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F Moos

Publications and source records attributed to F Moos.

At least 19 recordsLinked to original sources

Oxytocin neurones are recruited into co-ordinated fluctuations of firing before bursting in the rat.

Hypothalamic oxytocin neurones have dual physiological functions with associated characteristic activity patterns: a homeostatic osmoregulatory role involving continuous low frequency firing at a relatively constant rate, and roles associated with reproduction involving periodic, brief, synchronised, high frequency bursts of spikes. Apparently the same neurones maintain both roles during reproduction, when both activity patterns occur simultaneously, although sometimes factors linked to the homeostatic response predominate and prevent bursting. With the object of understanding how oxytocin neuronal networks manage both roles during lactation, we analysed basal activity between bursts in simultaneously recorded neurones to reveal potentially adaptive changes in network behaviour. Negative autocorrelation on a time scale of 0.5-2 s occurs in basal activity between bursts but also in non-bursting oxytocin neurones, and can therefore be associated with the system's homeostatic role. Although the system responds to the pups suckling by the induction of bursting, there are also increasing fluctuations in firing that are positively correlated in some simultaneously recorded neurones during basal activity between bursts. A few seconds before bursts, cross-correlation strengthens, irregularity of firing increases, and serial correlation (autocorrelation) weakens, all substantially. After pharmacological treatments known to facilitate bursting, cross-correlation and irregularity of firing increase and autocorrelation weakens, and the reverse occurs in conditions that delay bursting (hyperosmotic stress and pharmacological interventions). Our analyses suggest heterogeneity in the population of oxytocin neurones during lactation; the range including 'leader neurones' that readily display co-ordinated fluctuations in firing in response to suckling and escape from negative autocorrelation just before bursts, and 'follower neurones' that fire at a relatively constant rate in no apparent relationship to others, except when recruited late to bursting, probably in response to massive stimulation from already bursting neurones. The steep increases in correlation a few seconds before bursts reflect an accelerating process of recruitment of follower neurones to co-ordinated fluctuations, leading to the phase transition that constitutes the critical stage of burst generation.

Acetylcholine↗

Age-related modifications of the morphological organization of pituicytes are associated with alteration of the GABAergic and dopaminergic innervation afferent to the neurohypophysial lobe.

Ageing is known to induce a marked activation of astrocytes within various regions of the central nervous system. To date, the age-related factors responsible for these modifications are unknown. The neural lobe of the hypophysis (NL) is a particular brain region which does not contain neurons but does contain specialized astrocytes, called pituicytes, and numerous terminals of afferent axons, including (i) peptidergic neurohypophysial axons which terminate on the NL blood vessels, and (ii) axons containing both gamma amino-butyric acid (GABA) and dopamine (DA) which form contacts with pituicytes. Because evidence has recently been provided that GABA signalling mediates the morphological organization of astrocytes, the present study was designed to determine whether modifications of pituicytes during ageing were associated with modifications of the GABAergic axons innervating the NL. We show here that, in adult rats, GABA/DA axons form preferential synaptic-like contacts with pituicytes which express both GABAA and D2 dopamine receptors. We then show that, during ageing, pituicytes undergo dramatic modifications of their morphology, correlatively with marked modifications of the GABA/DA fibres innervating the NL. Lastly, in vitro experiments indicate that modifications of the morphology of pituicytes similar to those observed during ageing were obtained by incubating isolated NL of adult rats with a GABAA receptor agonist and/or a D2 dopamine receptor antagonist, whereas inverse modifications were observed when NL of aged rats were incubated with a GABAA receptor antagonist and a D2 dopamine receptor agonist. Taken together, these data suggest that the age-related morphological changes of pituicytes result from the alteration of the GABA/DAergic innervation of the NL.

2,3,4,5-Tetrahydro-7,8-dihydroxy-1-phenyl-1H-3-ben↗

New aspects of firing pattern autocontrol in oxytocin and vasopressin neurones.

In the rat, oxytocin (OT) and vasopressin (AVP) neurones exhibit specific electrical activities which are controlled by OT and AVP released from soma and dendrites within the magnocellular hypothalamic nuclei. OT enhances amplitude and frequency of suckling-induced bursts, and changes basal firing characteristics: spike patterning becomes very irregular (spike clusters separated by long silences), firing rate is highly variable, oscillating before facilitated bursts. This unstable behaviour which markedly decreases during hyperosmotic stimulation (interrupting bursting) could be a prerequisite for bursting. The effects of AVP depend on the initial phasic pattern of AVP neurones: AVP excites weakly active neurones (increasing burst duration, decreasing silences) and inhibits highly active neurones; neurones with intermediate phasic activity are unaffected. Thus, AVP ensures all AVP neurones discharge with moderate phasic activity (bursts and silences lasting 20-40 s), known to optimise systemic AVP release. V1a-type receptors are involved in AVP actions. In conclusion, OT and AVP control their respective neurones in a complex manner to favour the patterns of activity which are the best suited for an efficient systemic hormone release.

Animals↗

Onset of bursting in oxytocin cells in suckled rats.

1. We tested whether firing characteristics are associated with the onset of bursting in oxytocin cells during suckling. Extracellular electrical activity of paraventricular and supraoptic oxytocin cells was recorded in lactating rats from the beginning of suckling up to the first milk-ejection burst, which occurred either within less than 1 h of suckling (bursting cells) or after injecting facilitatory drugs (non-bursting cells). 2. Significant differences in the distributions of firing rate (using low, intermediate and high categories, < or = 1, 1-3 and > 3 spikes s-1, respectively) of bursting and non-bursting cells were observed during suckling. Thirty minutes after pup application, most bursting cells (56%) had an intermediate firing rate, whereas non-bursting cells had either a low (36%) or high (40%) firing rate. 3. Thirty minutes after applying the pups, probability of bursting was highest for cells firing at 1-4 spikes s-1, and lowest for those firing above 5 spikes s-1. 4. Bursting cells with high initial firing rate decreased their firing rate substantially during suckling while most of those with low initial firing rate showed increases. For non-bursting cells, activity was maintained. 5. There were marked differences in firing rate and its evolution between paired bursting cells. The firing rates for non-bursting cell pairs were similar (mostly either low or high), and remained stable during suckling. 6. In conclusion, we suggest that, as suckling proceeds, probability of bursting is related to the firing rate of oxytocin cells within the whole population, more specifically to the proportion of cells within the animal initially or subsequently displaying a critical firing rate (between 1 and 3 spikes s-1). The firing rates of cells which eventually burst and which are firing outside this range change in a direction which brings them into the preferred range for bursting. 7. We suggest that when bursting occurs unaided, a majority of oxytocin cells fire in the preferred bursting range and facilitate the bursting of cells outside this range. Since such cooperativity does not develop between non-bursting cells, it might be due to centrally released oxytocin.

Action Potentials↗

Agonist action of taurine on glycine receptors in rat supraoptic magnocellular neurones: possible role in osmoregulation.

1. To evaluate the implication of taurine in the physiology of supraoptic neurones, we (i) investigated the agonist properties of taurine on glycine and GABAA receptors of supraoptic magnocellular neurones acutely dissociated from adult rats, using whole-cell voltage clamp, (ii) studied the effects of taurine and strychnine in vivo by extracellular recordings of supraoptic vasopressin neurones in anaesthetized rats, and (iii) measured the osmolarity-dependent release of endogenous taurine from isolated supraoptic nuclei by HPLC. 2. GABA, glycine and taurine evoked rapidly activating currents that all reversed close to the equilibrium potential for Cl-, indicating activation of Cl(-)-selective channels. Glycine-activated currents were reversibly blocked by strychnine (IC50 of 35 nM with 100 microM glycine), but were unaffected by the GABAA antagonist gabazine (1-3 microM). GABA-activated currents were reversibly antagonized by 3 microM gabazine, but not by strychnine (up to 1 microM). 3. Responses to 1 mM taurine were blocked by strychnine but not by gabazine and showed no additivity with glycine-induced currents, indicating selective activation of glycine receptors. Responses to 10 mM taurine were partially antagonized by gabazine, the residual current being blocked by strychnine. Thus, taurine is also a weak agonist of GABAA receptors. 4. In the presence of gabazine, taurine activated glycine receptors with an EC50 of 406 microM. Taurine activated at most 70% of maximal glycine currents, suggesting that it is a partial agonist of glycine receptors. 5. In vivo, locally applied strychnine (300 nM) increased and taurine (1 mM) decreased the basal electrical activity of vasopressin neurones in normally hydrated rats. The effect of strychnine was markedly more pronounced in water-loaded rats. 6. Taurine, which is concentrated in supraoptic glial cells, could be released from isolated supraoptic nuclei upon hyposmotic stimulation. Decreases in osmolarity of 15 and 30% specifically enhanced basal release of taurine by 42 and 124%, respectively. 7. We conclude that supraoptic neurones express high amounts of glycine receptors, of which taurine may be regarded as a major natural agonist. We postulate that taurine, which can be released in hyposmotic situations, acts on glycine receptors to exert an inhibitory control on magnocellular neurones during alterations of body fluid homeostasis, implicating an active participation of glial cells in this neuroendocrine regulatory loop.

Animals↗

Rhythmic activities of hypothalamic magnocellular neurons: autocontrol mechanisms.

Electrophysiological recordings in lactating rats show that oxytocin (OT) and vasopressin (AVP) neurons exhibit specific patterns of activities in relation to peripheral stimuli: periodic bursting firing for OT neurons during suckling, phasic firing for AVP neurons during hyperosmolarity (systemic injection of hypertonic saline). These activities are autocontrolled by OT and AVP released somato-dentritically within the hypothalamic magnocellular nuclei. In vivo, OT enhances the amplitude and frequency of bursts, an effect accompanied with an increase in basal firing rate. However, the characteristics of firing change as facilitation proceeds: the spike patterns become very irregular with clusters of spikes spaced by long silences; the firing rate is highly variable and clearly oscillates before facilitated bursts. This unstable behaviour dramatically decreases during intense tonic activation which temporarily interrupts bursting, and could therefore be a prerequisite for bursting. In vivo, the effects of AVP depend on the initial firing pattern of AVP neurons: AVP excites weakly active neurons (increasing duration of active periods and decreasing silences), inhibits highly active neurons, and does not affect neurons with intermediate phasic activity. AVP brings the entire population of AVP neurons to discharge with a medium phasic activity characterised by periods of firing and silence lasting 20-40 s, a pattern shown to optimise the release of AVP from the neurohypophysis. Each of the peptides (OT or AVP) induces an increase in intracellular Ca2+ concentration, specifically in the neurons containing either OT or AVP respectively. OT evokes the release of Ca2+ from IP3-sensitive intracellular stores. AVP induces an influx of Ca2+ through voltage-dependent Ca2+ channels of T-, L- and N-types. We postulate that the facilitatory autocontrol of OT and AVP neurons could be mediated by Ca2+ known to play a key role in the control of the patterns of phasic neurons.

Action Potentials↗

Mortyn Jones Memorial Lecture. Limbic regions mediating central actions of oxytocin on the milk-ejection reflex in the rat.

Central oxytocin administration has a profound facilitatory effect on the patterning of the milk-ejection reflex in the lactating rat. Lesion and microinjection studies indicate that this action is, in part, mediated via a population of limbic neurones in the bed nuclei of the stria terminalis and ventrolateral septum, which have been shown to possess oxytocin receptors and to be activated by selective oxytocin-receptor agonists in vitro. In vivo electrophysiological recordings reveal that some of these neurones display cyclical activity which is highly correlated to each milk ejection, and are rapidly activated following i.c.v. administration of oxytocin, coincident with the facilitation of milk ejection activity. A hypothetical model is proposed in which this population of limbic neurones serves to gate the activity of a pacemaker which, in turn, coordinates the bursting of hypothalamic magnocellular neurones. The oxytocin innervation of these neurones and their expression of oxytocin receptors increases in the postpartum period, and the resultant enhanced sensitivity leads to a greater facilitatory response during lactation. Inhibitory opioid and noradrenergic inputs which converge on these oxytocin-sensitive neurones may function to switch off the facilitatory circuit during periods of stress. Thus, this population of limbic neurones participates in the regulation of neuroendocrine activity during lactation by providing an appropriate degree of feedback to alter the patterning of the milk-ejection reflex.

Animals↗

Evidence for connections between a discrete hypothalamic dorsochiasmatic area and the supraoptic and paraventricular nuclei.

In order to check the existence of direct or indirect connections between the hypothalamic supraoptic (SON) and paraventricular (PVN) nuclei, four retrograde traces were iontophoretically injected into these nuclei. The small injection sites were restricted to parts of the SON and PVN, enabling the identification of afferent neurons localized in their immediate vicinity. The tracer injections into any of these hypothalamic nuclei resulted in conspicuous labeling of cells gathered dorsally to the optic chiasma and the optic tract. This neuronal population was tentatively called dorsochiasmatic area. Double retrograde tracers injections into the ipsilateral SON and PVN gave evidence for some neurons containing both tracers in this dorsochiasmatic area. Otherwise, labeled parvocellular neurons were occasionally found in one PVN, after injecting retrograde tracer into either the ipsilateral SON or the contralateral PVN. As few connections exist between the four magnocellular nuclei, the dorsochiasmatic area connected with both the ipsilateral SON and PVN could play an important role in regulating the oxytocin and/or vasopressin systems.

Amidines↗

Evidence for reciprocal connections between the dorsochiasmatic area and the hypothalamo neurohypophyseal system and some related extrahypothalamic structures.

In the preceding article, a dorsochiasmatic area (DCh) was described that projects to both paraventricular (PVN) and supraoptic (SON) nuclei. The main afferents of the DCh, revealed by local injections of retrograde tracers, are the hypothalamic PVN and SON, lateral septal nuclei (LSV and SHy), bed nuclei of the stria terminalis (BST), anteroventral third ventricle region, particularly the median preoptic nucleus (MnPO), the subfornical organ, medial preoptic areas, arcuate hypothalamic nucleus, ventromedial hypothalamic nuclei, paraventricular thalamic nucleus, and, more caudally, several structures of the posterior hypothalamus and mesencephalon. The relations between DCh and BST, LSV, SHy, or MnPO appeared reciprocal. In view of their reciprocal relationships with the hypothalamo-neurohypophyseal system and some of their related extrahypothalamic structures, the DCh might be involved in the regulation of the vasopressin (AVP) and/or oxytocin (OT) systems, or in reproductive behavior.

Afferent Pathways↗

Oxytocin-containing pathway to the bed nuclei of the stria terminalis of the lactating rat brain: immunocytochemical and in vitro electrophysiological evidence.

Immunocytochemical staining within the forebrain of lactating rats revealed oxytocin-immunoreactive perikarya in a continuum running from the anterior parvocellular hypothalamic paraventricular nucleus through the anterior commissural nucleus and perifornical region. Beaded axons could be seen arising from these perikarya to enter the bed nuclei of the stria terminalis. In sections cut at a 45 degree angle to the parasagittal plane, much of this pathway could be maintained intact, and in vitro tissue slices prepared in this orientation were used for electrophysiological studies of oxytocinergic innervation of the bed nuclei. By extracellular recording, neurons of the bed nuclei of the stria terminalis were tested for their response to exogenous oxytocin and to stimulation of the paraventricular hypothalamus. Both short latency (3-40 ms) orthodromic excitation (26/78 neurons) and longer latency (greater than 100 ms) excitation (12/78 neurons) were observed following paraventricular hypothalamic stimulation, possibly representing mono- and polysynaptic inputs, respectively. Removal of extracellular Ca2+ blocked these orthodromic responses (n = 6). Antidromic invasion was seen in a further 11/78 neurons with characteristics of constant latency (mean = 5.9 +/- 0.7 ms), high frequency following (40-80 Hz) and persistence in Ca(2+)-free medium. When tested for the effect of oxytocin (10(-7) M), none (0/11) of the antidromically activated neurons were excited, but nine of 34 of the orthodromically excited neurons (both short and long latency) responded with a marked increase in activity. In three of eight cases, the orthodromic synaptic excitation following hypothalamic stimulation could be reversibly attenuated by the receptor antagonist [d(CH2)5,D-Tyr(OEt)2,Val4,Cit8]-vasopressin (0.5 or 2.5 x 10(-6) M), further substantiating the involvement of oxytocin. These data provide anatomical and electrophysiological evidence for an oxytocinergic innervation of the bed nuclei of the stria terminalis. This pathway is discussed in terms of possible involvement in mediating the facilitatory effect of oxytocin on the milk-ejection reflex of lactating rats which has been suggested to act through this part of the limbic system.

Animals↗

Immunocytochemical and ultrastructural studies on allografts of the pituitary neurointermediate lobe in the third cerebral ventricle of the rat.

Neurointermediate lobes from adult or 10-day-old rats were implanted by a stereotaxic procedure into the third ventricle of adult male rats, in an area close to the paraventricular nucleus. They were examined, using immunocytochemical and ultrastructural techniques, at times ranging from 1 week to 8 months. All grafts were recovered in a healthy condition although some rejection of the tissue was detected at the 1- and 2-week stages. In the neural lobe, clusters of pituicytes were scattered among the loose network of capillaries, most of which had a fenestrated endothelium. The intermediate lobe remained organized in compact avascular lobules. Axons similar to those projecting into the neurointermediate lobe in situ, but also axons of other types (e.g., somatostatinergic, enkephalinergic) penetrated the grafts. Synapses with melanotrophic cells in the intermediate lobe and neurohaemal contacts in the neural lobe were frequent from 2 1/2 months after transplantation. Immunocytochemical and ultrastructural characteristics indicated intense secretory stimulation of the melanotrophic cells in the early stages. All cells enclosed in a same glandular lobule reacted in a similar manner. In later stages, when re-innervation occurred, the cells recovered their initial characteristics. The overall effect of the re-innervation of the intermediate lobe grafted in this location is inhibitory, as in the lobe in situ.

Animals↗

Release of oxytocin within the supraoptic nucleus during the milk ejection reflex in rats.

To investigate the hypothesis that oxytocin may be released within the magnocellular nuclei in vivo, push-pull cannula perfusions were performed in anaesthetized lactating rats in one supraoptic nucleus of the hypothalamus while recording the intramammary pressure and/or the electrical activity of oxytocin cells in the contralateral supraoptic nucleus. Oxytocin content was measured in samples collected over 15 min, under various conditions: 1) with no stimulation; 2) during suckling and suckling-induced reflex milk ejections; 3) during electrical stimulation of the neuro-hypophysis by trains of pulses that mimicked oxytocin cell bursts; 4) under osmotic stimulation by i.p. injection of 2 ml of 1.5 M NaCl to evoke a tonic and sustained oxytocin release from the neurohypophysis. Oxytocin release within the supraoptic nucleus increased significantly during the milk ejection reflex and, to a lesser extent, during burst-like electrical stimulation of the neurohypophysis. In suckled rats, the increase started before the first reflex milk ejection occurred. There was no apparent correlation between the amount of oxytocin in the perfusates and the number of milk ejections and oxytocin cell bursts occurring during each perfusion period. The amount of oxytocin in the perfusates further increased-during facilitation of the milk ejection reflex by intraventricular injections of oxytocin or its analogue, isotocin. When suckling failed to evoke the milk ejection reflex, there was no change in intra-supraoptic oxytocin release. There was also no change after osmotic stimulation. When the push-pull cannula was positioned outside the supraoptic nucleus, there was no increase in the amount of oxytocin during the three types of stimulation tested. These results provide evidence for an endogenous release of oxytocin within the magnocellular nuclei in lactating rats. It is suggested that the increase in such a release induced by suckling is likely to be a prerequisite for the onset and the maintenance of the characteristic intermittent bursting electrical activity of oxytocin cells leading to milk ejections.

Animals↗

Paraventricular and supraoptic bursting oxytocin cells in rat are locally regulated by oxytocin and functionally related.

1. Oxytocin was pressure injected through a glass micropipette into a supraoptic (SON) or paraventricular nucleus (PVN) while recording the electrical activities of oxytocin cells in a contralateral nucleus, to see whether oxytocin acts locally in the magnocellular nuclei to control their bursting activity and whether the oxytocin cells of the four magnocellular nuclei were functionally interconnected during suckling. To test the rapidity of these relations, similar intranuclear injections were realized with acetylcholine, known to rapidly increase the background activity of oxytocin cells. The effects of intranuclear injections of oxytocin and acetylcholine were tested before and after interhemisphere sections of various dimensions. 2. Injecting oxytocin (1 ng in 100 nl) into a magnocellular nucleus (5 times into the PVN and 15 times into the SON) facilitated the occurrence and increased the amplitude of bursts of the oxytocin cells in both the contralateral PVN and SON. This facilitatory effect was similar to that induced by intraventricular injection of the same dose of oxytocin, though slightly delayed and lower. 3. Injecting acetylcholine (0.6 microgram in 100 nl) into the SON (7 times) induced a rapid and sustained increase in the background activity of oxytocin cells in both the contralateral PVN (2 times) and SON (5 times) within the same delay (less than 15 s). This excitatory effect was similar to that induced by an intraventricular injection of 5 micrograms acetylcholine. The effects on bursting activity were not considered in this study. 4. Neither the injections of oxytocin or acetylcholine outside but near the magnocellular nuclei (200-500 microns), nor the intranuclear injection of 100-200 nl of cerebrospinal fluid-like medium, modified the background activity, the frequency and amplitude of bursts of the oxytocin cells in the nucleus contralateral to the injection site. 5. After interhemisphere sections most oxytocin cells were silent, bursts occurred in an erratic manner, and their amplitude was attenuated and irregular (more than the 20% variation normally recorded in non-operated rats). Moreover, the amplitudes of successive bursts of pair-recorded supraoptic-supraoptic (SO-SO) oxytocin cells, highly related in control conditions (correlation coefficient, r = 0.68 to 0.98) were no longer correlated after interhemisphere section (r = 0.24 to -0.61), but all bursts remained synchronized.(ABSTRACT TRUNCATED AT 400 WORDS)

Acetylcholine↗

Role of central oxytocin in the control of the milk ejection reflex.

The neuropeptide oxytocin, synthetized by magnocellular neurons in the hypothalamus, is well known for its peripheral action after it is released into the bloodstream from axons in the neurohypophysis. Less familiar is the notion that it is also released centrally to control the activity of oxytocinergic neurons themselves. When injected into the third ventricle of lactating rats during suckling, oxytocin increases the basal firing rate of oxytocinergic neurons as well as their activity at the time of each reflex milk ejection. On the other hand, centrally administered oxytocin engenders the neuronal-glial and synaptic plasticity characteristic of the oxytocin system when it is physiologically activated. From numerous in vivo and in vitro observations, it appears that central oxytocin is released in the hypothalamic nuclei themselves. For example, the use of push-pull cannulae inserted into one supraoptic nucleus of suckled rats shows that oxytocin is released inside the nucleus specifically during milk ejection. Moreover, ultrastructural immunocytochemistry reveals synaptic terminals in the supraoptic nucleus where both the pre- and postsynaptic elements are oxytocinergic. Nevertheless, the mechanism of the central release of the neuropeptide has still to be determined, especially in view of electrophysiological observations indicating that the release process in the hypothalamus is different from that within the neurohypophysis.

Animals↗

Characteristics of early- and late-recruited oxytocin bursting cells at the beginning of suckling in rats.

1. Paired or single recordings of paraventricular and/or supraoptic oxytocin cells at the beginning of suckling in urethane-anaesthetized rats enabled us to study cell recruitment and compare the characteristics of the early- and late-recruited cells. This was done under different experimental conditions, i.e. when the reflex was triggered in less than 1 h suckling (control), and when its triggering was facilitated either by the intraventricular (i.c.v.) injection of oxytocin, of apomorphine (a dopamine agonist) or by the intravenous (i.v.) injection of propranolol (a beta-adrenoceptor antagonist) into suckled rats with no milk ejection. 2. Under control conditions, the amplitude (total number of spikes) of the successive bursts of the early-recruited cells progressively increased, generally reaching maximum by the 6th burst. This increase was more rapid and greater after oxytocin than under control conditions or after apomorphine injection, and was delayed and reduced after propranolol. The burst frequency was higher after oxytocin and apomorphine injections than under control conditions and very low after propranolol. 3. Late-recruited cells were observed under all experimental conditions, except after oxytocin injection, since all cells displayed bursts right away. Moreover, when injected during the recruitment period of a control reflex, oxytocin greatly speeded up the recruitment of the late-recruited cells. These cells generally displayed smaller amplitude bursts than the early-recruited cells. Moreover, the increase in burst amplitude was less marked for the late- than for the early-recruited cells and often was not sustained. 4. Neither the likelihood of recruitment of an oxytocin cell nor its burst amplitude could be correlated with background activity level and there was no clear relationship between the recruitment period or the bursting characteristics on one hand and the background activity on the other. 5. In conclusion, the differences between the early- and late-recruited cells in recruitment time and in burst amplitude reflected differences in cell excitability which may depend mainly on the presence of oxytocin in the magnocellular nuclei.

Action Potentials↗

[Evaluation of perfusion technics of the magnocellular nucleus of the hypothalamus in vitro and in vivo].

In suckled rats, OT necessary for the occurrence of the neurosecretory bursts on OT cells, is probably released inside the magnocellular nuclei. In order to demonstrate this in vivo release and to precise the mechanism involved, perifusions were realized in vivo on lactating rats and in vitro with isolated magnocellular nuclei. In vivo, the push-pull perifusion of a single supraoptic nucleus (SON) was realized simultaneously with the recording of the electrical activity of OT cells in the contralateral nucleus. This would allow to determine the possible relationships between the amount of OT released in the SON and the electrical activity of OT cells (bursting activation during suckling or continuous activation during an hyperosmotic stimulation). Results obtained showed 1) that OT was released in vivo inside the SON, 2) that this release was specifically increased during the milk ejection reflex and 3) that this increase was only detectable inside the SON. However, this technique did not permit to determine either the mechanism of OT release or the neuron elements (perikaryon, dendrites, axon collaterals) responsible for this release. That is for why, in vitro perifusions were undertaken with isolated magnocellular nuclei. The first stage was to determine the stimulus able to induce a reproducible increase of OT release. Among the chemical stimuli (neurotransmitters, K+) only K+ at a 56 mM concentration increased OT release by SON but this increase was small and non significant. Repetitive electrical stimulations with short pulses (0.2 to 5 msec) were ineffective even if the pulse intensity was raised up to 10 mA and the frequency up to 80 Hz.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Paired recordings from supraoptic and paraventricular oxytocin cells in suckled rats: recruitment and synchronization.

Oxytocin cells in the paraventricular (p.v.) and contralateral supraoptic (s.o.) nuclei were pair-recorded (with two micro-electrodes) in suckled rats after being anaesthetized with urethane (1.2 g/kg), to study the synchronization of their neurosecretory bursts, the importance of cell recruitment and their firing characteristics. The synchronization of paired bursts was determined by measuring the onset time-lag (time in milliseconds between the onset of two corresponding bursts) and the maximum firing time-lag (time in milliseconds between the two shortest interspike intervals for the corresponding bursts). For each cell, the characteristics studied were: the background activity and the frequency and amplitude (total number of spikes) of the neurosecretory bursts. All paired p.v.-s.o. cells recorded were activated simultaneously 12-18 s before each milk ejection. The onset of a burst could vary either way, up to 680 ms, in relation to the other (mean onset time-lag was 206 +/- 18 ms; n = 85) but the maximum activation periods fitted more closely, the mean maximum firing time-lag being 122 +/- 14 ms (n = 64). Both parameters varied randomly, in duration and order from one pair of cells to another, from one pair of bursts to another for successive bursts of a given pair of cells and independently, whether the cells were in the p.v. or the s.o. nucleus. However, in most cases, the neurosecretory burst with the highest amplitude began and reached its peak firing rate before the corresponding burst from the other cell. Cell recruitment was observed when the milk ejection reflex began, for both the p.v. and the s.o. cells. The bursts of the non-responsive cells developed progressively with the reflex, but, as soon as a cell was recruited, all its successive bursts were simultaneous with those of the first-recruited oxytocin cells. During a regular pattern of milk ejections, the mean background activity of sixty p.v. cells (3.1 +/- 0.2 spikes/s) was significantly higher than that of their s.o. counterparts (1.9 +/- 0.2 spikes/s). Nevertheless, the mean amplitude of the neurosecretory bursts of the sixty p.v. cells (49 +/- 3 spikes) did not differ significantly from that of their s.o. counterparts (55 +/- 4 spikes).(ABSTRACT TRUNCATED AT 400 WORDS)

Action Potentials↗