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Further evidence for changes in the responsiveness of somatosensory neurons in arthritic rats: a study of the posterior intralaminar region of the thalamus.

In 21 arthritic rats, responses of 128 somatosensory neurons located in the intralaminar region of the thalamus were studied. This study reveals a profound change in the responses of intralaminar neurons in such rats, as compared with those observed in normal animals. Most of the activated neurons (98/120) were driven by moderate mechanical stimulation applied to the joints, while only few neurons (7/120) were exclusively driven by intense mechanical stimuli such as pinch. In addition numerous activated neurons were located in the ascending branch of the CL where in normal rat, few somatosensory 'noxious' neurons have been recorded.

Animals↗

Projections from the parvocellular part of the posteromedial ventral nucleus of the thalamus to the lateral amygdaloid nucleus in the cat.

It was shown in the cat by anterograde and retrograde WGA-HRP methods that the medial portion of the parvocellular part of the posteromedial ventral nucleus of the thalamus (VPMpc-m) sent fibers ipsilaterally to the rostrodorsal part of the lateral amygdaloid nucleus (Al-rd). The regions of the orbital gyrus (OG), which were connected reciprocally with the VPMpc-m, were also observed to send fibers to the Al-rd. Thus the VPMpc-m was assumed to project to the Al-rd directly, and indirectly via the OG.

Amygdala↗

Electrophysiological evidence that the mediodorsal nucleus of the thalamus is a relay between the ventral pallidum and the medial prefrontal cortex in the rat.

The neural connections from the ventral pallidum (VP) through the mediodorsal nucleus of the thalamus (MD) to the medial prefrontal cortex (MPC) were investigated. Extracellular recordings were made from 219 neurons in the medial and lateral portions of the MD and the VP and the MPC were stimulated. The most frequent response to VP stimulation was inhibition and inhibition preceded by excitation. Also, the most frequent response of MD units to MPC stimulation was inhibition and inhibition preceded by excitation. Nineteen of 26 MD units, activated antidromically by MPC stimulation, responded orthodromically to VP stimulation. The most frequent orthodromic response of these MD output neurons was inhibition and inhibition preceded by excitation. GABA iontophorized onto MD neurons reduced their rate of discharge. GABA and picrotoxin iontophorized onto MD neurons did not influence the inhibitory or excitatory responses to VP stimulation. These electrophysiological results support previous anatomical findings of connections between the VP and the MPC by way of the MD. MD output neurons to the MPC receive mostly inhibitory inputs from VP afferents. A high proportion of MD neurons respond orthodromically to both VP and MPC stimulation, suggesting the convergence of synaptic inputs from these structures to the same MD units.

Animals↗

Direct projections from the parvocellular part of the posteromedial ventral nucleus of the thalamus to the infralimbic cortex in the cat.

It was shown in the cat by the anterograde and retrograde WGA-HRP method that the medial portion of the parvocellular part of the posteromedial ventral nucleus of the thalamus sent fibers ipsilaterally to the caudoventral part of the infralimbic cortex on the medial surface of the frontal lobe, as well as the orbital cortical regions and the rostrodorsal part of the lateral amygdaloid nucleus.

Amygdala↗

Anterior thalamus and substantia nigra: two distinct structures mediating experimental generalized seizures.

Injection of gamma-vinyl aminobutyric acid (GVG) into the anterior thalamus protected rats against pentylenetetrazol (PTZ) seizures but not against maximal electroshock (MES) seizures. Injection of GVG into the substantia nigra protected against MES seizures but not against PTZ seizures. Both types of seizures were prevented by injections into both of the above brain regions. These data indicate that separate neuronal circuits mediate PTZ and MES seizures.

Aminocaproates↗

Classical conditioning of tone-signaled bradycardia modifies 2-deoxyglucose uptake patterns in cortex, thalamus, habenula, caudate-putamen and hippocampal formation.

The 2-[14C]deoxyglucose (2-DG) autoradiographic method was used to map metabolic activity in all telencephalic and diencephalic structures of the rat brain during and after classical conditioning. A trial was made of a 4-5 KHz frequency modulated tone (CS) paired with midbrain reticular stimulation (US). The unconditioned response was a rapid bradycardia elicited by the US. Alert rats were injected with 2-DG, placed in a sound-proof chamber, and subjected during 90 min to a given treatment: (1) the CS before conditioning, (2) the US alone, (3) the paired CS-US (acquisition), (4) the CS after conditioning (extinction), (5) the US prior to the CS (sensitization), (6) the unpaired CS-US (pseudoconditioning), (7) the CS after pseudoconditioning and (8) no stimulation. The prefrontal cortex showed discrete regions with enhanced 2-DG uptake during conditioning and pseudoconditioning. A columnar organization was well-defined in the posterior parietal cortex of rats subjected to CS-US pairing. The medial thalamus was greatly activated in all groups subjected to reticular stimulation. The dorsomedial nucleus showed its largest activation during conditioning. The lateral habenula and a caudal portion of caudate-putamen showed an overall increase in 2-DG uptake during conditioning. The hippocampal formation showed a specific pattern of metabolic activation during conditioning and after conditioning. A laminar densitometric analysis showed that 2-DG uptake was concentrated in a central band along the sides of the hippocampal fissure which corresponded to the molecular layers. Only this neuropil band of greater metabolic activity showed the learning-related changes. In addition, the hippocampal formation was the only nonauditory structure in the forebrain which clearly responded to the acquired signal value of the tone CS after conditioning. These changes revealed by 2-DG provide a first demonstration of forebrain substrates with localized metabolic alterations related to learning and reticular sensitization.

Animals↗

Direct synaptic linkage of ventrolateral nucleus of thalamus terminal with cat fast pyramidal tract neuron.

An electron microscopic study on the synaptic connections between neurons of ventrolateral nucleus of thalamus (VL) and pyramidal tract neurons (PTNs) in cat motor cortex was conducted by means of the anterograde degenerating procedure coupled with horseradish peroxidase (HRP) intracellular staining. Following VL lesions, a large majority of the degenerating terminals were found to terminate on dendritic spines and a few on the dendritic shaft. An asymmetric type synapse formed by a VL degenerating terminal and the dendritic shaft of a branch of apical dendrite of a labeled fast pyramidal tract neuron was demonstrated.

Animals↗

Lesions of the dorsomedial nucleus of the thalamus, medial prefrontal cortex and pedunculopontine nucleus: effects on locomotor activity mediated by nucleus accumbens-ventral pallidal circuitry.

A GABAergic nucleus accumbens-ventral pallidum projection is believed to serve as the critical first-order accumbens efferent pathway underlying the behavioral expression of mesolimbic dopamine (DA) activity in the rat. In a series of experiments, we studied the effects of lesions of several ventral pallidal efferent terminal regions on the rat locomotor response to apomorphine following 6-hydroxydopamine denervation of the nucleus accumbens. Lesions of the dorsomedial nucleus of the thalamus (DMT), but not the medial prefrontal cortex or the predunculopontine nucleus, significantly depressed the 'supersensitive' locomotor response to apomorphine. Lesions of the DMT did not depress baseline locomotion, but did diminish the locomotor activation produced by intracerebral injection of the gamma-aminobutyric acid antagonist picrotoxin into the ventral pallidum. These results suggest that accumbens-pallidothalamic circuitry plays a crucial role in translating the effects of mesolimbic DA activity to lower motor circuitry responsible for locomotor behavior in the rat.

Animals↗

Fine structure of the spinothalamic projections to the central lateral nucleus of the rat thalamus.

The fine structure of labelled spinothalamic terminals in the central lateral nucleus has been studied in the rat following injection of wheat germ agglutinin-horseradish peroxidase into the spinal cord. Myelinated axons gave rise to the labelled terminals, which were large profiles which contained round vesicles, numerous mitochondria, and formed asymmetrical contacts with large dendrites or dendritic protrusions. These profiles are similar to those described in other somatosensory thalamic nuclei, and in many other nuclei of the thalamus.

Animals↗

Ventral pallidum projections to mediodorsal nucleus of the thalamus: an anatomical and electrophysiological investigation in the rat.

Horseradish peroxidase (HRP) and single unit recording experiments were done in rats to investigate neural connections from the ventral pallidal region to the mediodorsal nucleus of the thalamus (MD). In the first series, following the diffusion or iontophoretic injection of HRP into the MD, retrogradely labeled neurons were observed throughout the rostrocaudal extent of the ipsilateral ventral pallidum. Most of the labeled neurons were found in an area between the nucleus of the diagonal band and the ventral aspect of the substantia innominata subcommissuralis. Additional labeled neurons were found in the ventral aspect of the globus pallidus and substantia innominata sublenticularis. In the second series, the region shown to contain labeled neurons was explored for single units antidromically activated by single pulse stimulation of the MD in urethane anesthetized rats. One hundred and fifty-nine single units in the subpallidal area were antidromically activated with latencies corresponding to conduction velocities of 0.2-3.9 m/s. A greater percentage of units in the subcommissural region (50.3%) were activated antidromically as compared to the sublenticular region (27.4%). In the third series, the MD was explored for single units which responded orthodromically to stimulation of the ventral pallidum. Fifty-eight percent (40/69) of MD units responded to stimulation of the subcommissural substantia innominata, whereas 90% (72/80) MD units responded to stimulation of the sublenticular substantia innominata. The most frequent type of orthodromic response observed in MD neurons was inhibition with short onset latencies (less than 10 ms). These data provide anatomical and electrophysiological evidence for the existence of direct pathways from the ventral pallidum to the MD and suggest that this projection is part of a corticosubcortical loop through which the frontal cortex with the ventral striatum and pallidum may contribute to motor function.

Animals↗

Cardiac sympathetic afferent input onto neurons in nucleus ventralis posterolateralis in cat thalamus.

Neurons receiving cardiac sympathetic afferent input were studied in the nucleus ventralis posterolateralis (VPL) of the cat thalamus. Animals were anesthetized with urethan-chloralose. Units in the VPL were classified into 3 classes; low-threshold mechanoreceptive (LTM), nociceptive specific (NS) and wide dynamic range (WDR) units. Units driven by electrical stimulation of the left inferior cardiac nerve (ICN) were not included in the population of LTM units, but 43.5% of NS units and 68.8% of WDR units were excited by this stimulation. Units exclusively responsive to cardiac sympathetic afferents were not found. Both NS and WDR units were located in the shell region of the caudal VPL. NS units responsive to cardiac sympathetic afferents had a circumscribed cutaneous receptive field in the area corresponding to tactile dermatomes C5-T13. WDR units receiving cardiac sympathetic afferent input had at least a part of their receptive fields in the same area. These results suggest that the shell region of the caudal VPL constitutes a thalamic link in a cardiac pain pathway, and that cardiac and cutaneous pain systems share a common projection locus in the VPL.

Afferent Pathways↗

Subpallidal-pedunculopontine projections but not subpallidal-mediodorsal thalamus projections contribute to spontaneous exploratory locomotor activity.

The contribution of the pedunculopontine nucleus to exploratory locomotion was investigated in rats. Locomotor activity recorded in a standard open-field apparatus was increased more than two-fold when wooden panels were inserted. This novelty-elicited locomotion was reduced significantly when procaine was injected bilaterally into the pedunculopontine nucleus but not when procaine was injected bilaterally into the mediodorsal thalamus, a second major projection site of the subpallidal area. These results support observations from earlier studies implicating hippocampal-accumbens-subpallidal-pedunculopontine projections in exploratory locomotion.

Animals↗

A new group of tyrosine hydroxylase-immunoreactive neurons in the cat thalamus.

A new cell group composed of a large number of neurons immunoreactive to tyrosine hydroxylase (TH) was demonstrated in the paraventricular nucleus and midline nuclei of the cat thalamus, using four different anti-TH sera after colchicine treatment. However, in these regions, we did not detect any cell bodies containing other catecholamine synthesizing enzymes nor dopamine.

Animals↗

Compartmental ordering of cholinergic innervation in the mediodorsal nucleus of the thalamus in human brain.

The cholinergic innervation of the mediodorsal (MD) nucleus of the thalamus was visualized immunohistochemically in human brain postmortem, using an antibody against human choline acetyltransferase (ChAT). The ChAT staining of the MD nucleus was more intense than in the surrounding thalamic nuclei but weaker than that of the striatum. No ChAT-positive cell bodies were detected. The ChAT-positive neuropil was unevenly distributed, with patches of dense immunoreactivity contrasting with a weaker surrounding matrix. In adjoining sections stained for ChAT immunoreactivity and for acetylcholinesterase (AChE) activity, the zones enriched in ChAT-immunostained neuropil corresponded to AChE-rich regions. The three-dimensional reconstruction of the richest zone in AChE/ChAT activity evidenced a cylindrical organization throughout the rostrocaudal axis of the MD nucleus. Counts of ChAT-positive varicosities confirmed an inhomogeneous distribution; the density of varicosities was 30% higher in ChAT-rich regions than in surrounding matrix. These findings suggest that the activity of intrinsic neurons within the nucleus may be differentially regulated by cholinergic systems.

Acetylcholinesterase↗

Neuronal activity in the mediodorsal and intralaminar nuclei of the dorsal thalamus during classical heart rate conditioning.

Multiple unit activity (MUA) was recorded from chronically implanted electrodes in either the mediodorsal (MD) or the intralaminar (IL) nuclei of the dorsal thalamus in separate groups of rabbits during (a) habituation of the cardiac orienting reflex, (b) Pavlovian heart rate (HR) conditioning, and (c) extinction of the HR conditioned response (CR). Other animals with similar recording electrodes received explicitly unpaired presentations of the conditioned stimulus (CS) and unconditioned stimulus (US). The cardiac orienting reflex and the HR CR consisted of bradycardia. However, tone-evoked tachycardia was obtained in animals that received CS/US unpaired presentations. MUA evoked by the CS consisted of a short latency (20-40 ms) increase under all conditions, which reached its maximum 200-300 ms after CS onset. This response habituated greatly during tone-alone pretraining, but was considerably greater in the paired than unpaired group during the later trials of conditioning in animals with MD, but not IL, placements. Instead, a longer latency increase (greater than 500 ms) in MUA occurred in the paired but not in the unpaired animals in the IL group. The MUA increases in both instances, including the early, short latency increase in the MD group, and the longer latency increase in the IL group, were trial-related, and declined to pretraining levels during extinction, indicating that these neuronal changes had an associative basis. These findings suggest that neuronal activity in both MD and IL is related to the early events involved in Pavlovian conditioning, but that the relative roles of these two closely related thalamic nuclei in associative learning must be somewhat different.

Animals↗

Responses of neurons in ventroposterolateral nucleus of primate thalamus to urinary bladder distension.

The purpose of this study was to examine effects of a noxious visceral stimulus, urinary bladder distension (UBD), on cells in the ventroposterolateral (VPL) nucleus of anesthetized monkeys. We hypothesized that processing of visceral information in the VPL nucleus of the thalamus is similar to spinothalamic tract (STT) organization of visceral afferent input. Urinary bladder distension excites sacral and upper-lumbar STT cells that have somatic input from proximal somatic fields; whereas, thoracic STT cells are inhibited by UBD. Extracellular action potentials of 67 neurons were recorded in VPL nucleus. Urinary bladder distension excited 22 cells, inhibited 9 cells, and did not affect activity of 36 cells. Seventeen of 22 cells excited by UBD also received convergent somatic input from noxious squeeze of the hip, groin, or perineal regions. No cells activated only by innocuous somatic stimuli were excited by UBD. Five of 9 cells inhibited by UBD had upper-body somatic fields. There was a significant tendency for VPL neurons excited by UBD to have proximal lower-body somatic fields that were excited by noxious stimulation of skin and underlying muscle (P less than 0.001). Antidromic activation of 4 thalamic neurons affected by UBD showed that visceral input stimulated by UBD reached the primary somatosensory (SI) cortex.

Action Potentials↗

Serotonergic projections from the midbrain periaqueductal gray and nucleus raphe dorsalis to the nucleus parafascicularis of the thalamus.

By a double-labeling method combining the retrograde tracing of horseradish peroxidase and the immunocytochemical technique, serotonin-like immunoreactive neurons in the midbrain periaqueductal gray (PAG) and nucleus raphe dorsalis (DR) of the rat were observed to send projection fibers to the nucleus parafascicularis of the thalamus bilaterally with an ipsilateral dominance. These serotonin-containing projecting neurons were observed mainly at the middle-caudal levels of the ventrolateral subdivision of the PAG and less at the middle-rostral levels of the DR.

Animals↗

Neural generators of N18 and P14 far-field somatosensory evoked potentials studied in patients with lesion of thalamus or thalamo-cortical radiations.

Somatosensory evoked potentials (SEPs) to electrical stimulation of the right or left median nerve were studied in 4 patients with hemianesthesia and a severe thalamic or suprathalamic vascular lesion on one side. The SEPs were recorded with a non-cephalic reference. The normal side of each patient served as his or her own control. The lesion consistently abolished the parietal N20-P27-P45 and the prerolandic P22-N30 SEP components. It did not significantly affect the P9-P11-P14 positive far fields, nor the widespread bilateral N18 SEP component. This allowed N18 features to be studied without interference from cortical components. It is proposed that N18 reflects several deeply located generators in brain stem and/or thalamus whereas N20 represents the earliest cortical response of the contralateral post-central receiving areas.

Brain Mapping↗