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Published in: Documenta Ophthalmologica 2/2011

01-10-2011 | Original Research Article

Improving reproducibility of VEP recording in rats: electrodes, stimulus source and peak analysis

Authors: Yuyi You, Alexander Klistorner, Johnson Thie, Stuart L. Graham

Published in: Documenta Ophthalmologica | Issue 2/2011

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Abstract

The aims of this study were to evaluate and improve the reproducibility of visual evoked potential (VEP) measurement in rats and to develop a mini-Ganzfeld stimulator for rat VEP recording. VEPs of Sprague–Dawley rats were recorded on one randomly selected eye on three separate days within a week, and the recordings were repeated three times on the first day to evaluate the intrasession repeatability and intersession reproducibility. The VEPs were recorded with subdermal needle and implanted skull screw electrodes, respectively, to evaluate the effect of electrode configuration on VEP reproducibility. We also designed a mini-Ganzfeld stimulator for rats, which provided better eye isolation than the conventional visual stimuli such as flash strobes and large Ganzfeld systems. The VEP responses from mini-Ganzfeld were compared with PS33-PLUS photic strobe and single light-emitting diode (LED). The latencies of P1, N1, P2, N2, and P3 and the amplitude of each component were measured and analysed. Intrasession and intersession within-subject standard deviations (Sw), coefficient of variation, repeatability (R95) and intraclass correlation coefficient (ICC) were calculated. The VEPs recorded using the implanted skull electrodes showed significantly larger amplitude and higher reproducibility compared to the needle electrodes (P < 0.05). The mini-Ganzfeld stimulator showed superior repeatability and reproducibility in VEP recording. The intra/intersession ICCs of latency were 0.85/0.70 for mini-Ganzfeld, 0.72/0.62 for PS33-PLUS and only 0.59/0.42 for single LED. The latencies of the early peaks (N1 and P2) demonstrated better reproducibility than the later waves. The mean intrasession and intersession ICCs were 0.96 and 0.86 for the early peaks. Using a combination of skull screw electrodes, mini-Ganzfeld stimulator and early peak analysis, we achieved a high reproducibility in the rat VEP measurement. The latencies of the early peaks of rat VEPs were more consistent, which may be due to their generation in the primary visual cortex via the retino-geniculate fibres.
Literature
1.
go back to reference Creutzfeldt O, Maekawa K, Hosli L (1969) Forms of spontaneous and evoked postsynaptic potentials of cortical nerve cells. Prog Brain Res 31:265–273PubMedCrossRef Creutzfeldt O, Maekawa K, Hosli L (1969) Forms of spontaneous and evoked postsynaptic potentials of cortical nerve cells. Prog Brain Res 31:265–273PubMedCrossRef
2.
go back to reference Ridder W (2006) Visual evoked potentials in animals. In: Heckenlively JR, Arden GB (eds) Principles and practice of clinical electrophysiology of vision. MIT Press, Cambridge, MA, pp 935–947 Ridder W (2006) Visual evoked potentials in animals. In: Heckenlively JR, Arden GB (eds) Principles and practice of clinical electrophysiology of vision. MIT Press, Cambridge, MA, pp 935–947
3.
go back to reference Iwamura Y, Fujii Y, Kamei C (2003) The effects of certain H1-antagonists on visual evoked potential in rats. Brain Res Bull 61:393–398PubMedCrossRef Iwamura Y, Fujii Y, Kamei C (2003) The effects of certain H1-antagonists on visual evoked potential in rats. Brain Res Bull 61:393–398PubMedCrossRef
4.
go back to reference Meyer R, Weissert R, Diem R, Storch MK, de Graaf KL, Kramer B, Bahr M (2001) Acute neuronal apoptosis in a rat model of multiple sclerosis. J Neurosci 21:6214–6220PubMed Meyer R, Weissert R, Diem R, Storch MK, de Graaf KL, Kramer B, Bahr M (2001) Acute neuronal apoptosis in a rat model of multiple sclerosis. J Neurosci 21:6214–6220PubMed
5.
go back to reference You Y, Klistorner A, Thie J, Graham S (2011) Latency delay of visual evoked potential is a real measurement of demyelination in a rat model of optic neuritis. Invest Ophthalmol Vis Sci 52:6911–6918 You Y, Klistorner A, Thie J, Graham S (2011) Latency delay of visual evoked potential is a real measurement of demyelination in a rat model of optic neuritis. Invest Ophthalmol Vis Sci 52:6911–6918
6.
go back to reference Onofrj M, Harnois C, Bodis-Wollner I (1985) The hemispheric distribution of the transient rat VEP: a comparison of flash and pattern stimulation. Exp Brain Res 59:427–433PubMedCrossRef Onofrj M, Harnois C, Bodis-Wollner I (1985) The hemispheric distribution of the transient rat VEP: a comparison of flash and pattern stimulation. Exp Brain Res 59:427–433PubMedCrossRef
7.
go back to reference Miyake K-I, Yoshida M, Inoue Y, Hata Y (2007) Neuroprotective effect of transcorneal electrical stimulation on the acute phase of optic nerve injury. Invest Ophthalmol Vis Sci 48:2356–2361PubMedCrossRef Miyake K-I, Yoshida M, Inoue Y, Hata Y (2007) Neuroprotective effect of transcorneal electrical stimulation on the acute phase of optic nerve injury. Invest Ophthalmol Vis Sci 48:2356–2361PubMedCrossRef
8.
go back to reference Creel D, Dustman RE, Beck EC (1974) Intensity of flash illumination and the visually evoked potential of rats, guinea pigs and cats. Vis Res 14:725–729PubMedCrossRef Creel D, Dustman RE, Beck EC (1974) Intensity of flash illumination and the visually evoked potential of rats, guinea pigs and cats. Vis Res 14:725–729PubMedCrossRef
9.
go back to reference Peachey NS, Roveri L, Messing A, McCall MA (1997) Functional consequences of oncogene-induced horizontal cell degeneration in the retinas of transgenic mice. Vis Neurosci 14:627–632PubMedCrossRef Peachey NS, Roveri L, Messing A, McCall MA (1997) Functional consequences of oncogene-induced horizontal cell degeneration in the retinas of transgenic mice. Vis Neurosci 14:627–632PubMedCrossRef
10.
go back to reference Heiduschka P, Schraermeyer U (2008) Comparison of visual function in pigmented and albino rats by electroretinography and visual evoked potentials. Graefes Arch Clin Exp Ophthalmol 246:1559–1573PubMedCrossRef Heiduschka P, Schraermeyer U (2008) Comparison of visual function in pigmented and albino rats by electroretinography and visual evoked potentials. Graefes Arch Clin Exp Ophthalmol 246:1559–1573PubMedCrossRef
11.
go back to reference Jehle T, Wingert K, Dimitriu C, Meschede W, Lasseck J, Bach M, Lagreze WA (2008) Quantification of ischemic damage in the rat retina: a comparative study using evoked potentials, electroretinography, and histology. Invest Ophthalmol Vis Sci 49:1056–1064PubMedCrossRef Jehle T, Wingert K, Dimitriu C, Meschede W, Lasseck J, Bach M, Lagreze WA (2008) Quantification of ischemic damage in the rat retina: a comparative study using evoked potentials, electroretinography, and histology. Invest Ophthalmol Vis Sci 49:1056–1064PubMedCrossRef
12.
go back to reference Tomita H, Sugano E, Yawo H, Ishizuka T, Isago H, Narikawa S, Kugler S, Tamai M (2007) Restoration of visual response in aged dystrophic RCS rats using AAV-mediated channelopsin-2 gene transfer. Invest Ophthalmol Vis Sci 48:3821–3826PubMedCrossRef Tomita H, Sugano E, Yawo H, Ishizuka T, Isago H, Narikawa S, Kugler S, Tamai M (2007) Restoration of visual response in aged dystrophic RCS rats using AAV-mediated channelopsin-2 gene transfer. Invest Ophthalmol Vis Sci 48:3821–3826PubMedCrossRef
13.
go back to reference Weymouth AE, Vingrys AJ (2008) Rodent electroretinography: methods for extraction and interpretation of rod and cone responses. Prog Retin Eye Res 27:1–44PubMedCrossRef Weymouth AE, Vingrys AJ (2008) Rodent electroretinography: methods for extraction and interpretation of rod and cone responses. Prog Retin Eye Res 27:1–44PubMedCrossRef
14.
go back to reference Leamey CA, Protti DA, Dreher B (2008) Comparative survey of the mammalian visual system with reference to the mouse. In: Chalupa LM, Williams RW (eds) Eye, retina and visual system of the mouse. MIT Press, Cambridge, MA, pp 35–60 Leamey CA, Protti DA, Dreher B (2008) Comparative survey of the mammalian visual system with reference to the mouse. In: Chalupa LM, Williams RW (eds) Eye, retina and visual system of the mouse. MIT Press, Cambridge, MA, pp 35–60
15.
go back to reference Odom JV, Bach M, Brigell M, Holder GE, McCulloch DL, Tormene AP, Vaegan (2010) ISCEV standard for clinical visual evoked potentials (2009 update). Doc Ophthalmol 120:111–119PubMedCrossRef Odom JV, Bach M, Brigell M, Holder GE, McCulloch DL, Tormene AP, Vaegan (2010) ISCEV standard for clinical visual evoked potentials (2009 update). Doc Ophthalmol 120:111–119PubMedCrossRef
16.
go back to reference McCall M, Robinson S, Dreher B (1987) Differential retinal growth appears to be the primary factor producing the ganglion cell density gradient in the rat. Neurosci Lett 79:78–84PubMedCrossRef McCall M, Robinson S, Dreher B (1987) Differential retinal growth appears to be the primary factor producing the ganglion cell density gradient in the rat. Neurosci Lett 79:78–84PubMedCrossRef
17.
go back to reference Papathanasiou ES, Peachey NS, Goto Y, Neafsey EJ, Castro AJ, Kartje GL (2006) Visual cortical plasticity following unilateral sensorimotor cortical lesions in the neonatal rat. Exp Neurol 199:122–129PubMedCrossRef Papathanasiou ES, Peachey NS, Goto Y, Neafsey EJ, Castro AJ, Kartje GL (2006) Visual cortical plasticity following unilateral sensorimotor cortical lesions in the neonatal rat. Exp Neurol 199:122–129PubMedCrossRef
18.
go back to reference Akpinar D, Yargicoglu P, Derin N, Aslan M, Agar A (2007) Effect of aminoguanidine on visual evoked potentials (VEPs), antioxidant status and lipid peroxidation in rats exposed to chronic restraint stress. Brain Res 1186:87–94PubMedCrossRef Akpinar D, Yargicoglu P, Derin N, Aslan M, Agar A (2007) Effect of aminoguanidine on visual evoked potentials (VEPs), antioxidant status and lipid peroxidation in rats exposed to chronic restraint stress. Brain Res 1186:87–94PubMedCrossRef
19.
go back to reference Iwamura Y, Fujii Y, Kamei C (2004) The effects of selective serotonin-reuptake inhibitor on visual evoked potential in rats. J Pharmacol Sci 94:271–276PubMedCrossRef Iwamura Y, Fujii Y, Kamei C (2004) The effects of selective serotonin-reuptake inhibitor on visual evoked potential in rats. J Pharmacol Sci 94:271–276PubMedCrossRef
20.
go back to reference Bland J, Altman D (1986) Statistical methods for assessing agreement between two methods of clinical measurement. Lancet 1:307–310PubMedCrossRef Bland J, Altman D (1986) Statistical methods for assessing agreement between two methods of clinical measurement. Lancet 1:307–310PubMedCrossRef
21.
go back to reference McGraw K, Wong S (1996) Forming inferences about some intraclass correlation coefficients. Psychol Methods 1:30–46CrossRef McGraw K, Wong S (1996) Forming inferences about some intraclass correlation coefficients. Psychol Methods 1:30–46CrossRef
22.
go back to reference Meeren H, Van Luijtelaar E, Coenen A (1998) Cortical and thalamic visual evoked potentials during sleep-wake states and spike-wave discharges in the rat. Electroencephalogr Clin Neurophysiol 108:306–319PubMedCrossRef Meeren H, Van Luijtelaar E, Coenen A (1998) Cortical and thalamic visual evoked potentials during sleep-wake states and spike-wave discharges in the rat. Electroencephalogr Clin Neurophysiol 108:306–319PubMedCrossRef
23.
go back to reference Creel D, Dustman R, Beck E (1973) Visually evoked responses in the rat, guinea pig, cat, monkey, and man. Exp Neurol 40:351–366PubMedCrossRef Creel D, Dustman R, Beck E (1973) Visually evoked responses in the rat, guinea pig, cat, monkey, and man. Exp Neurol 40:351–366PubMedCrossRef
24.
go back to reference Yargicoglu P, Yaras N, Agar A, Gumuslu S, Bilmen S, Ozkaya G (2003) The effect of vitamin E on stress-induced changes in visual evoked potentials (VEPs) in rats exposed to different experimental stress models. Acta Ophthalmol Scand 81:181–187PubMedCrossRef Yargicoglu P, Yaras N, Agar A, Gumuslu S, Bilmen S, Ozkaya G (2003) The effect of vitamin E on stress-induced changes in visual evoked potentials (VEPs) in rats exposed to different experimental stress models. Acta Ophthalmol Scand 81:181–187PubMedCrossRef
25.
go back to reference Goto Y, Furuta A, Tobimatsu S (2001) Magnesium deficiency differentially affects the retina and visual cortex of intact rats. J Nutr 131:2378–2381PubMed Goto Y, Furuta A, Tobimatsu S (2001) Magnesium deficiency differentially affects the retina and visual cortex of intact rats. J Nutr 131:2378–2381PubMed
26.
go back to reference Bernstein S, Guo Y, Kelman S, Flower R, Johnson M (2003) Functional and cellular responses in a noval rodent model of anterior ischemic optic neuropathy. Invest Ophthalmol Vis Sci 44:4153–4162PubMedCrossRef Bernstein S, Guo Y, Kelman S, Flower R, Johnson M (2003) Functional and cellular responses in a noval rodent model of anterior ischemic optic neuropathy. Invest Ophthalmol Vis Sci 44:4153–4162PubMedCrossRef
27.
go back to reference Peachey NS, Ball SL (2003) Electrophysiological analysis of visual function in mutant mice. Doc Ophthalmol 107:13–36PubMedCrossRef Peachey NS, Ball SL (2003) Electrophysiological analysis of visual function in mutant mice. Doc Ophthalmol 107:13–36PubMedCrossRef
28.
go back to reference Fleming D, Shearer D, Creel D (1974) Effect of pharmacologically-induced arousal on the evoked potential in the unanesthetized rat. Pharmacol Biochem Behav 2:187–192PubMedCrossRef Fleming D, Shearer D, Creel D (1974) Effect of pharmacologically-induced arousal on the evoked potential in the unanesthetized rat. Pharmacol Biochem Behav 2:187–192PubMedCrossRef
Metadata
Title
Improving reproducibility of VEP recording in rats: electrodes, stimulus source and peak analysis
Authors
Yuyi You
Alexander Klistorner
Johnson Thie
Stuart L. Graham
Publication date
01-10-2011
Publisher
Springer-Verlag
Published in
Documenta Ophthalmologica / Issue 2/2011
Print ISSN: 0012-4486
Electronic ISSN: 1573-2622
DOI
https://doi.org/10.1007/s10633-011-9288-8

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