Literature DB >> 24366259

Neuronal detection thresholds during vestibular compensation: contributions of response variability and sensory substitution.

Mohsen Jamali1, Diana E Mitchell, Alexis Dale, Jerome Carriot, Soroush G Sadeghi, Kathleen E Cullen.   

Abstract

The vestibular system is responsible for processing self-motion, allowing normal subjects to discriminate the direction of rotational movements as slow as 1-2 deg s(-1). After unilateral vestibular injury patients' direction-discrimination thresholds worsen to ∼20 deg s(-1), and despite some improvement thresholds remain substantially elevated following compensation. To date, however, the underlying neural mechanisms of this recovery have not been addressed. Here, we recorded from first-order central neurons in the macaque monkey that provide vestibular information to higher brain areas for self-motion perception. Immediately following unilateral labyrinthectomy, neuronal detection thresholds increased by more than two-fold (from 14 to 30 deg s(-1)). While thresholds showed slight improvement by week 3 (25 deg s(-1)), they never recovered to control values - a trend mirroring the time course of perceptual thresholds in patients. We further discovered that changes in neuronal response variability paralleled changes in sensitivity for vestibular stimulation during compensation, thereby causing detection thresholds to remain elevated over time. However, we found that in a subset of neurons, the emergence of neck proprioceptive responses combined with residual vestibular modulation during head-on-body motion led to better neuronal detection thresholds. Taken together, our results emphasize that increases in response variability to vestibular inputs ultimately constrain neural thresholds and provide evidence that sensory substitution with extravestibular (i.e. proprioceptive) inputs at the first central stage of vestibular processing is a neural substrate for improvements in self-motion perception following vestibular loss. Thus, our results provide a neural correlate for the patient benefits provided by rehabilitative strategies that take advantage of the convergence of these multisensory cues.

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Year:  2013        PMID: 24366259      PMCID: PMC3979612          DOI: 10.1113/jphysiol.2013.267534

Source DB:  PubMed          Journal:  J Physiol        ISSN: 0022-3751            Impact factor:   5.182


  76 in total

1.  Integration of vestibular and head movement signals in the vestibular nuclei during whole-body rotation.

Authors:  G T Gdowski; R A McCrea
Journal:  J Neurophysiol       Date:  1999-07       Impact factor: 2.714

2.  Frequency dependence of vestibuloocular reflex thresholds.

Authors:  Csilla Haburcakova; Richard F Lewis; Daniel M Merfeld
Journal:  J Neurophysiol       Date:  2011-11-09       Impact factor: 2.714

3.  Response of vestibular neurons to head rotations in vertical planes. III. Response of vestibulocollic neurons to vestibular and neck stimulation.

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Journal:  J Neurophysiol       Date:  1990-12       Impact factor: 2.714

4.  Dynamics of the horizontal vestibuloocular reflex after unilateral labyrinthectomy: response to high frequency, high acceleration, and high velocity rotations.

Authors:  Soroush G Sadeghi; Lloyd B Minor; Kathleen E Cullen
Journal:  Exp Brain Res       Date:  2006-06-29       Impact factor: 1.972

5.  Vestibular thresholds for yaw rotation about an earth-vertical axis as a function of frequency.

Authors:  Luzia Grabherr; Keyvan Nicoucar; Fred W Mast; Daniel M Merfeld
Journal:  Exp Brain Res       Date:  2008-03-19       Impact factor: 1.972

6.  Response of vestibular nerve afferents innervating utricle and saccule during passive and active translations.

Authors:  Mohsen Jamali; Soroush G Sadeghi; Kathleen E Cullen
Journal:  J Neurophysiol       Date:  2008-10-29       Impact factor: 2.714

7.  Functional organization of vestibular commissural connections in frog.

Authors:  David Malinvaud; Isabelle Vassias; Ingrid Reichenberger; Christian Rössert; Hans Straka
Journal:  J Neurosci       Date:  2010-03-03       Impact factor: 6.167

8.  Stimulus coding in the cochlear nucleus.

Authors:  N Y Kiang; R R Pfeiffer; W B Warr; A S Backus
Journal:  Trans Am Otol Soc       Date:  1965

9.  Neural correlates of sensory substitution in vestibular pathways following complete vestibular loss.

Authors:  Soroush G Sadeghi; Lloyd B Minor; Kathleen E Cullen
Journal:  J Neurosci       Date:  2012-10-17       Impact factor: 6.167

10.  Perceptual and nystagmic thresholds of vestibular function in yaw.

Authors:  B M Seemungal; I A Gunaratne; I O Fleming; M A Gresty; A M Bronstein
Journal:  J Vestib Res       Date:  2004       Impact factor: 2.435

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  26 in total

1.  Age-related reweighting of visual and vestibular cues for vertical perception.

Authors:  Bart B G T Alberts; Luc P J Selen; W Pieter Medendorp
Journal:  J Neurophysiol       Date:  2019-01-30       Impact factor: 2.714

2.  Long-term deficits in motion detection thresholds and spike count variability after unilateral vestibular lesion.

Authors:  Xiong-Jie Yu; Jakob S Thomassen; J David Dickman; Shawn D Newlands; Dora E Angelaki
Journal:  J Neurophysiol       Date:  2014-05-21       Impact factor: 2.714

3.  Responses of non-eye movement central vestibular neurons to sinusoidal horizontal translation in compensated macaques after unilateral labyrinthectomy.

Authors:  Shawn D Newlands; Nan Lin; Min Wei
Journal:  J Neurophysiol       Date:  2014-04-09       Impact factor: 2.714

4.  Responses of non-eye-movement central vestibular neurons to sinusoidal yaw rotation in compensated macaques after unilateral semicircular canal plugging.

Authors:  Shawn D Newlands; Min Wei; David Morgan; Hongge Luan
Journal:  J Neurophysiol       Date:  2016-08-03       Impact factor: 2.714

5.  Histamine H1 Receptor Contributes to Vestibular Compensation.

Authors:  Zhang-Peng Chen; Xiao-Yang Zhang; Shi-Yu Peng; Zhong-Qin Yang; Yan-Bo Wang; Yang-Xun Zhang; Xi Chen; Jian-Jun Wang; Jing-Ning Zhu
Journal:  J Neurosci       Date:  2018-11-09       Impact factor: 6.167

6.  Bayesian quantification of sensory reweighting in a familial bilateral vestibular disorder (DFNA9).

Authors:  Bart B G T Alberts; Luc P J Selen; Wim I M Verhagen; Ronald J E Pennings; W Pieter Medendorp
Journal:  J Neurophysiol       Date:  2017-12-13       Impact factor: 2.714

Review 7.  Vestibular processing during natural self-motion: implications for perception and action.

Authors:  Kathleen E Cullen
Journal:  Nat Rev Neurosci       Date:  2019-06       Impact factor: 34.870

8.  How Peripheral Vestibular Damage Affects Velocity Storage: a Causative Explanation.

Authors:  Amsal Madhani; Richard F Lewis; Faisal Karmali
Journal:  J Assoc Res Otolaryngol       Date:  2022-06-29

9.  Loss of peripheral vestibular input alters the statistics of head movement experienced during natural self-motion.

Authors:  Omid A Zobeiri; Benjamin Ostrander; Jessica Roat; Yuri Agrawal; Kathleen E Cullen
Journal:  J Physiol       Date:  2021-03-10       Impact factor: 5.182

10.  Continuous Head Motion is a Greater Motor Control Challenge than Transient Head Motion in Patients with Loss of Vestibular Function.

Authors:  Lin Wang; Omid A Zobeiri; Jennifer L Millar; Wagner Souza Silva; Michael C Schubert; Kathleen E Cullen
Journal:  Neurorehabil Neural Repair       Date:  2021-08-08       Impact factor: 3.919

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