Search PubMed⌕ Search

Biomedical subjects

C de Waele

Publications and source records attributed to C de Waele.

40 records · Page 3Linked to original sources

NMDA receptors contribute to the resting discharge of vestibular neurons in the normal and hemilabyrinthectomized guinea pig.

Excitatory amino acids (EAA) like L-Glutamate or L-Aspartate have been suggested to be the neurotransmitters at the synapses between primary vestibular afferents and second-order vestibular neurons. In the first part of our work, we have tested the possibility that EAA receptors are implicated in the control of posture by vestibular nuclei. Normal guinea pigs were implanted with minipumps delivering EAA antagonists in the vestibular nuclei. Their resting posture was monitored during the perfusion by using an X-ray photographic method. Chronic infusion of D-L-2-amino-5-phosphonovaleric acid (APV), a specific antagonist of NMDA receptors, in the vestibular nuclei induced a postural and oculomotor syndrome similar to the one observed following acute vestibular deafferentation. Administration of 6-cyano-7-nitro-quinoxaline-2-3-dione (CNQX), a specific antagonist of kainate and quisqualate receptors, failed to induce any postural syndrome or eye deviation. These results suggest that, under physiological conditions, N-methyl-D-aspartate (NMDA) receptors, contrary to kainate and quisqualate receptors, are essential for the maintenance of a symmetric posture and of a normal eye position at rest. Previous electrophysiological studies have demonstrated that following unilateral labyrinthectomy the recovery of a resting discharge in the deafferented vestibular nuclei plays a key role in the compensation of postural disorders. In the second part of this study, we have tested whether NMDA receptors could be implicated in this postural recovery. APV mini-pumps were implanted in hemilabyrinthectomized guinea pigs after complete compensation. A postural decompensation was induced, which occurred after delivery of the same amount of APV which provoked a vestibular syndrome in intact guinea pigs.(ABSTRACT TRUNCATED AT 250 WORDS)

2-Amino-5-phosphonovalerate↗

Low threshold calcium spikes in medial vestibular nuclei neurones in vitro: a role in the generation of the vestibular nystagmus quick phase in vivo?

Intracellular recordings were obtained from medial vestibular nuclei neurones in guinea-pig brainstem slices. A subpopulation of neurones in this nucleus was found to have burst firing properties. Using ionic channel blockers the underlying mechanism was shown to be a low threshold calcium spike. It is speculated that this property could be implicated in the generation of the quick phase of the vestibular nystagmus in the behaving guinea-pig.

Action Potentials↗

[Vestibular compensation. Review of the literature and clinical applications].

Vestibular compensation is an excellent model for the study of plasticity of the adult central nervous system. Therefore it has been the subject of several studies in humans and animals, which will be briefly summed up by the authors. Lesions of the labyrinth or vestibular neurectomy are immediately followed of postural and oculomotor disorders, as well as by dynamic deficits of the various vestibular reflexes (vestibulo-ocular and vestibulonucal reflexes). While the former problems always recede in all species, the restoration of the dynamic properties of vestibular reflexes largely depends upon the species considered, in particular for the vestibulo-ocular reflex. However, this function seems to recover the gain and phase it had prior to the lesion in both humans and monkeys. What is the neuronal substrate of these various deficits? Electrophysiological studies have demonstrated at the acute stage a symmetrical activity between the two vestibular nuclei: on the side of the lesion, the nucleus becomes inactive, while the resting discharge of the contralateral vestibular neurons is increased. Following compensation, symmetric activity is restored between both nuclei due to the regeneration of a new basic discharge in the deafferented neurons. The matter of vestibular compensation can therefore be formulated as follows: which mechanisms enable a central neuron inactivated du to the suppression of most of its excitatory afferences to recover a normal spontaneous activity? Several hypotheses, either pre- or postsynaptic, are currently put forward. Presynaptic hypotheses consider the role of the various afferences of the vestibular nuclei, ie. visual, proprioceptive, commissural, cerebellar and other afferences. In fact, the vestibular nuclei are not merely relays between the labyrinthine receptors and the nuclei of the oculomotor nerves, but actually form real sensorimotor integration centers. Besides the afferences from the vestibular nerve, they receive several other sorts of information, including visual and spinal proprioceptive inputs. An increase in the activity of these afferences, a sprouting of their axon collaterals, may favor the return to a normal basic discharge of the central vestibular neurons. The postsynaptic hypotheses involve either a change in the intrinsic membrane properties of the central vestibular neurons following the lesion, or an increase in the number of receptors located on their surface. More specifically, denervation supersensitivity of the glutamatergic receptors has been put forward as the possible origin of vestibular compensation.

Afferent Pathways↗