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J Neurosci
2016 Aug 31;3635:9097-110. doi: 10.1523/JNEUROSCI.4239-15.2016.
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Galvanic Vestibular Stimulation: Cellular Substrates and Response Patterns of Neurons in the Vestibulo-Ocular Network.
Gensberger KD, Kaufmann AK, Dietrich H, Branoner F, Banchi R, Chagnaud BP, Straka H.
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UNLABELLED: Galvanic vestibular stimulation (GVS) uses modulated currents to evoke neuronal activity in vestibular endorgans in the absence of head motion. GVS is typically used for a characterization of vestibular pathologies; for studies on the vestibular influence of gaze, posture, and locomotion; and for deciphering the sensory-motor transformation underlying these behaviors. At variance with the widespread use of this method, basic aspects such as the activated cellular substrate at the sensory periphery or the comparability to motion-induced neuronal activity patterns are still disputed. Using semi-intact preparations of Xenopus laevis tadpoles, we determined the cellular substrate and the spatiotemporal specificity of GVS-evoked responses and compared sinusoidal GVS-induced activity patterns with motion-induced responses in all neuronal elements along the vestibulo-ocular pathway. As main result, we found that, despite the pharmacological block of glutamatergic hair cell transmission by combined bath-application of NMDA (7-chloro-kynurenic acid) and AMPA (CNQX) receptor blockers, GVS-induced afferent spike activity persisted. However, the amplitude modulation was reduced by ∼30%, suggesting that both hair cells and vestibular afferent fibers are normally recruited by GVS. Systematic alterations of electrode placement with respect to bilateral semicircular canal pairs or alterations of the bipolar stimulus phase timing yielded unique activity patterns in extraocular motor nerves, compatible with a spatially and temporally specific activation of vestibulo-ocular reflexes in distinct planes. Despite the different GVS electrode placement in semi-intact X. laevis preparations and humans and the more global activation of vestibular endorgans by the latter approach, this method is suitable to imitate head/body motion in both circumstances.
SIGNIFICANCE STATEMENT: Galvanic vestibular stimulation is used frequently in clinical practice to test the functionality of the sense of balance. The outcome of the test that relies on the activation of eye movements by electrical stimulation of vestibular organs in the inner ear helps to dissociate vestibular impairments that cause vertigo and imbalance in patients. This study uses an amphibian model to investigate at the cellular level the underlying mechanism on which this method depends. The outcome of this translational research unequivocally revealed the cellular substrate at the vestibular sensory periphery that is activated by electrical currents, as well as the spatiotemporal specificity of the evoked eye movements, thus facilitating the interpretation of clinical test results.
Angelaki,
Contribution of irregular semicircular canal afferents to the horizontal vestibuloocular response during constant velocity rotation.
1993, Pubmed
Angelaki,
Contribution of irregular semicircular canal afferents to the horizontal vestibuloocular response during constant velocity rotation.
1993,
Pubmed Aw,
Gentamicin vestibulotoxicity impairs human electrically evoked vestibulo-ocular reflex.
2008,
Pubmed Aw,
Enhanced vestibulo-ocular reflex to electrical vestibular stimulation in Meniere's disease.
2013,
Pubmed Beck,
Instrumentation for measuring oculomotor performance and plasticity in larval organisms.
2004,
Pubmed
,
Xenbase Biesdorf,
Differential inhibitory control of semicircular canal nerve afferent-evoked inputs in second-order vestibular neurons by glycinergic and GABAergic circuits.
2008,
Pubmed BOS,
ON GALVANIC STIMULATION OF THE LABYRINTH.
1963,
Pubmed Branoner,
Semicircular canal-dependent developmental tuning of translational vestibulo-ocular reflexes in Xenopus laevis.
2015,
Pubmed
,
Xenbase Clarke,
Laboratory testing of the vestibular system.
2010,
Pubmed Cohen,
Sinusoidal galvanic vestibular stimulation (sGVS) induces a vasovagal response in the rat.
2011,
Pubmed Courjon,
Vestibular nerve and nuclei unit responses and eye movement responses to repetitive galvanic stimulation of the labyrinth in the rat.
1987,
Pubmed Curthoys,
A critical review of the neurophysiological evidence underlying clinical vestibular testing using sound, vibration and galvanic stimuli.
2010,
Pubmed Curthoys,
What galvanic vestibular stimulation actually activates.
2012,
Pubmed Dai,
Directional plasticity rapidly improves 3D vestibulo-ocular reflex alignment in monkeys using a multichannel vestibular prosthesis.
2013,
Pubmed Dai,
Restoration of 3D vestibular sensation in rhesus monkeys using a multichannel vestibular prosthesis.
2011,
Pubmed Eatock,
Vestibular hair cells and afferents: two channels for head motion signals.
2011,
Pubmed Ezure,
Response of cat semicircular canal afferents to sinusoidal polarizing currents: implications for input-output properties of second-order neurons.
1983,
Pubmed Ferrè,
Vestibular modulation of spatial perception.
2013,
Pubmed Fitzpatrick,
Passive motion reduces vestibular balance and perceptual responses.
2015,
Pubmed Fitzpatrick,
Probing the human vestibular system with galvanic stimulation.
2004,
Pubmed Fridman,
Safe direct current stimulation to expand capabilities of neural prostheses.
2013,
Pubmed Fritzsch,
Evolution of vertebrate mechanosensory hair cells and inner ears: toward identifying stimuli that select mutation driven altered morphologies.
2014,
Pubmed Goldberg,
Afferent diversity and the organization of central vestibular pathways.
2000,
Pubmed Goldberg,
Relation between discharge regularity and responses to externally applied galvanic currents in vestibular nerve afferents of the squirrel monkey.
1984,
Pubmed Gong,
Prototype neural semicircular canal prosthesis using patterned electrical stimulation.
2000,
Pubmed Grasso,
A new technique to investigate vestibulo-spinal reflexes.
2013,
Pubmed Highstein,
Inputs from regularly and irregularly discharging vestibular nerve afferents to secondary neurons in the vestibular nuclei of the squirrel monkey. II. Correlation with output pathways of secondary neurons.
1987,
Pubmed Holler,
Plane-specific brainstem commissural inhibition in frog second-order semicircular canal neurons.
2001,
Pubmed Honrubia,
Anatomic and physiological correlates in bullfrog vestibular nerve.
1989,
Pubmed Hsu,
Effects of galvanic vestibular stimulation on postural limb reflexes and neurons of spinal postural network.
2012,
Pubmed Kim,
Head movements suggest canal and otolith projections are activated during galvanic vestibular stimulation.
2013,
Pubmed Kim,
Variation in response dynamics of regular and irregular vestibular-nerve afferents during sinusoidal head rotations and currents in the chinchilla.
2011,
Pubmed Kim,
Responses of primary vestibular neurons to galvanic vestibular stimulation (GVS) in the anaesthetised guinea pig.
2004,
Pubmed Kim,
Tonic eye movements induced by bilateral and unilateral galvanic vestibular stimulation (GVS) in guinea pigs.
2013,
Pubmed Lambert,
Semicircular canal size determines the developmental onset of angular vestibuloocular reflexes in larval Xenopus.
2008,
Pubmed
,
Xenbase Lambert,
Restricted neural plasticity in vestibulospinal pathways after unilateral labyrinthectomy as the origin for scoliotic deformations.
2013,
Pubmed
,
Xenbase Lewis,
Advances in the diagnosis and treatment of vestibular disorders: psychophysics and prosthetics.
2015,
Pubmed Minor,
Vestibular-nerve inputs to the vestibulo-ocular reflex: a functional-ablation study in the squirrel monkey.
1991,
Pubmed Mitchell,
Head movements evoked in alert rhesus monkey by vestibular prosthesis stimulation: implications for postural and gaze stabilization.
2013,
Pubmed Phillips,
Vestibular implantation and longitudinal electrical stimulation of the semicircular canal afferents in human subjects.
2015,
Pubmed Ramlochansingh,
Efficacy of tricaine methanesulfonate (MS-222) as an anesthetic agent for blocking sensory-motor responses in Xenopus laevis tadpoles.
2014,
Pubmed
,
Xenbase Schneider,
Comparison of human ocular torsion patterns during natural and galvanic vestibular stimulation.
2002,
Pubmed Shanidze,
Galvanic stimulation of the vestibular periphery in guinea pigs during passive whole body rotation and self-generated head movement.
2012,
Pubmed St George,
The sense of self-motion, orientation and balance explored by vestibular stimulation.
2011,
Pubmed Straka,
Rhombomeric organization of vestibular pathways in larval frogs.
2001,
Pubmed Straka,
Basic organization principles of the VOR: lessons from frogs.
2004,
Pubmed Straka,
Xenopus laevis: an ideal experimental model for studying the developmental dynamics of neural network assembly and sensory-motor computations.
2012,
Pubmed
,
Xenbase Straka,
Convergence pattern of uncrossed excitatory and inhibitory semicircular canal-specific inputs onto second-order vestibular neurons of frogs. Organization of vestibular side loops.
2000,
Pubmed Straka,
Connecting ears to eye muscles: evolution of a 'simple' reflex arc.
2014,
Pubmed Straka,
The frog as a unique vertebrate model for studying the rhombomeric organization of functionally identified hindbrain neurons.
,
Pubmed
,
Xenbase Straka,
Intrinsic membrane properties of vertebrate vestibular neurons: function, development and plasticity.
2005,
Pubmed Straka,
Patterns of canal and otolith afferent input convergence in frog second-order vestibular neurons.
2002,
Pubmed Thompson,
Electrical stimuli in the central nervous system microenvironment.
2014,
Pubmed Wardman,
What does galvanic vestibular stimulation stimulate?
2002,
Pubmed