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G I Hatton

Publications and source records attributed to G I Hatton.

At least 91 records · Page 5Linked to original sources

A reliable method for immunocytochemical identification of Lucifer Yellow injected, peptide-containing mammalian central neurons.

An immunocytochemical procedure is described for reliably determining the hormone content of magnocellular neuroendocrine neurons that have been injected with Lucifer Yellow in slices of rat hypothalamus. The chief advantages of this procedure over others currently available are: (a) it permits whole mount observation of the tissue, and thus, of the morphology of filled cell(s) as well as of such phenomena as dye-coupling; (b) the reliability of tissue preparation and peptide determination has been optimized so that about 85% of injected cells are identified immunocytochemically; and (c) the final immunostained product is permanent, permitting bright-field examination of the injected cell. Relative advantages and limitations of this and other recently published methods are discussed.

Animals↗

Dynamic neuronal-glial interactions in hypothalamus and pituitary: implications for control of hormone synthesis and release.

Various lines of evidence have suggested that astrocytes play a dynamic role in control of hormone synthesis and release from the CNS. The model system most studied has been the rat hypothalamo-neurohypophysial system, consisting chiefly of the supraoptic and paraventricular nuclei and their axonal terminals. Neurons of this system manufacture and secrete oxytocin and vasopressin. Electron microscopic studies have shown that certain physiological conditions (e.g., dehydration, lactation) produce increases in direct apposition among these neurosecretory cells, an effect due to withdrawal of glial processes from between the neurons. Neurohypophysial astrocytes (pituicytes) show dynamic interactions with the neurons at the level of the terminals, by engulfing them and interposing processes between the terminals and the basement membrane when hormone demand is low. Pituicyte processes retract from both areas when hormone demand is high, allowing the neuronal terminals direct access to the perivascular space. Recently, osmotic manipulations (in the physiological range) have shown that these changes can be produced in vitro in neurohypophysial explants without stimulated hormone release. Experiments on cultured adult rat pituicytes have revealed similar morphological changes in response to noradrenaline. These changes were reversed or blocked by propranolol. The increase in direct soma-somatic apposition (7-9 nm separation) of magnocellular neurons could produce a tonic rise in (K+)o which would increase protein synthesis and contribute to the raised excitability of these neurons. Also, the removal of interposed glia could allow the formation of gap junctions and specialised synapses which are known to occur between these neurons. These in turn may participate in producing the coordinated firing that maximizes hormone release. The interactions of pituicytes with the terminals in the neurohypophysis suggests that these astrocytes are also a part of the mechanism of control of hormone release.

Action Potentials↗

Plasticity in the in vitro neurohypophysis: effects of osmotic changes on pituicytes.

The ultrastructure of rat neurohypophyses incubated in vitro was studied to investigate secretion-related changes that may be intrinsic to the isolated neurohypophysis and to establish the morphological integrity of this preparation. Neurohypophyses were incubated for 2 h in an in vitro chamber in medium of low (290 mosM/kg), normal (310 mosM/kg), or high (340 mosM/kg) osmolality. Subsequent morphometric analyses at the ultrastructural level revealed that the number of axons completely enclosed by pituicyte cytoplasm was inversely related and the amount of neuro-vascular contact was directly related to the osmolality of the medium. These results mimic those found in preparations from in vivo experiments with hydrated and dehydrated rats. The number of pituicyte liposomes did not vary consistently with osmolality. We conclude that: dynamic interactions between pituicytes and neurosecretory axons may be stimulated, at least in part, by the immediately surrounding milieu; pituicytes may have an active role as modulators of hormone release; and the in vitro neurohypophysis provides a suitable model to study events intrinsic to this area.

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Neuronal/glial plasticity in the supraoptic dendritic zone: dendritic bundling and double synapse formation at parturition.

The magnocellular neurosecretory cells of the supraoptic nucleus increase production and release of oxytocin and/or vasopressin under such conditions as parturition, lactation and dehydration. These stimuli have been shown to result in increased direct apposition of neuronal membranes and the formation of double synapses (one presynaptic terminal contacting two postsynaptic elements) within the supraoptic nucleus at the level of the cell bodies. These morphological changes are due to the retraction of the thin glial processes which are normally interposed between adjacent neurons. The present study was undertaken to ascertain whether, and to what extent, neuronal/glial plasticity occurs in the dendritic zone (i.e. the ventral glial laminar area) of the supraoptic nucleus. The instances of two or more dendrites with membrane in direct apposition (dendritic bundles), the number of dendrites per bundle, the amount of dendritic membrane in direct apposition and the percentage of dendrites contacted by double synapses were quantified at the ultrastructural level in virgin female, prepartum (21 days of gestation), postpartum (day of parturition) and lactating rats. All parameters measured varied significantly with the hormone demand states created by pregnancy and lactation, apparently due to glial retraction. Moreover, in the 2-24 h period between pre- and postpartum there was a significant increase in the number of dendrites per bundle, dendritic membrane in direct apposition and the percentage of dendrites contacted by double synapses. This time course corresponds to the known increased release of oxytocin and vasopressin at parturition. These findings constitute the first demonstration that dendritic bundles and double synapses occur in the ventral glial lamina/dendritic zone of the supraoptic nucleus and vary under the physiological conditions of pregnancy, parturition and lactation.

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Axon collaterals of supraoptic neurones: anatomical and electrophysiological evidence for their existence in the lateral hypothalamus.

The magnocellular neurones of the supraoptic nucleus which synthesize and secrete vasopressin and oxytocin have been commonly regarded as simple "output" neurones in that they receive an input, generate an action potential and in turn release hormone from their terminals in the posterior pituitary. Three lines of evidence are presented which suggest that rat supraoptic nucleus neurons also have axon collaterals which terminate in the hypothalamus close to the nucleus. Small injections of horseradish peroxidase were made directly into the nucleus in hypothalamic slices, allowing visualization of the axons of supraoptic neurones. Collaterals of these axons could be observed in regions both dorsal and dorsolateral to the supraoptic nucleus. In a separate series of experiments, sections of perfusion-fixed hypothalamus were stained for vasopressin and oxytocin using specific antisera. Peptide-containing collaterals of both types were observed near the supraoptic nucleus, in a region similar to that seen after horseradish peroxidase injections. Finally, electrophysiological studies were carried out on hypothalamic slices containing the supraoptic nucleus. A small concentric bipolar stimulating electrode was placed directly into the nucleus and activity of lateral hypothalamic neurones within 0.1-1 mm of the nucleus was recorded. Of 68 neurones studied, 52 were excited by supraoptic stimulation via a synaptic pathway that could be blocked by Ca2+ -free solutions containing 18 mM Mg2+. These studies suggest that supraoptic neurones communicate via axon collaterals with other neurones in the lateral hypothalamus, in addition to their previously well characterised functional role in neurosecretion.

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An incubation chamber for the simultaneous, on-slide treatment of brain sections with different reagents.

The design and use of a new microscope slide incubation chamber is described. The chief advantage of this device is that it allows the simultaneous incubation of tissue sections which are mounted on glass slides, either together with the same reagent, or individually with different reagents. Simple construction makes this chamber durable, reliable, and inexpensive. Advantages and disadvantages of this device, as well as, other published devices are discussed.

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Dye coupling in hypothalamic slices: dependence on in vivo hydration state and osmolality of incubation medium.

Electrotonic coupling is one mechanism which may coordinate the electrophysiological activity of a population of neurons. By measuring the incidence of dye coupling, we have investigated whether conditions that stimulate hormone secretion by hypothalamic magnocellular neuroendocrine cells affect coupling between these neurons. Neurons in the magnocellular regions of the paraventricular nucleus (PVN), in slices prepared from normally hydrated or chronically dehydrated male rats, were intracellularly injected with the fluorescent dye Lucifer Yellow CH. The dye coupling index (DCI), the ratio of the number of dye-coupled neurons to the total number of filled cells, was determined for each treatment group. The DCI for slices from dehydrated animals incubated in 310 milliosmoles/kg of medium (0.121) was significantly lower than that for slices for hydrated animals incubated in medium of the same osmolality (0.333). This decrease was reversed when slices from dehydrates were incubated in medium having an osmolality of 340 milliosmoles/kg (DCI = 0.307). There was also evidence for an interaction between slices incubated in the same chamber: the DCI in slices from dehydrated animals was significantly higher (0.475) when slices from normally hydrated rats were also present in the incubation chamber. Based on these data and on cited evidence, we suggest that the osmolality of the extracellular fluid and the local concentration of sex steroid hormones may influence dye coupling in the PVN.

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Polyethylene glycol embedding: a technique compatible with immunocytochemistry, enzyme histochemistry, histofluorescence and intracellular staining.

A technique is described which permits rapid processing of neural tissue for light microscopic analysis of sections of 1-40 microns thickness. This technique was developed as an alternative to paraffin embedding. When compared to paraffin, polyethylene glycol (PEG) offers the following advantages: 10-15 degrees C lower embedding temperatures, net tissue shrinkage of less than 5% vs approximately 50% in paraffin, and approximately one-half the embedding time. Tissue orientation during embedding and sectioning is particularly easy to control, e.g. 500 microns brain slices can be routinely flat-embedded and sectioned at 5 microns to form excellent ribbons. Since PEG is water-soluble, tissue may be dehydrated with a series of aqueous PEG solutions; the embedding matrix is easily removed by washing with a variety of aqueous buffers. These procedures allow subsequent electron microscopic analysis of material with generally well preserved ultrastructure. However, PEG is hygroscopic, thus tissue blocks become soft and difficult to section in high (greater than 90%) relative humidity. PEG was found to be compatible with intracellular staining with Lucifer yellow, horseradish peroxidase enzyme histochemistry, aqueous histofluorescence and immunocytochemical demonstration of neuronal peptides and glial fibrillary acidic protein.

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Mapping of cholinergic neurons associated with rat supraoptic nucleus: combined immunocytochemical and histochemical identification.

Recent electrophysiological experiments have suggested that electrical stimulation of an area dorsolateral to the rat supraoptic nucleus (SON) activates a cholinergic pathway to the vasopressin neurons of the SON. As no detailed information is available concerning the distribution and projections of the cholinergic neurons in this area, we have sought to provide this using a combination of choline acetyltransferase (ChAT) immunocytochemistry and acetylcholinesterase (AChE) histochemistry. In some cases, these techniques were applied to the same neurons. Almost all neurons just outside of the SON that showed ChAT-like immunoreactivity also stained densely for AChE. These cells were distributed in a region dorsolateral to the SON. Light, punctate AChE staining around SON neurons was observed predominantly in the more ventral and posterior parts of the nucleus and were suggestive of synaptic terminals. Cholinergic fibres were found to enter the SON mainly from a lateral direction, turning in an anterior or posterior direction inside the nucleus. These results support the conclusion of earlier studies that the major cholinergic input to the SON arises in its immediate vicinity. We hypothesize that these ChAT/AChE-positive neurons are those responsible for cholinergically mediated, osmotically-stimulated release of vasopressin.

Acetylcholinesterase↗

The hypothalamic slice approach to neuroendocrinology.

The magnocellular peptidergic cells of the supraoptic and paraventricular nuclei comprise much of what is known as the hypothalamo-neurohypophysial system and is involved in several functions, including body fluid balance, parturition and lactation. While we have learned much from experiments in vivo, they have not produced a clear understanding of some of the crucial features associated with the functioning of this system. In particular, questions relating to the osmosensitivity of magnocellular neurones and the mechanism(s) by which their characteristic firing patterns are generated have not been answered using the older approaches. Electrophysiological studies with brain slices present direct evidence for osmosensitivity, and perhaps even osmoreceptivity, of magnocellular neurones. Other evidence indicates that the phasic bursting patterns of activity associated with vasopressin-releasing neurones (a) occur in the absence of patterned chemical synaptic input, (b) may be modulated by electrotonic conduction across gap junctions connecting magnocellular neurones and (c) are likely to be generated by endogenous membrane currents. These results make untenable the formerly held idea that phasic bursting activity is dependent upon recurrent synaptic inhibition.

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Synaptic activation of phasic bursting in rat supraoptic nucleus neurones recorded in hypothalamic slices.

Using slices of rat hypothalamus (400-500 micron thick), intracellular and extracellular recordings were made of activity from eight-eight neurones in the supraoptic nucleus (s.o.n.). Electrical stimulation with single stimuli dorsolateral to s.o.n. was excitatory to fifty-nine phasically firing cells (67% of total, 95% of phasic cells). In intracellularly recorded cells, such stimulation reliably evoked excitatory post-synaptic potentials which often gave rise to action potentials. Trains of stimuli reliably triggered bursts of action potentials which continued after stimulation had ceased. Stimulation more dorsal or more lateral to the critical region or in the optic tract adjacent to the s.o.n. did not evoke responses. Stimulation dorsomedial to the nucleus produced only direct, probably antidromic, activation of s.o.n. neurones. Application of acetylcholine (ACh) by microperifusion in the s.o.n. region mimicked the effect of electrical stimulation by evoking prolonged discharge in eight of eight tested phasically firing s.o.n. neurones. Non-phasic, continuously firing neurones were either inhibited or unaffected by electrical stimulation in the critical region. The discharge pattern of unaffected cells (six cells) was not modified by locally applied ACh, although they were excited by local application of sodium glutamate. The excitatory, synaptically mediated, responses to stimulation in the dorso-lateral region were blocked reversibly by the nicotinic blockers, d-tubocurarine chloride and hexamethonium bromide (in seven of seven cells tested), but were unaffected by the muscarinic blocker, atropine, even at high concentrations (two of two cells tested). Thus, this activation appears to be mediated by nicotinic receptors. In separate experiments with the position of stimulating and recording electrodes reversed, s.o.n. stimulation was effective in antidromically activating one cell of sixty-eight recorded extracellularly in the dorsolateral region. Some slowly firing s.o.n. neurones (less than 4 Hz) were inhibited by electrical stimulation in the same area in which phasically active cells were excited. In these cases, stimulation produced large summating i.p.s.p.s. and/or inhibition of ongoing activity for the duration of the stimulus train. These results support evidence from earlier studies that the cholinergic input to s.o.n. neurones originates from cells in its close proximity, and suggests this input to be via a monosynaptic pathway.

Acetylcholine↗

Some well-kept hypothalamic secrets disclosed.

The magnocellular neuropeptidergic cells of the supraoptic and paraventricular nuclei comprise much of what is known as the hypothalamoneurohypophyseal system and is involved in several functions, including body fluid balance, parturition, and lactation. In vivo experiments have not produced a clear understanding of some of the crucial features associated with the functioning of this system. In particular, questions relating to the osmosensitivity of magnocellular neurons and the mechanisms(s) by which their characteristic firing patterns are generated have not been answered by using the older approaches. Electrophysiological studies with brain slices present direct evidence for osmosensitivity, and perhaps even osmoreceptivity, of magnocellular neurons. Other evidence is reviewed indicating that the phasic bursting patterns of activity associated with vasopressin-releasing neurons: 1) occur in the absence of patterned chemical synaptic input, 2) are probably influenced by localized changes in extracellular K+ concentrations, 3) may be modulated by electrotonic conduction across gap junctions connecting magnocellular neurons, and 4) are likely to be generated by endogenous membrane currents.

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Immunoreactive glial fibrillary acidic protein in pituicytes of the rat neurohypophysis.

The glial fibrillary acidic protein (GFAP) has been associated with glial filaments. Electron microscopic examination of rat pituicytes in our laboratory has revealed few of these 8-9 nm filaments that are present in other astrocytes. Since the literature is inconsistent on the existence of filaments in pituicytes, we investigated the content of GFAP in these cells. Immunocytochemical methods revealed a strong positivity for GFAP in pituicytes. Furthermore, the primary antiserum dilution required for optimal staining suggests that there may be more GFAP in pituicytes than in other glial elements. The significance of immunoreactive GFAP in pituicytes is discussed in terms of possible functions and embryonic origins.

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Synaptic inputs and action potentials of magnocellular neuropeptidergic cells: intracellular recording and staining in slices of rat hypothalamus.

Excitatory postsynaptic potentials (EPSPs) and action potentials of magnocellular neuropeptidergic cells (MNCs) in the paraventricular (PVN) and supraoptic nuclei (SON) were studied with intracellular recording in coronal slices of rat hypothalamus. The fluorescent dye Lucifer Yellow (LY) was injected intracellularly and the cells were subsequently identified as magnocellular (somata greater than 15 x 15 micrometer). These cells generally had a large cytoplasm-to-nucleus ratio. In PVN it was frequently possible to trace filled dendrites to the ependyma of the third ventricle, and occasionally dendritic spines could be seen. Electrical stimuli in areas dorsolateral and ventrolateral to the fornix column evoked EPSPs in some anatomically identified MNCs of PVN, which indicates that presynaptic fibers innervating MNCs approach PVN from this region. Short-latency (less than 1 msec) spikes could be evoked in many MNCs of PVN by stimulation near SON, which is consistent with the known projection to the neurohypophysis of many MNCs. Action potentials in MNCs of PVN and SON had significantly longer durations at one-third spike height (mean +/- S.D. = 2.06 +/- 0.6 msec) than hippocampal CA1 pyramidal cells (1.17 +/- 0.29 msec). This suggests that neuroendocrine cells in mammals and some lower vertebrates and invertebrates are similar in this regard.

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Magnocellular neuropeptidergic neurons in hypothalamus: increases in membrane apposition and number of specialized synapses from pregnancy to lactation.

Morphological changes which have been hypothesized to accompany functional alterations in magnocellular neuropeptidergic cells (MNCs) were studied in female rats. Direct soma-somatic appositions between the MNC profiles of two nuclear groups, the supraoptic nucleus (SON) and nucleus circularis (NC) were investigated at the ultrastructural level in 4 groups of animals: virgin females, immediately pre-partum pregnant rats, post-partum and 14-day lactating animals. The percentage of SON MNC profiles in soma-somatic apposition and the amount of membrane in direct contact significantly increased over control levels by the last day of pregnancy. Further significant increases in these measures were observed in lactating rats. MNCs in NC showed steady gradual increases on these measures with significant differences from controls occurring in the post-partum group. The percentage of SON cell profiles with double synapses (i.e., presynaptic terminals making synaptic contact with two postsynaptic neurons) was significantly elevated in lactating rats (approximately 10%) over the next highest group (approximately 1% for post-partum rats). In NC, approximately 10% of the cell profiles sampled had such synapses but no differences among treatments occurred. The changes during late pregnancy suggest that close appositions may serve to enhance the metabolic activity of MNCs at a time when there is a build-up of stored oxytocin. Further increases in cell-cell contact and the addition of double synapses on possibly electrotonically coupled MNCs during lactation may serve a synchronizing function, particularly in the oxytocin cells participating in the milk ejection reflex.

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Magnocellular neuropeptidergic terminals in neurohypophysis: rapid glial release of enclosed axons during parturition.

The ultrastructure of pituicytes as well as their relationship with neurosecretory axons were measured from the following groups of adult rats: virgin females; immediately pre-partum; post-partum; and following 14 days of lactation. Both parturition and lactation brought about a significant decrease in the number of pituicytes with neurosecretory axons completely surrounded by their cytoplasm. Since these two physiological states are each characterized by increased neurohypophysial hormone release, the data suggest that pituicyte enclosure of neurosecretory axons occurs mainly during conditions of low hormone release. Examination of pituicyte size and number of lipid inclusions, and the number of synaptoid contacts from neurosecretory axons onto pituicytes showed no differences among groups.

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Phasic bursting activity of rat paraventricular neurones in the absence of synaptic transmission.

1. The purpose of this study was to determine whether the phasic bursting activity, characteristic of certain magnocellular neuropeptidergic neurones in rat hypothalamus, is dependent upon chemical synaptic input.2. Slices of hypothalamus were placed in an in vitro chamber with hippocampal slices. The synaptic response in the CA1 cell layer from Schaffer collateral stimulation was monitored before, during and after synaptic transmission was blocked by superfusion of medium containing high Mg(2+) (either 18.7 or 9.3 mM) and low Ca(2+) (0.05 mM). This well studied pathway was chosen as an assay of synaptic blockade because hypothalamic circuitry is relatively unknown.3. The electrical activity of twenty-two phasic bursting neurones in the lateral portion of the paraventricular nucleus (p.v.n.) was recorded. Nineteen of twenty-two phasic p.v.n. neurones were recorded only after synaptic transmission was blocked. The remaining three cells were firing phasically in standard medium when first encountered and continued to display phasic bursting activity for up to 1.25 hr after synaptic blockade. Active cells in nearby hypothalamic areas did not show phasic bursting patterns either before or after synaptic transmission was blocked.4. The phasic bursting activity of the p.v.n. neurones in this study and that of previously reported p.v.n. cells in vivo were similar in (a) firing rate within bursts (b) burst length and (c) silent period duration.5. It is concluded that phasic bursting in p.v.n. magnocellular neuropeptidergic cells is not dependent upon synaptically mediated excitation or recurrent inhibition as has been hypothesized earlier.6. Alternative hypotheses, based upon acute changes in [K(+)](o), endogenous membrane currents and electrotonic coupling are discussed as possible explanations of phasic bursting in these magnocellular neuropeptidergic cells.

Action Potentials↗