts of spike potentials with the slow waves in the dog EGMG and the high-amplitude waves, characterizing the periods of activity in the dog EGG, we can better differentiate the periods of quiescence and activity by the amplitude of the waves. The wave amplitude during periods of quiescence was 81.13 +/- 20.61 microV, significantly different from the wave amplitude during periods of activity being 164.74 +/- 43.34 microV (n = 7). Thus with this method in visual inspection it is possible to identify MMC of the human stomach by the changes in the amplitude of the waves in the EGG.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

E Atanassova, I Daskalov, I Dotsinsky, I Christov, A Atanassova. 1995. Non-invasive electrogastrography. Part 2. Human electrogastrogram.. https://doi.org/10.3109/13813459509047135

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Intracerebroventricular administration of NMDA-R1 antisense oligodeoxynucleotide significantly alters the activity of ventral tegmental area dopamine neurons: an electrophysiological study.

In this study, we determined the activity of midbrain dopamine (DA) neurons in male albino rats following the intracerebroventricular (i.c.v.) administration of antisense oligodeoxynucleotide (aODN) against the mRNA for the NR1 subunit of the NMDA receptor. In addition, the effect of aODN on the specific binding of the NMDA receptor ligand [(3)H]MK-801 was also examined in various brain areas, including the midbrain. Antisense ODN against the NR1 mRNA, the corresponding sense ODN (sODN) or saline was continuously administered into the right ventricle of rats by osmotic minipumps for 7 days (20 nmol/day). Autoradiographic binding studies indicated that aODN significantly reduced the density of [(3)H]MK-801 binding by an average of 20-30% in several forebrain regions, including the anterior cingulate cortex, caudate putamen, and nucleus accumbens. However, [(3)H]MK-801 binding was not significantly altered in the ventral tegmental area (VTA) or substantia nigra pars compacta (SNC). Subsequently, using the technique of extracellular single-unit recording, the number, as well as the firing pattern, of spontaneously active DA neurons was determined in the VTA and SNC. The administration of aODN did not significantly alter the number of spontaneously active VTA and SNC DA neurons compared to saline- of sODN-treated animals. Furthermore, the firing pattern of spontaneously active SNC DA neurons was not significantly altered. However, for spontaneously active VTA DA neurons, the administration of aODN significantly decreased the percent events in bursts, number of bursts, and percentage of DA neurons exhibiting a bursting pattern compared to saline- and sODN-treated animals, i.e., neurons show less bursting activity. The present results suggest that subchronic aODN treatment against the mRNA for the NR1 subunit of the NMDA receptors can reduce NMDA receptor number and can result in an altered activity of spontaneously active VTA DA neurons in anesthetized rats.

Action Potentials↗

Prefrontal microcircuits: membrane properties and excitatory input of local, medium, and wide arbor interneurons.

To elucidate cortical mechanisms involved in higher cortical functions such as working memory, we have examined feedforward excitation transmitted by identified pyramidal cells to interneurons with predominantly horizontal axonal arbors, using dual somatic recordings in prefrontal cortical slices. Interneurons with local (narrow) axonal arbors, especially chandelier interneurons, exhibited extremely narrow action potentials and high evoked firing rates, whereas neurons identified with wide arbor axons generated wider spikes and lower evoked firing rates with considerable spike adaptation, resembling that of pyramidal cells. Full reconstruction of differentially labeled neuronal pairs revealed that local arbor cells generally received a single but functionally reliable putative synaptic input from the identified pyramidal neuron member of the pair. In contrast, more synapses (two to five) were necessary to depolarize medium and wide arbor neurons reliably. The number of putative synapses and the amplitude of the postsynaptic response were remarkably highly correlated within each class of local, medium, and wide arbor interneurons (r = 0.88, 0.95, and 0.99, respectively). Similarly strong correlations within these subgroups were also present between the number of putative synapses and variance in the EPSP amplitudes, supporting the validity of our morphological analysis. We conclude that interneurons varying in the span of their axonal arbors and hence in the potential regulation of different numbers of cortical modules differ also in their excitatory synaptic input and physiological properties. These findings provide insight into the circuit basis of lateral inhibition and functional interactions within and between cortical columns in the cerebral cortex.

Action Potentials↗

Recognition memory correlates of hippocampal theta cells.

Investigations of hippocampal theta cell activity have typically involved behavioral tasks with modest cognitive demands. Recordings in rats locomoting through space or engaged in simple stimulus discrimination or conditioning have revealed some place specificity and S(+)/S(-) selectivity in addition to the hippocampal EEG theta-related behavioral/motor correlates. However, little data exist regarding theta cell activity during performance of more cognitively demanding, hippocampal-dependent recognition memory tasks. Here, we examined the cognitive firing correlates of theta cells in rats that were performing an olfactory recognition memory task with distinct sample and test phases. Discriminant analysis revealed odor and match/nonmatch memory correlates in theta cell activity comparable in relative magnitude to that of the principal cells. Odor-specific theta cell responses in the sample phase were restricted primarily to CA1 and linked to task performance. In the test recognition phase, match/nonmatch theta cells were found primarily in the CA3 and CA1 fields, most of which exhibited greater activity on correct nonmatch trials in which recognition occurred than on error match trials in which recognition failed. Odor selectivity of the match/nonmatch signaling was greatest in the dentate gyrus (DG) and CA3 and least in CA1. This inverted pattern of stimulus specificity in the sample versus test phase was similar to that observed in principal cells but with a greater contrast between the CA1 and DG/CA3 fields. Together, these findings suggest that theta cells actively participate in hippocampal recognition memory processing and play a specific role in shaping the cognitive firing properties of the hippocampal principal cells.

Action Potentials↗