The Photopic ERG of the Albino Guinea Pig (Cavia porcellus): A Model of the Human Photopic ERG

被引:0
作者
Julie Racine
Sandrine Joly
Marianne Rufiange
Serge Rosolen
Christian Casanova
Pierre Lachapelle
机构
[1] McGill University-Montreal Children’s Hospital-Research Institute,Departments of Ophthalmology(D
[2] Université de Montréal,164) & Neurology
[3] Université de Montréal,Neurosurgery
[4] Clinique Vétérinaire Voltaire,Département de Sciences biologiques
[5] INSERM unité U592,École d’optométrie
来源
Documenta Ophthalmologica | 2005年 / 110卷
关键词
cone; electroretinograms; Fast Fourier Transform (FFT); guinea pigs; oscillatory potentials; photopic hill;
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学科分类号
摘要
Altricial rodents such as rats and mice are probably the most widely used animal model in the electroretinogram (ERG) literature. However, while the scotopic responses of these rodents share obvious similarities with that of humans, their photopic electroretinograms are strikingly different. For instance, the photopic ERGs of rats and mice include, when measurable, a minimal a-wave, while the b-wave is of much larger amplitude than that of humans. The purpose of this study is to present the albino guinea pig which is like humans, is a precocial animal, and is a better rodent model of the human photopic ERG. In order to investigate the above, photopic electroretinograms and oscillatory potentials, obtained from guinea pigs and human subjects, were compared. Furthermore, in a subset of animals we injected, intravitreally, selective blockers of the ON- (L-2-amino-4-phosphonobutyric acid: L-AP-4; 10 mM) or OFF- (kynurenic acid: KYN; 50 mM) retinal pathways in order to mimic similar retinal disorders found in human. Based on our results, we believe that, compared to rats and mice, the photopic (cone-mediated) ERG of the guinea pig clearly represents a superior rodent model of the human photopic ERG.
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页码:67 / 77
页数:10
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共 102 条
[1]  
Nixon PJ(2001)The contribution of cone responses to rat electroretinogram Clin Exp Ophthalmol 29 193-196
[2]  
Bui BV(2003)Pharmacological analysis of the rat cone electroretinogram Vis Neurosci 20 297-306
[3]  
Armitage JA(2003)Structure-function analysis of rods and cones in juvenile, adult, and age C57BL/6 and Balb/c mice Vis Neurosci 20 211-220
[4]  
Vingrys AJ.(2002)Evidence for a brief period of enhanced oxygen susceptibility in the rat model of oxygen-induced retinopathy Invest Ophthalmol Vis Sci 43 2481-2490
[5]  
Xu L(2004)Comparing the photopic ERG Vet Ophthalmol 7 189-192
[6]  
Ball SL(1968)-wave in different species Arch Ophthalmol 79 470-484
[7]  
Alexander KR(1969)Postnatal development of the rat retina Invest Ophthalmol Vis Sci 8 60-69
[8]  
Peachey NS.(1975)Development of the rat retina Anat Embryol 14 279-300
[9]  
Gresh J(1974)In utero development and maturation of the retina of a non-primate mammal: a light and electron microscopic study of the guinea pig Vis Res 14 693-702
[10]  
Goletz PW(1979)Discrimination of light intensity by rats with inherited retinal degeneration: a behavioural and cytological study J Comp Neurol 1888 245-262