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J M Deniau

Publications and source records attributed to J M Deniau.

17 recordsLinked to original sources

Patterns of termination of cerebellar and basal ganglia efferents in the rat thalamus. Strictly segregated and partly overlapping projections.

There is a widely held view that the cerebellum and basal ganglia act via separate subcortical channels. In rodent, however, electrophysiological evidence suggests that the output of these two systems is partly sent to a common set of thalamic neurons. In this study, the pattern of thalamic innervations provided by the deep cerebellar nuclei, the entopeduncular nucleus, and the substantia nigra pars reticulata was reinvestigated in the rat using the anterograde tracers Phaseolus vulgaris leucoagglutinin and wheat germ agglutinin. Although the results confirm the existence of some overlap in the cerebellar and basal ganglia projection fields, they also show that in such convergent areas the cerebellar innervation is modest and consists of sparsely distributed fibers of thin diameter that provide a few scattered terminal boutons. These observations are consistent with the view that, in rodent as in higher mammalian species, the cerebellum and the basal ganglia act mainly via distinct thalamo-cortical channels.

Animals

Evidence that biocytin is taken up by axons.

Unexpected anterograde labeling is systematically observed in the pontine nuclei following iontophoretic injection of biocytin in the substantia nigra pars reticulata. Control experiments using WGA-HRP have led to deny the existence of a nigro-pontine pathway. The possibility that biocytin is taken up by fibers of passage has been tested. Deposits of biocytin in the corpus callosum result in a massive axonal labeling of this fibrous system. This study, in contrast to previous reports, stresses that biocytin is easily taken up and transported by axons. Hence, this tracer has to be used with careful controls when injected in structures crossed by fibrous tracts.

Animals

The lamellar organization of the rat substantia nigra pars reticulata: distribution of projection neurons.

As a major output station of the basal ganglia, the pars reticulata of the substantia nigra has stimulated much interest. In the past two decades there has been a growing body of evidence for a partition of this structure into separate channels to express the striatal processing. To further our knowledge on the functional partitioning of the rodent substantia nigra pars reticulata, the regional distribution of the nigral efferent cell groups that provide innervation of thalamus, colliculus and tegmentum has been detailed in rat using the wheatgerm agglutinin conjugated with horseradish peroxidase as an axonal tracer. To ensure a total visualization of the nigral efferent neurons we have, in a preliminary study, determined the total extent of the nigral terminal field in each of the nigral target structures using the anterograde transport of wheatgerm agglutinin-horseradish peroxidase and Phaseolus vulgaris leucoagglutinin. At variance with the classical view that nigral cells innervating distinct target structures form functionally distinct subnuclei, the results suggest a nigral compartmentation that rather relies upon specific associations of efferent cell groups. As disclosed, these associations are specified by topographic rules and spatially ordered in a series of curved laminae enveloping an excentrated dorsolateral core. In this onion-like model of the substantia nigra pars reticulata, each lamella defines an associative unit composed of a set of neurons innervating particular loci of thalamus, colliculus and/or tegmentum. This lamellar partitioning bestows the ability upon the substantia nigra to dispatch the striatal outflow via parallel and divergent channels to functionally associated target areas in thalamus and brainstem.

Animals

Disinhibition as a basic process in the expression of striatal functions.

During the past decade, electrophysiological approaches have greatly improved understanding of the involvement of the basal ganglia in motor behaviour. This review reports that the basal ganglia contribute to the initiation of movement by arousing executive motor centres via a disinhibitory mechanism. We propose that the basal ganglia output is used as a movement template specifying the motor elements to be engaged in directing movement in space.

Animals

Nigral modulation of cerebello-thalamo-cortical transmission in the ventral medial thalamic nucleus.

In the rat, the highly active GABAergic neurons of the substantia nigra pars reticulata (SNR) are known to exert a tonic inhibitory influence on cells in the ventral medial thalamic nucleus (VM). Considering that this nucleus is involved in the transfer of cerebellar signals towards motor cortex, we investigated the role played by SNR in that transmission. For this purpose we examined how changes in nigral background activity are reflected in the reactivity of VM cells to their cerebellar input. We report here that a GABA induced nigral pause increases the efficacy of cerebellar afferent volleys in VM, whereas an increase of nigral background by bicuculline, interrupts cerebello-thalamo-cortical transmission. It is concluded that nigrothalamic neurons subserve a permanent gating of cerebello-thalamo-cortical transmission in VM.

Action Potentials

Disinhibition as a basic process in the expression of striatal functions. I. The striato-nigral influence on tecto-spinal/tecto-diencephalic neurons.

The striato-nigro-collicular pathway is one of the neuronal circuits through which basal ganglia can influence ocular and cephalic motricity. Through this pathway striatal signals are conveyed to a major collicular efferent system i.e. the tecto-spinal/tecto-diencephalic neurons (TSD). A striking particularity of the striato-nigro-collicular connection is to present an assemblage of two successive GABAergic inhibitory links. To analyze how striatal information is expressed through this double inhibitory system we made use of concomitant unitary recordings of substantia nigra pars reticulata (SNR) and TSD activity while nigral and/or striatal activity was changed by local applications of pharmacological agents. We observed (1) that an intranigral application of GABA which transiently abolishes the tonic discharge of SNR cells, causes the TSD cells to discharge vigorously. During this period of increased excitability the responsiveness of TSD cells to somatosensory input is significantly enhanced; (2) that an intrastriatal injection of glutamate which silences the nigro-collicular cells, causes the TSD cells to discharge. This striatally induced tectal firing being sensitive to intranigral application of a GABA antagonist (bicuculline), led us to the conclusion that striatum exerts a facilitatory influence on TSD cells by releasing these neurons from the tonic inhibitory nigral influence. The functional implication of such a mechanism is discussed in the light of the current knowledge on the involvement of basal ganglia in eye/head orienting movements.

Animals

Disinhibition as a basic process in the expression of striatal functions. II. The striato-nigral influence on thalamocortical cells of the ventromedial thalamic nucleus.

Besides the nigro-collicular pathway, the nigro-thalamic projection to the ventromedial thalamic nucleus represents another efferent system of the basal ganglia through which striatum can influence motor centers. Since the striato-nigrothalamic circuit is composed of two successive GABAergic inhibitory links and the SNR is tonically active, we tested that by inhibiting nigrothalamic cells, the striatum may exert a facilitatory influence on VM-thalamocortical cells. We show that a transitory block of SNR (substantia nigra pars reticulata) firing (induced by either intranigral application of GABA or by stimulating the inhibitory striato-nigral pathway), causes a perfectly time-locked increase of activity in a large number of VM cells projecting to motor cortex. Moreover, the striatally evoked excitation of VM-thalamocortical cells requires the functional integrity of the GABAergic striato-nigral link. We conclude that the double inhibitory striato-nigrothalamic pathway acts on VM-thalamocortical cells through a disinhibitory mechanism. The functional implication of such a mechanism is discussed.

Animals

Effects of stimulation of the frontal cortex on identified output VMT cells in the rat.

The neurons located in the mesencephalic ventro-medial tegmentum (VMT) and projecting to the nucleus accumbens, the septum and the frontal cortex were identified by the antidromic activation method. The activity of single VMT cells was extracellularly recorded in Ketamine anaesthetized rats. The effect of the stimulation of the medial frontal cortex on the activity of these identified VMT cells has been studied. The main response observed was an excitation which was followed in some cases by a depression of the spontaneous discharge of the cells.

Animals

Electrophysiological demonstration of an excitatory subthalamonigral pathway in the rat.

The subthalamonigral projection was studied with extracellular techniques in the rat. Orthodromic and antidromic stimulations of this pathway were performed in different sets of experiments in order to exclude the possible activation of passing fibers. A majority of the recorded cells in the subthalamic nucleus (STN) were antidromically activated by nigral stimulation. It was furthermore shown that the subthalamofugal fibers are excitatory to cells located in the pars compacta as well as in the pars reticulata of the substantia nigra. The possible existence of another descending STN pathway is also discussed.

Animals

Electrophysiological properties of identified output neurons of the rat substantia nigra (pars compacta and pars reticulata): evidences for the existence of branched neurons.

In Ketamine-anaesthetized rats the nigral efferents to the ipsilateral striatum, to both VL/VM thalamic nuclei and to both superior colliculi were studied. Nigral output neurons were antidromically activated from these target nuclei and characterized by their spontaneous activity and cellular localization within the substantia nigra. Neurons in the pars compacta, which give rise to the dopaminergic nigro-striatal pathway, exhibited a low spontaneous discharg rate (3 to 6/sec) and their axon had a slow conduction velocity (0.33 to 1 m/sec). They were antidromically activated from the striatum only. Neurons in the pars reticulata were characterized by a higher spontaneous activity (20 to 40/sec) anda faster conduction velocity (1.9 m/sec to 10 m/sec). They were antidromically activated from the thalamus, superior colliculus and striatum. Furthermore, some of these neurons were found to have branching axons projecting at least to two of the different target nuclei studied.

Animals

Effect of substantia nigra stimulation on identified neurons in the VL-VA thalamic complex: comparison between intact and chronically decorticated cats.

The effects of substantia nigra (SN) stimulation on the activity of the nucleus ventralis lateralis of the thalamus (VL) have been studied. The VL cells were identified as relay or non-relay cells among the cerebellothalamocortical pathway on the basis of orthodromical activation from the cerebellum and antidromical activation from the cortex. Certain experiments were performed after wide pericruciate decortication in order to eliminate the response due to unavoidable activation of corticofugal fibers. These results show that nigrothalamic neurons exert an inhibitory effect on VL cells. This inhibition was observed on the relay as well as on non-relay cells and was strong enought to suppress the cerebellar monosynaptic excitatory input. Thus the SN can modulate the information running along the cerebellothalamocortical pathway. The topographic localization of inhibited cells suggests that the SN controls the activity of the thalamic neurons which interfere with axial and proximal musculature.

Animals

Connections from the basal ganglia to the thalamus.

Many data suggest that the basal gnaglia exerts an indirect influence onto the motor cortex through the thalamus which receives pallidal and nigral efferences. According to the anatomical data, the internal segment of globus pallidus projects to the VL-VA and CM of thalamus and the substantia nigra sends axons ending in the VL and VA with an intranuclear organization which did not overlap the pallidal terminations. The electrophysiological records in the VL-VA nucleus demonstrates that pallidal stimulation induces an inhibitory response, mainly on thalamic neurons, which does not receive cerebellar input. If spreading of excitation is avoided, nigral stimulation also induces an inhibition at the thalamic level. This inhibitory effect can be recorded on relay cells with cerebellar input and cortical output as well as on nonrelay cells. The electrophysiological results in the case of the striatopallidal and striatonigral projections are also briefly reported.

Animals