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Published in: European Archives of Oto-Rhino-Laryngology 8/2018

01-08-2018 | Otology

Parameters of skull vibration-induced nystagmus in normal subjects

Authors: Enrique García Zamora, Pedro Espírito-Santo Araújo, Vanesa Pérez Guillén, María Fernanda Vargas Gamarra, Victoria Fornés Ferrer, Magdalena Courel Rauch, Herminio Pérez Garrigues

Published in: European Archives of Oto-Rhino-Laryngology | Issue 8/2018

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Abstract

Hypothesis

The knowledge of vibration-induced nystagmus test (SVINT) values in the normal population is highly relevant to provide a rapid orientation on the diagnosis attitude in a patient with vertigo.

Background

Although mastoid bone vibration should only induce nystagmus in the presence of vestibular asymmetry, it has also been reported in normal individuals raising doubts as to how to interpret the SVINT. To date, no population studies involving the use of the SVINT and that establish normative values have been published.

Methods

This study was carried out at two tertiary healthcare centres on a total of 122 subjects. We stimulated at three frequencies (30, 60 and 100 Hz), in increasing order, first stimulating the right mastoid and then the left mastoid, and waiting for 30 s between each stimulus. The response was recorded with a videonystagmography system. The following variables were evaluated in each subject: the mean and maximum speed of the slow phase of nystagmus, the frequency of the nystagmatic response (NR) and the component and direction of the rapid phase of nystagmus.

Results

Only 26 subjects (20.5%) of the subjects studied here (122 subjects) developed any kind of nystagmatic response and 96 subjects (79.5%) did not display any response. Stimulation at 100 Hz provoked the largest number of responses (p = 0.04), while there was no difference in the number of responses induced by 30 and 60 Hz stimulations (p = 0.85). The frequency of nystagmus was ≤ 0.7 n/s in 80.8% of the positive responses. The mean velocity of the horizontal component of the NR was 2.2°/s (SD 1.6) and that of the vertical component was 1.3°/s (SD 1.2).

Conclusions

Healthy subjects do not generally develop to NR upon vibratory stimulation and only 20% of the subjects studied here developed any kind of NR, this being a slow and inconsistent response of low frequency. The establishment of normal values contributes to improve the orientation in clinical practice in the pathological population and this opens possibilities for tackling more reliable studies in this population.
Literature
1.
go back to reference Lucke K (1973) A vibratory stimulus of 100 Hz for provoking pathological nystagmus (author’s transl). Z Laryngol Rhinol Otol 52(10):716–720PubMed Lucke K (1973) A vibratory stimulus of 100 Hz for provoking pathological nystagmus (author’s transl). Z Laryngol Rhinol Otol 52(10):716–720PubMed
3.
go back to reference Dumas G, Curthoys IS, Lion A, Perrin P, Schmerber S (2017) The Skull vibration induced nystagmus test (SVINT) of vestibular function—a review. Front Neurol 8(41):1–18 Dumas G, Curthoys IS, Lion A, Perrin P, Schmerber S (2017) The Skull vibration induced nystagmus test (SVINT) of vestibular function—a review. Front Neurol 8(41):1–18
4.
go back to reference Dumas G, De Waele C, Hamann KF, Cohen B, Negrevergne M, Ulmer E et al (2007) Le test vibratoire osseux vestibulaire. Ann Otolaryngol Chir Cervicofac 4(124):173–183CrossRef Dumas G, De Waele C, Hamann KF, Cohen B, Negrevergne M, Ulmer E et al (2007) Le test vibratoire osseux vestibulaire. Ann Otolaryngol Chir Cervicofac 4(124):173–183CrossRef
5.
go back to reference Park H, Shin J, Shim D (2007) Mechanisms of vibration-induced nystagmus in normal subjects and patients with vestibular neuritis. Audiol Neurootol 12(3):189–197CrossRefPubMed Park H, Shin J, Shim D (2007) Mechanisms of vibration-induced nystagmus in normal subjects and patients with vestibular neuritis. Audiol Neurootol 12(3):189–197CrossRefPubMed
6.
go back to reference Dumas G, Perrin P, Schmerber S (2008) Nystagmus induced by high frequency vibrations of the skull in total unilateral peripheral vestibular lesions. Acta Otolaryngol 128(3):255–262CrossRefPubMed Dumas G, Perrin P, Schmerber S (2008) Nystagmus induced by high frequency vibrations of the skull in total unilateral peripheral vestibular lesions. Acta Otolaryngol 128(3):255–262CrossRefPubMed
7.
go back to reference Dumas G, Karkas A, Perrin P, Chahine K, Schmerber S (2011) High-frequency skull vibration-induced nystagmus test in partial vestibular lesions. Otol Neurotol 32(8):1291–1301CrossRefPubMed Dumas G, Karkas A, Perrin P, Chahine K, Schmerber S (2011) High-frequency skull vibration-induced nystagmus test in partial vestibular lesions. Otol Neurotol 32(8):1291–1301CrossRefPubMed
8.
go back to reference Dumas G, Perrin P, Ouedraogo E, Schmerber S (2016) How to perform the skull vibration-induced nystagmus test (SVINT). Eur Ann Otorhinolaryngol Head Neck Dis 133(5):343–348CrossRefPubMed Dumas G, Perrin P, Ouedraogo E, Schmerber S (2016) How to perform the skull vibration-induced nystagmus test (SVINT). Eur Ann Otorhinolaryngol Head Neck Dis 133(5):343–348CrossRefPubMed
9.
go back to reference Strupp M, Arbusow V, Dieterich M, Sautier W, Brandt T (1998) Perceptual and oculomotor effects of neck muscle vibration in vestibular neuritis: ipsilateral somatosensory substitution of vestibular function. Brain 121:677–685CrossRefPubMed Strupp M, Arbusow V, Dieterich M, Sautier W, Brandt T (1998) Perceptual and oculomotor effects of neck muscle vibration in vestibular neuritis: ipsilateral somatosensory substitution of vestibular function. Brain 121:677–685CrossRefPubMed
10.
go back to reference Popov KE, Lehkel H (1999) Visual and oculomotor responses induced by neck vibration in normal subjects and labyrinthine-defective patients. Exp Barin Res 128:343–352CrossRef Popov KE, Lehkel H (1999) Visual and oculomotor responses induced by neck vibration in normal subjects and labyrinthine-defective patients. Exp Barin Res 128:343–352CrossRef
11.
go back to reference Dumas G, Liond A, Perrind P, Ouedraogob E, Schmerber S (2016) Topographic analysis of the skull vibration-induced nystagmus test with piezoelectric accelerometers and force sensors. Neuroreport 27(5):318–322PubMed Dumas G, Liond A, Perrind P, Ouedraogob E, Schmerber S (2016) Topographic analysis of the skull vibration-induced nystagmus test with piezoelectric accelerometers and force sensors. Neuroreport 27(5):318–322PubMed
12.
go back to reference Nuti D, Mandala M (2005) Sensitivity and specificity of mastoid vibration test in detection of effects of vestibular neuritis. Acta Otorhinolaryngol Ital 25:271–276PubMedPubMedCentral Nuti D, Mandala M (2005) Sensitivity and specificity of mastoid vibration test in detection of effects of vestibular neuritis. Acta Otorhinolaryngol Ital 25:271–276PubMedPubMedCentral
13.
go back to reference Wit HP, Bleeker JD, Mulder HH (1984) Responses of pigeon vestibular nerve fibers to sound and vibration with audiofrequencis. J Acoust Soc Am 75:202–208CrossRefPubMed Wit HP, Bleeker JD, Mulder HH (1984) Responses of pigeon vestibular nerve fibers to sound and vibration with audiofrequencis. J Acoust Soc Am 75:202–208CrossRefPubMed
14.
go back to reference Curthoys IS, Vulovic V, Burgess AM, Sokolic L, Goonetilleke SC (2016) The response of guinea pig primary utricular and saccular irregular neurons to bone-conducted vibration (BCV) and air-conducted, sound (ACS). Hear Res 331:131–143CrossRefPubMed Curthoys IS, Vulovic V, Burgess AM, Sokolic L, Goonetilleke SC (2016) The response of guinea pig primary utricular and saccular irregular neurons to bone-conducted vibration (BCV) and air-conducted, sound (ACS). Hear Res 331:131–143CrossRefPubMed
15.
go back to reference Young ED, Fernandez C, Goldberg JM (1977) Responses of squirrel monkey vestibular neurons to audio-frequency sound and head vibration. Acta Otolaryngol 84(5–6):352–360CrossRefPubMed Young ED, Fernandez C, Goldberg JM (1977) Responses of squirrel monkey vestibular neurons to audio-frequency sound and head vibration. Acta Otolaryngol 84(5–6):352–360CrossRefPubMed
16.
go back to reference Karlberg M, Aw ST, Black RA, Todd MJ, MacDougall HG, Halmagyi M (2003) Vibration-induced ocular torsion and nystagmus after unilateral vestibular deafferentation. Brain 126:956–964CrossRefPubMed Karlberg M, Aw ST, Black RA, Todd MJ, MacDougall HG, Halmagyi M (2003) Vibration-induced ocular torsion and nystagmus after unilateral vestibular deafferentation. Brain 126:956–964CrossRefPubMed
17.
go back to reference Todd NP, Rosengren SM, Colebatch JG (2009) A utricular origin of frequency tuning to low-frequency vibration in the human vestibular system? Neurosci Lett. 451(3):175–180CrossRefPubMed Todd NP, Rosengren SM, Colebatch JG (2009) A utricular origin of frequency tuning to low-frequency vibration in the human vestibular system? Neurosci Lett. 451(3):175–180CrossRefPubMed
18.
go back to reference Curthoys IS, Vulovic V, Burgess AM, Cornell ED, Mezey LE, Macdougall HG et al (2011) The basis for using bone-conducted vibration or air-conducted sound to test otolithic function. Ann NY Acad Sci 1233:231–241CrossRefPubMed Curthoys IS, Vulovic V, Burgess AM, Cornell ED, Mezey LE, Macdougall HG et al (2011) The basis for using bone-conducted vibration or air-conducted sound to test otolithic function. Ann NY Acad Sci 1233:231–241CrossRefPubMed
19.
go back to reference Curthoys IS, Burgess AM, McGarvie LA (2014) What Is the adequate stimulus for the oVEMP n10 to bone-conducted vibration? a reply to the letter by Todd and Colebatch. Ear Hear 35:487–489CrossRefPubMed Curthoys IS, Burgess AM, McGarvie LA (2014) What Is the adequate stimulus for the oVEMP n10 to bone-conducted vibration? a reply to the letter by Todd and Colebatch. Ear Hear 35:487–489CrossRefPubMed
20.
go back to reference Curthoys IS, Grant JV (2015) How does high‑frequency sound or vibration activate vestibular receptors? Exp Brain Res 233:691–699CrossRefPubMed Curthoys IS, Grant JV (2015) How does high‑frequency sound or vibration activate vestibular receptors? Exp Brain Res 233:691–699CrossRefPubMed
21.
go back to reference Goto F, Meng H, Bai R, Sato H, Imagawa H, Sasaki M, Uchino Y (2003) Eye movements evoked by the selective stimulation of the utricular nerve in cats. Auris Nasus Larynx 30:341–348CrossRefPubMed Goto F, Meng H, Bai R, Sato H, Imagawa H, Sasaki M, Uchino Y (2003) Eye movements evoked by the selective stimulation of the utricular nerve in cats. Auris Nasus Larynx 30:341–348CrossRefPubMed
22.
go back to reference Curthoys IS (2017) The new vestibular stimuli: sound and vibration. Anatomical, physiological and clinical evidence. Exp Brain Res 235(4):957–972CrossRefPubMed Curthoys IS (2017) The new vestibular stimuli: sound and vibration. Anatomical, physiological and clinical evidence. Exp Brain Res 235(4):957–972CrossRefPubMed
23.
go back to reference Dumas G, Lion A, Karkas A, Perrin P, Perottino F, Schmerber S (2014) Skull vibration-induced nystagmus test in unilateral superior canal dehiscence and otosclerosis: a vestibular Weber test. Acta Otolaryngol 134(6):588–600CrossRefPubMed Dumas G, Lion A, Karkas A, Perrin P, Perottino F, Schmerber S (2014) Skull vibration-induced nystagmus test in unilateral superior canal dehiscence and otosclerosis: a vestibular Weber test. Acta Otolaryngol 134(6):588–600CrossRefPubMed
24.
go back to reference Xie S, Guo J, Wu Z, Qiang D, Huang J, Zheng Y et al (2013) Vibration-induced nystagmus in patients with unilateral peripheral vestibular disorders. Indian J Otolaryngol Head Neck Surg 65(4):333–338CrossRefPubMedPubMedCentral Xie S, Guo J, Wu Z, Qiang D, Huang J, Zheng Y et al (2013) Vibration-induced nystagmus in patients with unilateral peripheral vestibular disorders. Indian J Otolaryngol Head Neck Surg 65(4):333–338CrossRefPubMedPubMedCentral
25.
go back to reference Perez N (2003) Vibration induced nystagmus in normal subjects and in patients with dizziness. A videonystagmography study. Rev Laryngol Otol Rhinol (Bord) 124(2):85–90 Perez N (2003) Vibration induced nystagmus in normal subjects and in patients with dizziness. A videonystagmography study. Rev Laryngol Otol Rhinol (Bord) 124(2):85–90
27.
go back to reference Curthoys IS (2010) A critical review of the neurophysiological evidence underlying clinical vestibular testing using sound, vibration and galvanic stimuli. Clin Neurophysiol 121(2):132–144CrossRefPubMed Curthoys IS (2010) A critical review of the neurophysiological evidence underlying clinical vestibular testing using sound, vibration and galvanic stimuli. Clin Neurophysiol 121(2):132–144CrossRefPubMed
29.
go back to reference Boniver R (2008) Vibration-induced nystagmus. B-ENT 4:13–14 Boniver R (2008) Vibration-induced nystagmus. B-ENT 4:13–14
31.
go back to reference Park H, Shin J, Jeong Y, Kwak H, Lee Y (2009) Lessons from follow-up examinations in patients with vestibular neuritis: how to interpret findings from vestibular function tests at a compensated stage. Otol Neurotol 30:806–811CrossRefPubMed Park H, Shin J, Jeong Y, Kwak H, Lee Y (2009) Lessons from follow-up examinations in patients with vestibular neuritis: how to interpret findings from vestibular function tests at a compensated stage. Otol Neurotol 30:806–811CrossRefPubMed
32.
go back to reference Curthoys IS, Grant JW (2015) How does high frequency sound or vibration activate vestibular receptors? Exp Brain Res 233(3):691–699CrossRefPubMed Curthoys IS, Grant JW (2015) How does high frequency sound or vibration activate vestibular receptors? Exp Brain Res 233(3):691–699CrossRefPubMed
33.
go back to reference Curthoys IS, MacDougall HG, Vidal PP, de Waele C (2017) Sustained and transient vestibular systems: a physiological basis for interpreting vestibular function. Front Neurol 30(8):117 Curthoys IS, MacDougall HG, Vidal PP, de Waele C (2017) Sustained and transient vestibular systems: a physiological basis for interpreting vestibular function. Front Neurol 30(8):117
34.
go back to reference Park H, Lee Y, Park M, Kim J, Shin J (2010) Test–retest reliability of vibration-induced nystagmus in peripheral dizzy patients. J Vestib Res 20(6):427–431PubMed Park H, Lee Y, Park M, Kim J, Shin J (2010) Test–retest reliability of vibration-induced nystagmus in peripheral dizzy patients. J Vestib Res 20(6):427–431PubMed
Metadata
Title
Parameters of skull vibration-induced nystagmus in normal subjects
Authors
Enrique García Zamora
Pedro Espírito-Santo Araújo
Vanesa Pérez Guillén
María Fernanda Vargas Gamarra
Victoria Fornés Ferrer
Magdalena Courel Rauch
Herminio Pérez Garrigues
Publication date
01-08-2018
Publisher
Springer Berlin Heidelberg
Published in
European Archives of Oto-Rhino-Laryngology / Issue 8/2018
Print ISSN: 0937-4477
Electronic ISSN: 1434-4726
DOI
https://doi.org/10.1007/s00405-018-5020-6

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