Deep brain stimulation and eye movements.

basal ganglia deep brain stimulation eye movements neuroophtalmology saccades

Journal

The European journal of neuroscience
ISSN: 1460-9568
Titre abrégé: Eur J Neurosci
Pays: France
ID NLM: 8918110

Informations de publication

Date de publication:
04 2021
Historique:
revised: 17 06 2020
received: 10 02 2020
accepted: 19 06 2020
pubmed: 10 7 2020
medline: 30 6 2021
entrez: 10 7 2020
Statut: ppublish

Résumé

Deep brain stimulation (DBS) has been most widely used in the management of movement disorders, but more recently to treat a growing number of neurological and psychiatric conditions. It is know to have a variety of effects upon oculomotor function, depending not only on the location of the stimulation, but also the underlying pathology being treated. Understanding how DBS affects eye movements is important, given the widespread nature of eye movement control and its inevitable overlap with many of the networks targeted by the stimulation. Moreover, it can also offer additional mechanistic insights into neural circuits involved in complex eye movement control. Here, we discuss the application of DBS treatment across different diseases and explore how distinct stimulation locations interfere with known eye movement circuits and the ensuing oculomotor and visual effects it can produce. We also discuss more experimental DBS targets and its effects on ocular motility, as well as discussing unilateral versus bilateral deep brain stimulation and possible hemispheric asymmetry in relation to eye movement control. Contradictory findings across studies reporting DBS effects on eye movements likely relate to differences in the methodological approaches used, levodopa medication status, as well as possible variability in DBS electrode placement. We highlight the need for further research with less common DBS targets on the possible effects upon eye movements.

Identifiants

pubmed: 32643303
doi: 10.1111/ejn.14898
doi:

Substances chimiques

Levodopa 46627O600J

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

2344-2361

Informations de copyright

© 2020 Federation of European Neuroscience Societies and John Wiley & Sons Ltd.

Références

Ackermans, L., Duits, A., van der Linden, C., Tijssen, M., Schruers, K., Temel, Y., … Visser-Vandewalle, V. (2011). Double-blind clinical trial of thalamic stimulation in patients with Tourette syndrome. Brain, 134(Pt 3), 832-844.
Agnesi, F., Connolly, A. T., Baker, K. B., Vitek, J. L., & Johnson, M. D. (2013). Deep brain stimulation imposes complex informational lesions. PLoS One, 8(8), e74462.
Agnesi, F., Johnson, M. D., & Vitek, J. L. (2013). Deep brain stimulation: How does it work? Handbook of Clinical Neurology, 116, 39-54.
Akram, H., Miller, S., Lagrata, S., Hariz, M., Ashburner, J., Behrens, T., … Zrinzo, L. (2017). Optimal deep brain stimulation site and target connectivity for chronic cluster headache. Neurology, 89(20), 2083-2091.
Almer, Z., Klein, K. S., Marsh, L., Gerstenhaber, M., & Repka, M. X. (2012). Ocular motor and sensory function in Parkinson's disease. Ophthalmology, 119(1), 178-182.
Antoniades, C. A., Buttery, P., FitzGerald, J. J., Barker, R. A., Carpenter, R. H., & Watts, C. (2012). Deep brain stimulation: Eye movements reveal anomalous effects of electrode placement and stimulation. PLoS One, 7(3), e32830.
Antoniades, C. A., Carpenter, R. H., & Temel, Y. (2012). Deep brain stimulation of the subthalamic nucleus in Parkinson's disease: Similar improvements in saccadic and manual responses. NeuroReport, 23(3), 179-183.
Antoniades, C. A., Rebelo, P., Kennard, C., Aziz, T. Z., Green, A. L., & FitzGerald, J. J. (2015). Pallidal Deep brain stimulation improves higher control of the oculomotor system in Parkinson's disease. Journal of Neuroscience, 35(38), 13043-13052.
Arle, J. E., Mei, L. Z., Carlson, K. W., & Shils, J. L. (2018). Theoretical effect of DBS on axonal fibers of passage: Firing rates, entropy, and information content. Stereotactic and Functional Neurosurgery, 96(1), 1-12.
Ashkan, K., Rogers, P., Bergman, H., & Ughratdar, I. (2017). Insights into the mechanisms of deep brain stimulation. Nature Reviews. Neurology, 13(9), 548-554.
Azimi, A., Parvaresh, M., Shahidi, G., Habibi, A., Rohani, S., Safdarian, M., … Rohani, M. (2018). Anteromedial GPi deep brain stimulation in Tourette syndrome: The first case series from Iran. Clinical Neurology and Neurosurgery, 172, 116-119.
Bakhtiari, S., Altinkaya, A., Pack, C. C., & Sadikot, A. F. (2020). The role of the subthalamic nucleus in inhibitory control of oculomotor behavior in Parkinson's disease. Scientific Reports, 10(1), 5429.
Bangash, O. K., Dissanayake, A. S., Knight, S., Murray, J., Thorburn, M., Thani, N., … Lind, C. R. P. (2019). Modulation of saccades in humans by electrical stimulation of the posterior subthalamic area. Journal of Neurosurgery, 1-9. [Epub ahead of print] https://doi.org/10.3171/2018.12.JNS18502
Barbosa, P., Kaski, D., Castro, P., Lees, A. J., Warner, T. T., & Djamshidian, A. (2019). Saccadic Direction Errors are Associated with Impulsive Compulsive Behaviours in Parkinson's Disease Patients. Journal of Parkinson’s Disease, 9(3), 625-630.
Basso, M. A., Pokorny, J. J., & Liu, P. (2005). Activity of substantia nigra pars reticulata neurons during smooth pursuit eye movements in monkeys. European Journal of Neuroscience, 22(2), 448-464.
Bejjani, B. P., Arnulf, I., Houeto, J. L., Milea, D., Demeret, S., Pidoux, B., … Agid, Y. (2002). Concurrent excitatory and inhibitory effects of high frequency stimulation: An oculomotor study. Journal of Neurology, Neurosurgery and Psychiatry, 72(4), 517-522.
Bejjani, B. P., Damier, P., Arnulf, I., Thivard, L., Bonnet, A. M., Dormont, D., … Agid, Y. (1999). Transient acute depression induced by high-frequency deep-brain stimulation. New England Journal of Medicine, 340(19), 1476-1480.
Blekher, T., Siemers, E., Abel, L. A., & Yee, R. D. (2000). Eye movements in Parkinson's disease: Before and after pallidotomy. Investigative Ophthalmology & Visual Science, 41(8), 2177-2183.
Brigell, M., Babikian, V., & Goodwin, J. A. (1984). Hypometric saccades and low-gain pursuit resulting from a thalamic hemorrhage. Annals of Neurology, 15(4), 374-378.
Chan, F., Armstrong, I. T., Pari, G., Riopelle, R. J., & Munoz, D. P. (2005). Deficits in saccadic eye-movement control in Parkinson's disease. Neuropsychologia, 43(5), 784-796.
Changizi, B. K., Cho, C., Kopell, B., & Rucker, J. (2014). Diplopia and Esophoria induced by medial thalamic deep brain stimulation (P6.308). Neurology 82(10 Supplement):P6.308.
Chastan, N., Do, M. C., Bonneville, F., Torny, F., Bloch, F., Westby, G. W., … Welter, M. L. (2009). Gait and balance disorders in Parkinson's disease: Impaired active braking of the fall of centre of gravity. Movement Disorders, 24(2), 188-195.
Chudy, D., Deletis, V., Almahariq, F., Marcinkovic, P., Skrlin, J., & Paradzik, V. (2018). Deep brain stimulation for the early treatment of the minimally conscious state and vegetative state: Experience in 14 patients. Journal of Neurosurgery, 128(4), 1189-1198.
Coe, B. C., Trappenberg, T., & Munoz, D. P. (2019). Modeling saccadic action selection: Cortical and basal ganglia signals coalesce in the superior colliculus. Frontiers in Systems Neuroscience, 13, 3.
Dec-Cwiek, M., Tutaj, M., Gracies, J. M., Volkmann, J., Rudzinska, M., Slowik, A., & Szczudlik, A. (2017). Opposite effects of l-dopa and DBS-STN on saccadic eye movements in advanced Parkinson's disease. Neurologia Neurochirurgia Polska, 51(5), 354-360.
Doshi, P. K. (2018). Expanding indications for deep brain stimulation. Neurology India, 66(Suppl.), S102-S112.
Farrell, S. M., Green, A., & Aziz, T. (2018). The current state of deep brain stimulation for chronic pain and its context in other forms of neuromodulation. Brain Sciences, 8(8).
Fawcett, A. P., Cunic, D., Hamani, C., Hodaie, M., Lozano, A. M., Chen, R., & Hutchison, W. D. (2007). Saccade-related potentials recorded from human subthalamic nucleus. Clinical Neurophysiology, 118(1), 155-163.
Fawcett, A. P., Dostrovsky, J. O., Lozano, A. M., & Hutchison, W. D. (2005). Eye movement-related responses of neurons in human subthalamic nucleus. Experimental Brain Research, 162(3), 357-365.
Fawcett, A. P., Gonzalez, E. G., Moro, E., Steinbach, M. J., Lozano, A. M., & Hutchison, W. D. (2010). Subthalamic nucleus deep brain stimulation improves saccades in Parkinson's disease. Neuromodulation, 13(1), 17-25.
Fawcett, A. P., Moro, E., Lang, A. E., Lozano, A. M., & Hutchison, W. D. (2005). Pallidal deep brain stimulation influences both reflexive and voluntary saccades in Huntington's disease. Movement Disorders, 20(3), 371-377.
Ferraye, M. U., Gerardin, P., Debu, B., Chabardes, S., Fraix, V., Seigneuret, E., … Pollak, P. (2009). Pedunculopontine nucleus stimulation induces monocular oscillopsia. Journal of Neurology, Neurosurgery and Psychiatry, 80(2), 228-231.
Fischer, P., Ossandon, J. P., Keyser, J., Gulberti, A., Wilming, N., Hamel, W., … Konig, P. (2016). STN-DBS reduces saccadic hypometria but not visuospatial bias in Parkinson's disease patients. Frontiers in Behavioural Neurosciences, 10, 85.
Fridley, J., Adams, G., Sun, P., York, M., Atassi, F., Lai, E., … Yoshor, D. (2013). Effect of subthalamic nucleus or globus pallidus interna stimulation on oculomotor function in patients with Parkinson's disease. Stereotactic and Functional Neurosurgery, 91(2), 113-121.
Fujiwara, M., Ding, C., Kaunitz, L., Stout, J. C., Thyagarajan, D., & Tsuchiya, N. (2017). Optokinetic nystagmus reflects perceptual directions in the onset binocular rivalry in Parkinson's disease. PLoS One, 12(3), e0173707.
Fukushima, K. (1991). The interstitial nucleus of Cajal in the midbrain reticular formation and vertical eye movement. Neuroscience Research, 10(3), 159-187.
Goelz, L. C., Cottongim, M., Metman, L. V., Corcos, D. M., & David, F. J. (2019). Bilateral subthalamic nucleus deep brain stimulation increases fixational saccades during movement preparation: Evidence for impaired preparatory set. Experimental Brain Research, 237(11), 2841-2851.
Goelz, L. C., David, F. J., Sweeney, J. A., Vaillancourt, D. E., Poizner, H., Metman, L. V., & Corcos, D. M. (2017). The effects of unilateral versus bilateral subthalamic nucleus deep brain stimulation on prosaccades and antisaccades in Parkinson's disease. Experimental Brain Research, 235(2), 615-626.
Goetz, L., Bhattacharjee, M., Ferraye, M. U., Fraix, V., Maineri, C., Nosko, D., … Chabardes, S. (2019). Deep brain stimulation of the pedunculopontine nucleus area in parkinson disease: MRI-based anatomoclinical correlations and optimal target. Neurosurgery, 84(2), 506-518.
Hammond, C., Bergman, H., & Brown, P. (2007). Pathological synchronization in Parkinson's disease: Networks, models and treatments. Trends in Neurosciences, 30(7), 357-364.
Handel, A., & Glimcher, P. W. (2000). Contextual modulation of substantia nigra pars reticulata neurons. Journal of Neurophysiology, 83(5), 3042-3048.
Hartmann, C. J., Fliegen, S., Groiss, S. J., Wojtecki, L., & Schnitzler, A. (2019). An update on best practice of deep brain stimulation in Parkinson's disease. Therapeutic Advances in Neurological Disorders, 12, 1756286419838096.
Heuer, H. W., Mirsky, J. B., Kong, E. L., Dickerson, B. C., Miller, B. L., Kramer, J. H., & Boxer, A. L. (2013). Antisaccade task reflects cortical involvement in mild cognitive impairment. Neurology, 81(14), 1235-1243.
Hikosaka, O., Takikawa, Y., & Kawagoe, R. (2000). Role of the basal ganglia in the control of purposive saccadic eye movements. Physiological Reviews, 80(3), 953-978.
Hikosaka, O., & Wurtz, R. H. (1983). Visual and oculomotor functions of monkey substantia nigra pars reticulata. III. Memory-contingent visual and saccade responses. Journal of Neurophysiology, 49(5), 1268-1284.
Hikosaka, O., & Wurtz, R. H. (1989). The basal ganglia. Reviews of Oculomotor Research, 3, 257-281.
Hood, A. J., Amador, S. C., Cain, A. E., Briand, K. A., Al-Refai, A. H., Schiess, M. C., & Sereno, A. B. (2007). Levodopa slows prosaccades and improves antisaccades: An eye movement study in Parkinson's disease. Journal of Neurology, Neurosurgery and Psychiatry, 78(6), 565-570.
Hutchison, W. D., Dostrovsky, J. O., Walters, J. R., Courtemanche, R., Boraud, T., Goldberg, J., & Brown, P. (2004). Neuronal oscillations in the basal ganglia and movement disorders: Evidence from whole animal and human recordings. Journal of Neuroscience, 24(42), 9240-9243.
Jenkinson, N., Brittain, J. S., Hicks, S. L., Kennard, C., & Aziz, T. Z. (2012). On the origin of oscillopsia during pedunculopontine stimulation. Stereotactic and Functional Neurosurgery, 90(2), 124-129.
Kang, S. L., Shaikh, A. G., & Ghasia, F. F. (2018). Vergence and Strabismus in Neurodegenerative Disorders. Frontiers Neurology, 9, 299.
Kobayashi, H., Yoshida, T., & Inouye, M. (2009). Significant enhanced expression and solubility of human proteins in Escherichia coli by fusion with protein S from Myxococcus xanthus. Applied and Environment Microbiology, 75(16), 5356-5362.
Kobayashi, Y., Inoue, Y., Yamamoto, M., Isa, T., & Aizawa, H. (2002). Contribution of pedunculopontine tegmental nucleus neurons to performance of visually guided saccade tasks in monkeys. Journal of Neurophysiology, 88(2), 715-731.
Kocabicak, E., Temel, Y., Hollig, A., Falkenburger, B., & Tan, S. (2015). Current perspectives on deep brain stimulation for severe neurological and psychiatric disorders. Neuropsychiatric Disease and Treatment, 11, 1051-1066.
Koeglsperger, T., Palleis, C., Hell, F., Mehrkens, J. H., & Botzel, K. (2019). Deep brain stimulation programming for movement disorders: Current concepts and evidence-based strategies. Frontiers in Neurology, 10, 410.
Krack, P., Batir, A., Van Blercom, N., Chabardes, S., Fraix, V., Ardouin, C., … Pollak, P. (2003). Five-year follow-up of bilateral stimulation of the subthalamic nucleus in advanced Parkinson's disease. New England Journal of Medicine, 349(20), 1925-1934.
Kronenbuerger, M., Gonzalez, E. G., Liu, L. D., Moro, E., Steinbach, M. J., Lozano, A. M., … Hutchison, W. D. (2010). Involvement of the human ventrolateral thalamus in the control of visually guided saccades. Brain Stimulation, 3(4), 226-229.
LaBerge, D., & Buchsbaum, M. S. (1990). Positron emission tomographic measurements of pulvinar activity during an attention task. Journal of Neuroscience, 10(2), 613-619.
Leigh, R. J., & Kennard, C. (2004). Using saccades as a research tool in the clinical neurosciences. Brain, 127(3), 460-477.
Leigh, R. J., & Zee, D. S. (2006). The neurology of eye movements. 4th. from ; http://www.loc.gov/catdir/enhancements/fy0637/2005022301-d.htmlhttp://www.loc.gov/catdir/toc/ecip0517/2005022301.html.
Liu, P., & Basso, M. A. (2008). Substantia nigra stimulation influences monkey superior colliculus neuronal activity bilaterally. Journal of Neurophysiology, 100(2), 1098-1112.
Liu, X., Nachev, P., Wang, S., Green, A., Kennard, C., & Aziz, T. (2009). The saccade-related local field potentials of the superior colliculus: A functional marker for localizing the periventricular and periaqueductal gray. Journal of Clinical Neurophysiology, 26(4), 280-287.
Loddenkemper, T., Pan, A., Neme, S., Baker, K. B., Rezai, A. R., Dinner, D. S., … Luders, H. O. (2001). Deep brain stimulation in epilepsy. Journal of Clinical Neurophysiology, 18(6), 514-532.
Lohnes, C. A., & Earhart, G. M. (2012). Effect of subthalamic deep brain stimulation on turning kinematics and related saccadic eye movements in Parkinson disease. Experimental Neurology, 236(2), 389-394.
Lozano, A. M., Kumar, R., Gross, R. E., Giladi, N., Hutchison, W. D., Dostrovsky, J. O., & Lang, A. E. (1997). Globus pallidus internus pallidotomy for generalized dystonia. Movement Disorders, 12(6), 865-870.
Lozano, A. M., Lipsman, N., Bergman, H., Brown, P., Chabardes, S., Chang, J. W., … Krauss, J. K. (2019). Deep brain stimulation: Current challenges and future directions. Nature Reviews. Neurology, 15(3), 148-160.
Lozano, P., Bernal, B., Jara, A. G., & Belleville, M. P. (2014). Enzymatic membrane reactor for full saccharification of ionic liquid-pretreated microcrystalline cellulose. Bioresource Technology, 151, 159-165.
Lu, Z., Buchanan, T., Kennard, C., FitzGerald, J. J., & Antoniades, C. A. (2019). The effect of levodopa on saccades - Oxford Quantification in Parkinsonism study. Parkinsonism & Related Disorders, 68, 49-56.
Macaskill, M. R., Graham, C. F., Pitcher, T. L., Myall, D. J., Livingston, L., van Stockum, S., … Anderson, T. J. (2012). The influence of motor and cognitive impairment upon visually-guided saccades in Parkinson's disease. Neuropsychologia, 50(14), 3338-3347.
Mena-Segovia, J., & Bolam, J. P. (2017). Rethinking the pedunculopontine nucleus: From cellular organization to function. Neuron, 94(1), 7-18.
Meoni, S., Fraix, V., Castrioto, A., Benabid, A. L., Seigneuret, E., Vercueil, L., … Moro, E. (2017). Pallidal deep brain stimulation for dystonia: A long term study. Journal of Neurology, Neurosurgery and Psychiatry, 88(11), 960-967.
Mosimann, U. P., Muri, R. M., Burn, D. J., Felblinger, J., O'Brien, J. T., & McKeith, I. G. (2005). Saccadic eye movement changes in Parkinson's disease dementia and dementia with Lewy bodies. Brain, 128(Pt 6), 1267-1276.
Nilsson, M. H., Patel, M., Rehncrona, S., Magnusson, M., & Fransson, P. A. (2013). Subthalamic deep brain stimulation improves smooth pursuit and saccade performance in patients with Parkinson's disease. Journal of NeuroEngineering and Rehabilitation, 10, 33.
Okada, K., & Kobayashi, Y. (2009). Characterization of oculomotor and visual activities in the primate pedunculopontine tegmental nucleus during visually guided saccade tasks. European Journal of Neuroscience, 30(11), 2211-2223.
Okada, K., & Kobayashi, Y. (2013). Reward prediction-related increases and decreases in tonic neuronal activity of the pedunculopontine tegmental nucleus. Front Integr Neurosci, 7, 36.
Okada, K., & Kobayashi, Y. (2014). Fixational saccade-related activity of pedunculopontine tegmental nucleus neurons in behaving monkeys. European Journal of Neuroscience, 40(4), 2641-2651.
Okada, K. I., & Kobayashi, Y. (2016). Reward and behavioral factors contributing to the tonic activity of monkey pedunculopontine tegmental nucleus neurons during saccade tasks. Frontiers in Systems Neuroscience, 10, 94.
O'Sullivan, J. D., Maruff, P., Tyler, P., Peppard, R. F., McNeill, P., & Currie, J. (2003). Unilateral pallidotomy for Parkinson's disease disrupts ocular fixation. Journal of Clinical Neuroscience, 10(2), 181-185.
Parent, A. (2004). Giovanni Aldini: From animal electricity to human brain stimulation. Canadian Journal of Neurological Sciences, 31(4), 576-584.
Patterson, A., Okun, M. S., & Hess, C. (2017). High-voltage VIM region deep brain stimulation mimicking progressive supranuclear palsy. Tremor Other Hyperkinet Mov (N Y), 7, 449.
Pinkhardt, E. H., Jurgens, R., Lule, D., Heimrath, J., Ludolph, A. C., Becker, W., & Kassubek, J. (2012). Eye movement impairments in Parkinson's disease: Possible role of extradopaminergic mechanisms. BMC Neurol, 12, 5.
Pollock, A., Hazelton, C., Henderson, C. A., Angilley, J., Dhillon, B., Langhorne, P., … Shahani, U. (2011). Interventions for visual field defects in patients with stroke. Cochrane Database Systematic Review (10): CD008388.
Racette, B. A., Gokden, M. S., Tychsen, L. S., & Perlmutter, J. S. (1999). Convergence insufficiency in idiopathic Parkinson's disease responsive to levodopa. Strabismus, 7(3), 169-174.
Rascol, O., Clanet, M., Montastruc, J. L., Simonetta, M., Soulier-Esteve, M. J., Doyon, B., & Rascol, A. (1989). Abnormal ocular movements in Parkinson's disease. Evidence for involvement of dopaminergic systems. Brain 112 (Pt, 5), 1193-1214.
Rivaud-Pechoux, S., Vermersch, A. I., Gaymard, B., Ploner, C. J., Bejjani, B. P., Damier, P., … Pierrot-Deseilligny, C. (2000). Improvement of memory guided saccades in parkinsonian patients by high frequency subthalamic nucleus stimulation. Journal of Neurology, Neurosurgery and Psychiatry, 68(3), 381-384.
Robinson, F. R., Straube, A., & Fuchs, A. F. (1993). Role of the caudal fastigial nucleus in saccade generation. II. Effects of muscimol inactivation. Journal of Neurophysiology, 70(5), 1741-1758.
Rowe, F. J., Hanna, K., Evans, J. R., Noonan, C. P., Garcia-Finana, M., Dodridge, C. S., … Rodgers, H. (2018). Interventions for eye movement disorders due to acquired brain injury. Cochrane Database Systematic Review, 3, CD011290.
Sauleau, P., Pollak, P., Krack, P., Courjon, J. H., Vighetto, A., Benabid, A. L., … Tilikete, C. (2008). Subthalamic stimulation improves orienting gaze movements in Parkinson's disease. Clinical Neurophysiology, 119(8), 1857-1863.
Schmalbach, B., Gunther, V., Raethjen, J., Wailke, S., Falk, D., Deuschl, G., & Witt, K. (2014). The subthalamic nucleus influences visuospatial attention in humans. Journal of Cognitive Neuroscience, 26(3), 543-550.
Sedov, A., Popov, V., Shabalov, V., Raeva, S., Jinnah, H. A., & Shaikh, A. G. (2017). Physiology of midbrain head movement neurons in cervical dystonia. Movement Disorders, 32(6), 904-912.
Servello, D., Zekaj, E., Saleh, C., Menghetti, C., & Porta, M. (2014). Long-term follow-up of deep brain stimulation of peduncolopontine nucleus in progressive supranuclear palsy: Report of three cases. Surg Neurol Int, 5(Suppl 8), S416-420.
Shaikh, A. G., Antoniades, C., Fitzgerald, J., & Ghasia, F. F. (2018). Effects of Deep Brain Stimulation on Eye Movements and Vestibular Function. Front Neurol, 9, 444.
Shaikh, A. G., & Ghasia, F. F. (2019). Saccades in Parkinson's disease: Hypometric, slow, and maladaptive. Progress in Brain Research, 249, 81-94.
Shin, S., & Sommer, M. A. (2010). Activity of neurons in monkey globus pallidus during oculomotor behavior compared with that in substantia nigra pars reticulata. Journal of Neurophysiology, 103(4), 1874-1887.
Shires, J., Joshi, S., & Basso, M. A. (2010). Shedding new light on the role of the basal ganglia-superior colliculus pathway in eye movements. Current Opinion in Neurobiology, 20(6), 717-725.
Sieger, T., Bonnet, C., Serranova, T., Wild, J., Novak, D., Ruzicka, F., … Jech, R. (2013). Basal ganglia neuronal activity during scanning eye movements in Parkinson's disease. PLoS One, 8(11), e78581.
Srivastava, A., Ahmad, O. F., Pacia, C. P., Hallett, M., & Lungu, C. (2018). The relationship between saccades and locomotion. Journal of Movement Disorders, 11(3), 93-106.
Straube, A., Ditterich, J., Oertel, W., & Kupsch, A. (1998). Electrical stimulation of the posteroventral pallidum influences internally guided saccades in Parkinson's disease. Journal of Neurology, 245(2), 101-105.
Tamma, F., Caputo, E., Chiesa, V., Egidi, M., Locatelli, M., Rampini, P., … Priori, A. (2002). Anatomo-clinical correlation of intraoperative stimulation-induced side-effects during HF-DBS of the subthalamic nucleus. Neurol Sci, 23(Suppl 2), S109-110.
Tanaka, M., & Kunimatsu, J. (2011). Contribution of the central thalamus to the generation of volitional saccades. European Journal of Neuroscience, 33(11), 2046-2057.
Taverna, S., Ilijic, E., & Surmeier, D. J. (2008). Recurrent collateral connections of striatal medium spiny neurons are disrupted in models of Parkinson's disease. Journal of Neuroscience, 28(21), 5504-5512.
Telkes, I., Jimenez-Shahed, J., Viswanathan, A., Abosch, A., & Ince, N. F. (2016). Prediction of STN-DBS electrode implantation track in Parkinson's disease by using local field potentials. Frontiers in Neuroscience, 10, 198.
Temel, Y., Tan, S., Vlamings, R., Sesia, T., Lim, L. W., Lardeux, S., … Baunez, C. (2009). Cognitive and limbic effects of deep brain stimulation in preclinical studies. Frontiers in Bioscience (Landmark Ed), 14, 1891-1901.
Temel, Y., Visser-Vandewalle, V., & Carpenter, R. H. S. (2008). Saccadic latency during electrical stimulation of the human subthalamic nucleus. Current Biology, 18(10), R412-R414.
Temel, Y., Visser-Vandewalle, V., & Carpenter, R. H. (2009). Saccadometry: A novel clinical tool for quantification of the motor effects of subthalamic nucleus stimulation in Parkinson's disease. Experimental Neurology, 216(2), 481-489.
Terao, Y., Fukuda, H., & Hikosaka, O. (2017). What do eye movements tell us about patients with neurological disorders? - An introduction to saccade recording in the clinical setting. Proceedings of the Japan Academy, Ser. B, Physical and Biological Sciences, 93(10), 772-801.
Terao, Y., Fukuda, H., Ugawa, Y., & Hikosaka, O. (2013). New perspectives on the pathophysiology of Parkinson's disease as assessed by saccade performance: A clinical review. Clinical Neurophysiology, 124(8), 1491-1506.
Terao, Y., Fukuda, H., Yugeta, A., Hikosaka, O., Nomura, Y., Segawa, M., … Ugawa, Y. (2011). Initiation and inhibitory control of saccades with the progression of Parkinson's disease - changes in three major drives converging on the superior colliculus. Neuropsychologia, 49(7), 1794-1806.
Tokushige, S. I., Matsuda, S. I., Oyama, G., Shimo, Y., Umemura, A., Sasaki, T., … Terao, Y. (2018). Effect of subthalamic nucleus deep brain stimulation on visual scanning. Clinical Neurophysiology, 129(11), 2421-2432.
Tommasi, G., Krack, P., Fraix, V., Le Bas, J. F., Chabardes, S., Benabid, A. L., & Pollak, P. (2008). Pyramidal tract side effects induced by deep brain stimulation of the subthalamic nucleus. Journal of Neurology, Neurosurgery and Psychiatry, 79(7), 813-819.
Vergilino-Perez, D., Fayel, A., Lemoine, C., Senot, P., Vergne, J., & Dore-Mazars, K. (2012). Are there any left-right asymmetries in saccade parameters? Examination of latency, gain, and peak velocity. Investigative Ophthalmology & Visual Science, 53(7), 3340-3348.
Wark, D. M. (2006). Alert hypnosis: A review and case report. American Journal of Clinical Hypnosis, 48(4), 291-300.
Wark, H. A., Garell, P. C., Walker, A. L., & Basso, M. A. (2008). A case report on fixation instability in Parkinson's disease with bilateral deep brain stimulation implants. Journal of Neurology, Neurosurgery and Psychiatry, 79(4), 443-447.
Watanabe, M., & Munoz, D. P. (2011). Probing basal ganglia functions by saccade eye movements. European Journal of Neuroscience, 33(11), 2070-2090.
Waterston, J. A., Barnes, G. R., Grealy, M. A., & Collins, S. (1996). Abnormalities of smooth eye and head movement control in Parkinson's disease. Annals of Neurology, 39(6), 749-760.
Weber, H., & Fischer, B. (1995). Gap duration and location of attention focus modulate the occurrence of left/right asymmetries in the saccadic reaction times of human subjects. Vision Research, 35(7), 987-998.
Weinberger, M., Mahant, N., Hutchison, W. D., Lozano, A. M., Moro, E., Hodaie, M., … Dostrovsky, J. O. (2006). Beta oscillatory activity in the subthalamic nucleus and its relation to dopaminergic response in Parkinson's disease. Journal of Neurophysiology, 96(6), 3248-3256.
Whiting, B. B., Whiting, A. C., & Whiting, D. M. (2018). Thalamic deep brain stimulation. Progress in Neurological Surgery, 33, 198-206.
Witt, K., Kopper, F., Deuschl, G., & Krack, P. (2006). Subthalamic nucleus influences spatial orientation in extra-personal space. Movement Disorders, 21(3), 354-361.
Yoshida, N., Okamoto, M., Makita, Y., Nanba, K., & Yoshizumi, M. (2009). Determinants of enhanced left atrial active emptying with aging: Left atrial preload, contractility or both? Internal Medicine, 48(12), 987-992.
Yugeta, A., Hutchison, W. D., Hamani, C., Saha, U., Lozano, A. M., Hodaie, M., … Chen, R. (2013). Modulation of Beta oscillations in the subthalamic nucleus with prosaccades and antisaccades in Parkinson's disease. Journal of Neuroscience, 33(16), 6895-6904.
Yugeta, A., Terao, Y., Fukuda, H., Hikosaka, O., Yokochi, F., Okiyama, R., … Ugawa, Y. (2010). Effects of STN stimulation on the initiation and inhibition of saccade in Parkinson disease. Neurology, 74(9), 743-748.

Auteurs

Maja Klarendic (M)

Neurological Department, University Clinical Center Ljubljana, Ljubljana, Slovenia.

Diego Kaski (D)

Department of Clinical and Motor Neurosciences, Centre for Vestibular and Behavioural Neurosciences, University College London, London, UK.

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