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1.
J Neurol ; 267(Suppl 1): 62-75, 2020 Dec.
Article in English | MEDLINE | ID: mdl-32915311

ABSTRACT

Loss of peripheral vestibular function provokes severe impairments of gaze and posture stabilization in humans and animals. However, relatively little is known about the extent of the instantaneous deficits. This is mostly due to the fact that in humans a spontaneous loss often goes unnoticed initially and targeted lesions in animals are performed under deep anesthesia, which prevents immediate evaluation of behavioral deficits. Here, we use isolated preparations of Xenopus laevis tadpoles with functionally intact vestibulo-ocular (VOR) and optokinetic reflexes (OKR) to evaluate the acute consequences of unilateral VIIIth nerve sections. Such in vitro preparations allow lesions to be performed in the absence of anesthetics with the advantage to instantly evaluate behavioral deficits. Eye movements, evoked by horizontal sinusoidal head/table rotation in darkness and in light, became reduced by 30% immediately after the lesion and were diminished by 50% at 1.5 h postlesion. In contrast, the sinusoidal horizontal OKR, evoked by large-field visual scene motion, remained unaltered instantaneously but was reduced by more than 50% from 1.5 h postlesion onwards. The further impairment of the VOR beyond the instantaneous effect, along with the delayed decrease of OKR performance, suggests that the immediate impact of the sensory loss is superseded by secondary consequences. These potentially involve homeostatic neuronal plasticity among shared VOR-OKR neuronal elements that are triggered by the ongoing asymmetric activity. Provided that this assumption is correct, a rehabilitative reduction of the vestibular asymmetry might restrict the extent of the secondary detrimental effect evoked by the principal peripheral impairment.


Subject(s)
Reflex, Vestibulo-Ocular , Vestibule, Labyrinth , Animals , Eye Movements , Humans , Larva , Xenopus laevis
2.
J Neurol ; 265(Suppl 1): 18-25, 2018 Oct.
Article in English | MEDLINE | ID: mdl-29556714

ABSTRACT

Vestibulo-ocular reflexes (VOR) are mediated by three-neuronal brainstem pathways that transform semicircular canal and otolith sensory signals into motor commands for the contraction of spatially specific sets of eye muscles. The vestibular excitation and inhibition of extraocular motoneurons underlying this reflex is reciprocally organized and allows coordinated activation of particular eye muscles and concurrent relaxation of their antagonistic counterparts. Here, we demonstrate in isolated preparations of Xenopus laevis tadpoles that the discharge modulation of superior oblique motoneurons during cyclic head motion derives from an alternating excitation and inhibition. The latter component is mediated exclusively by GABA, at variance with the glycinergic inhibitory component in lateral rectus motoneurons. The different pharmacological profile of the inhibition correlates with rhombomere-specific origins of vestibulo-ocular projection neurons and the complementary segmental abundance of GABAergic and glycinergic vestibular neurons. The evolutionary conserved rhombomeric topography of vestibulo-ocular projections makes it likely that a similar pharmacological organization of inhibitory VOR neurons as reported here for anurans is also implemented in mammalian species including humans.


Subject(s)
Motor Neurons/drug effects , Neural Inhibition/drug effects , Neurotransmitter Agents/pharmacology , Oculomotor Muscles/innervation , Reflex, Vestibulo-Ocular/drug effects , Action Potentials/drug effects , Action Potentials/physiology , Animals , Glycine/metabolism , Head Movements/drug effects , Head Movements/physiology , Larva , Motion Perception/drug effects , Motion Perception/physiology , Motor Neurons/physiology , Neural Inhibition/physiology , Pyridazines/pharmacology , Reflex, Vestibulo-Ocular/physiology , Semicircular Canals/drug effects , Semicircular Canals/physiology , Strychnine/pharmacology , Tegmentum Mesencephali/drug effects , Tegmentum Mesencephali/physiology , Xenopus laevis , gamma-Aminobutyric Acid/metabolism
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