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Published in: Documenta Ophthalmologica 3/2008

01-05-2008 | Original Research Article

Prediction of visual evoked potentials at any surface location from a set of three recording electrodes

Authors: Babac A. E. Mazinani, Till D. Waberski, Andre van Ooyen, Peter Walter

Published in: Documenta Ophthalmologica | Issue 3/2008

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Abstract

Purpose of this study was to introduce a mathematical model which allows the calculation of a source dipole as the origin of the evoked activity based on the data of three simultaneously recorded VEPs from different locations at the scalp surface to predict field potentials at any neighboring location and to validate this model by comparison with actual recordings. In 10 healthy subjects (25–38, mean 29 years) continuous VEPs were recorded via 96 channels. On the base of the recordings at the positions POz′, O1′ and O2′, a source dipole vector was calculated for each time point of the recordings and VEP responses were back projected for any of the 96 electrode positions. Differences between the calculated and the actually recorded responses were quantified by coefficients of variation (CV). The prediction precision and response size depended on the distance between the electrode of the predicted response and the recording electrodes. After compensating this relationship using a polynomial function, the CV of the mean difference between calculated and recorded responses of the 10 subjects was 2.8 ± 1.2%. In conclusion, the “Mini-Brainmapping" model can provide precise topographical information with minimal additional recording efforts with good reliability. The implementation of this method in a routine diagnostic setting as an “easy-to-do" procedure would allow to examine a large number of patients and normal subjects in a short time, and thus, a solid data base could be created to correlate well defined pathologies with topographical VEP changes.
Literature
1.
go back to reference Odom JV, Bach M, Barber C, Brigell M, Marmor MF, Tormene AP, Holder GE, Vaegan Visual Evoked Potentials Standard (2004). Doc Ophthalmol 108:115–123 Odom JV, Bach M, Barber C, Brigell M, Marmor MF, Tormene AP, Holder GE, Vaegan Visual Evoked Potentials Standard (2004). Doc Ophthalmol 108:115–123
2.
go back to reference Lehmann D, Skrandies W (1980) Reference-free identification of components of checkerboard-evoked multichannel potential fields. Electroencephalogr Clin Neurophysiol 48(6):609–621PubMedCrossRef Lehmann D, Skrandies W (1980) Reference-free identification of components of checkerboard-evoked multichannel potential fields. Electroencephalogr Clin Neurophysiol 48(6):609–621PubMedCrossRef
3.
go back to reference di Russo F, Martinez A, Sereno MI, Pitzalis S, Hillyard SA (2002) Cortical sources of the early components of the visual evoked potential. Hum Brain Mapp 15(2):95–111PubMedCrossRef di Russo F, Martinez A, Sereno MI, Pitzalis S, Hillyard SA (2002) Cortical sources of the early components of the visual evoked potential. Hum Brain Mapp 15(2):95–111PubMedCrossRef
4.
go back to reference Nakamura A, Tabuchi A, Matsuda E, Yamaguchi W (2000) Dynamic topography of pattern visual evoked potentials (PVEP) in psychogenic visual loss patients. Doc Ophthalmol 101(2):95–113PubMedCrossRef Nakamura A, Tabuchi A, Matsuda E, Yamaguchi W (2000) Dynamic topography of pattern visual evoked potentials (PVEP) in psychogenic visual loss patients. Doc Ophthalmol 101(2):95–113PubMedCrossRef
5.
go back to reference Tagliati M, Sabbadini M, Bernardi G, Silvestrini M (1995) Multichannel visual evoked potentials in migraine. Electroencephalogr Clin Neurophysiol 96(1):1–5PubMedCrossRef Tagliati M, Sabbadini M, Bernardi G, Silvestrini M (1995) Multichannel visual evoked potentials in migraine. Electroencephalogr Clin Neurophysiol 96(1):1–5PubMedCrossRef
6.
go back to reference Jeffreys DA, Axford JG (1972) Source locations of pattern-specific components of human visual evoked potentials. II. Component of extrastriate cortical origin. Exp Brain Res 16(1):22–40PubMed Jeffreys DA, Axford JG (1972) Source locations of pattern-specific components of human visual evoked potentials. II. Component of extrastriate cortical origin. Exp Brain Res 16(1):22–40PubMed
7.
go back to reference Jeffreys DA, Axford JG (1972) Source locations of pattern-specific components of human visual evoked potentials. I. Component of striate cortical origin. Exp Brain Res 16(1):1–21PubMed Jeffreys DA, Axford JG (1972) Source locations of pattern-specific components of human visual evoked potentials. I. Component of striate cortical origin. Exp Brain Res 16(1):1–21PubMed
8.
go back to reference Ossenblok P, Spekreijse H (1991) The extrastriate generators of the EP to checkerboard onset. A source localization approach. Electroencephalogr Clin Neurophysiol 80(3):181–193PubMedCrossRef Ossenblok P, Spekreijse H (1991) The extrastriate generators of the EP to checkerboard onset. A source localization approach. Electroencephalogr Clin Neurophysiol 80(3):181–193PubMedCrossRef
9.
go back to reference Maier J, Dagnelie G, Spekreijse H, van Dijk BW (1987) Principal components analysis for source localization of VEPs in man. Vision Res 27(2):165–177PubMedCrossRef Maier J, Dagnelie G, Spekreijse H, van Dijk BW (1987) Principal components analysis for source localization of VEPs in man. Vision Res 27(2):165–177PubMedCrossRef
10.
go back to reference Mangun GR (1995) Neural mechanisms of visual selective attention. Psychophysiology 32(1):4–18, ReviewPubMedCrossRef Mangun GR (1995) Neural mechanisms of visual selective attention. Psychophysiology 32(1):4–18, ReviewPubMedCrossRef
11.
go back to reference Clark VP, Fan S, Hillyard SA (1994) Identification of early visual evoked potential generators by retinotopic and topographic analyses. Human Brain Mapping 15(2):170–187CrossRef Clark VP, Fan S, Hillyard SA (1994) Identification of early visual evoked potential generators by retinotopic and topographic analyses. Human Brain Mapping 15(2):170–187CrossRef
12.
go back to reference Ohm JR, Lüke HD (2004) Signalübertragung, 9 edn. Springer-Verlag, Berlin, Germany, pp 113–115 Ohm JR, Lüke HD (2004) Signalübertragung, 9 edn. Springer-Verlag, Berlin, Germany, pp 113–115
13.
go back to reference Wolters CH (2002) Influence of tissue conductivity inhomogeneity and anisotropy on EEG/MEG based source localization in the human brain, MPI Series in Cognitive Neuroscience, 39 Wolters CH (2002) Influence of tissue conductivity inhomogeneity and anisotropy on EEG/MEG based source localization in the human brain, MPI Series in Cognitive Neuroscience, 39
14.
go back to reference Koch MA, Norris DG, Hund-Georgiadis M (2002) An investigation of functional and anatomical connectivity using magnetic resonance imaging. Neuroimage 16(1):241–250PubMedCrossRef Koch MA, Norris DG, Hund-Georgiadis M (2002) An investigation of functional and anatomical connectivity using magnetic resonance imaging. Neuroimage 16(1):241–250PubMedCrossRef
15.
go back to reference Apkarian P (1992) A practical approach to albino diagnosis. VEP misrouting across the age span. Ophthalmic Paediatr Genet 13(2):77–88PubMedCrossRef Apkarian P (1992) A practical approach to albino diagnosis. VEP misrouting across the age span. Ophthalmic Paediatr Genet 13(2):77–88PubMedCrossRef
16.
go back to reference Davis AR, Sloper JJ, Neveu MM, Hogg CR, Morgan MJ, Holder GE (2003) Electrophysiological and psychophysical differences between early- and late-onset strabismic amblyopia. Invest Ophthalmol Vis Sci 44(2):610–617PubMedCrossRef Davis AR, Sloper JJ, Neveu MM, Hogg CR, Morgan MJ, Holder GE (2003) Electrophysiological and psychophysical differences between early- and late-onset strabismic amblyopia. Invest Ophthalmol Vis Sci 44(2):610–617PubMedCrossRef
17.
go back to reference Sokol S, Nadler D (1979) Simultaneous electroretinograms and visually evoked potentials from adult amblyopes in response to a pattern stimulus. Invest Ophthalmol Vis Sci 18(8):848–855PubMed Sokol S, Nadler D (1979) Simultaneous electroretinograms and visually evoked potentials from adult amblyopes in response to a pattern stimulus. Invest Ophthalmol Vis Sci 18(8):848–855PubMed
Metadata
Title
Prediction of visual evoked potentials at any surface location from a set of three recording electrodes
Authors
Babac A. E. Mazinani
Till D. Waberski
Andre van Ooyen
Peter Walter
Publication date
01-05-2008
Publisher
Springer-Verlag
Published in
Documenta Ophthalmologica / Issue 3/2008
Print ISSN: 0012-4486
Electronic ISSN: 1573-2622
DOI
https://doi.org/10.1007/s10633-007-9083-8

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