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Biomedical subjects

G T Pearson

Publications and source records attributed to G T Pearson.

9 recordsLinked to original sources

Complex correlations between the morphology, electrophysiology and peptide immunohistochemistry of guinea-pig enteric neurones.

Neuroanatomical, electrophysiological and immunohistochemical techniques were used to describe correlations between soma morphology and electrophysiological properties in two groups of guinea-pig enteric neurones posing particular challenges. Lucifer Yellow-staining of 542 myenteric plexus neurones of duodenum revealed a great diversity of neuronal morphology. The distribution was: Dogiel Type I 27%, Dogiel Type II 54%, Stach Type IV 9%; 10% were unclassified. Correlations were sought in 59 of these cells between morphology and electrophysiological properties but no particular association was recognised. Dynorphin A(1-8)-like immunoreactivity (Dyn A(1-8)-IR) was found in up to 90% of identified submucous neurones of guinea-pig ileum. Of 62 S-neurones, 41 showed 'weak' and 19 had 'intense' Dyn A (1-8)-IR. There was no evidence of Dyn A(1-8)-IR in 2 S-neurones, nor in 8/8 AH-neurones. As for 11/16 vasoactive intestinal peptide- (VIP-) IR neurones, there was a strong correlation between the presence of 'weak' Dyn A(1-8)-IR and the occurrence of inhibitory (IPSPs) and slow excitatory synaptic potentials (EPSPs) (13/16 cells tested), which were never observed in neurones with 'intense' Dyn A(1-8)-IR (16/16) or neuropeptide Y (NPY)-IR (8/8). Similarly, 7/7 neurones with 'weak' Dyn A(1-8)-IR, but not those (7/7) with 'intense' Dyn A(1-8)-IR, hyperpolarised or showed a conductance change to noradrenaline. It was concluded that dynorphin A(1-8)-like-IR was contained in two populations of submucous neurone that are anatomically, immunohistochemically, electrophysiologically and pharmacologically distinct and closely related to those containing VIP and NPY. Furthermore, as in the myenteric plexus throughout the small intestine, opioid peptides are not expressed in Dogiel Type II cells.

Animals

The hyperactive child: an update.

The physician is uniquely qualified to manage the multiple facets of attention-deficit hyperactivity disorder. This clinically oriented update reviews the current state of the art regarding diagnosis and management of hyperactive children. Three case reports emphasize the wide variation of clinical problems presented by this frequently occurring disorder of childhood. Epidemiology, differential diagnosis, associated features, neurobiologic mechanisms, treatment, long-term outcome, and attention-deficit disorder in adults are addressed. Although medication is an important tool in the treatment of this condition, follow-up studies confirm the importance of a multimodal treatment approach.

Adolescent

Electrophysiology and morphology of vasoactive-intestinal-peptide-immunoreactive neurones of the guinea-pig ileum.

Simultaneous intracellular staining and electrophysiological recording techniques have been applied to neurones of guinea-pig myenteric plexus-longitudinal muscle preparations. With micro-electrodes filled with a solution of the fluorescent dye Lucifer Yellow, neurones were first characterized morphologically and electrophysiologically, and subsequently subjected to an indirect immunohistochemical method for the detection of vasoactive intestinal peptide (VIP)-like immunoreactivity. Cross-correlations of morphology, electrophysiology and VIP immunoreactivity were successfully achieved in a total of 164 neurones. Sixty-three had the slow after-hyperpolarization characteristic of AH neurones; 101 cells displayed fast excitatory post-synaptic potentials (e.p.s.p.s) in response to transmural or focal stimulation and were therefore, by definition, S neurones. Unequivocal VIP immunoreactivity was observed in 25 (25%) S neurones, which, with only one exception, had Dogiel Type I morphology (i.e. many short soma processes and a single long process). In contrast, AH neurones had Dogiel Type II morphology (i.e. smooth soma with several long processes) and none showed VIP immunoreactivity. In addition to cholinergic fast e.p.s.p.s., non-cholinergic slow synaptic inputs were evoked in seventeen of the twenty-two VIP-immunoreactive S neurones tested. Both the fast and slow e.p.s.p.s could be elicited by stimulation of the preparation, oral or aboral to the site of recording. These observations demonstrate that, in the guinea-pig ileum, myenteric plexus neurones showing VIP immunoreactivity are of a single electrophysiological type (S neurones) and belong to essentially one morphological class (Dogiel Type I).

Action Potentials

Human pancreatic acinar cells: studies of stimulus-secretion coupling.

Elements of stimulus-secretion coupling were studied in human pancreatic acinar cells by using tissue samples obtained from cadaver organ donors. In pancreatic fragments, acetylcholine evoked amylase secretion as well as potassium release and increased the outflux of 45Ca and 86Rb from the prelabeled tissue. In patches of basolateral plasma membrane excised from acinar cell clusters, single-channel potassium currents were recorded. The inside of the plasma membrane faced the bath solution, allowing the effects of changes in the free ionized calcium concentration in contact with the membrane interior to be tested. Two types of calcium-activated potassium-selective channels were found with unit conductances of about 250 and 50 picosiemens (pS), respectively. In both cases channel opening was determined by the electrical potential difference across the plasma membrane and the free ionized calcium concentration in the bath solution. The probability of channel opening was markedly increased by elevation of the free ionized calcium concentration in contact with the membrane inside. The results suggest that the acetylcholine-evoked cellular potassium release occurs via selective membrane potassium channels opened by calcium released intracellularly after the action of the secretagogue.

Acetylcholine

The role of intrinsic, non-adrenergic, non-cholinergic inhibitory nerves in the regulation of distensibility of the guinea-pig colon.

1. The lengthening responses of segments of distal colon of guinea-pigs to applied weights were measured. 2. Distensibility was reduced by tetrodotoxin and quinidine; increased by atropine and hyoscine, and unaffected by guanethidine and phentolamine. 3. Tension changes produced by controlled stretches were increased by tetrodotoxin. 4. These results suggest that there is a net, inhibitory, non-adrenergic, non-cholinergic influence acting on the muscle during stretch against a background of cholinergic excitatory tone. This inhibitory activity may be activated reflexly by stretch.

Animals