Literature DB >> 17479214

Contributions of the mouse UV photopigment to the ERG and to vision.

Gerald H Jacobs1, Gary A Williams.   

Abstract

The mouse retina contains two classes of cone photopigment with respective peak sensitivities in the middle (M) wavelengths and in the ultraviolet (UV) portion of the spectrum. To examine the functional roles subserved by the UV pigment, the absorption of light by the mouse lens was measured and voltage versus intensity (V-log I) functions were derived from recordings of the flicker ERG made under test conditions designed to maximize the relative sensitivities of the two pigment types. These V-log I data accurately predict ERG-based spectral sensitivity functions, but they fail to provide a similarly accurate account of behaviorally based measurements of spectral sensitivity in that the ERG spectral sensitivity function has much higher sensitivity in the UV wavelengths than does the behavioral spectral sensitivity function. The disparity between these two is argued to be a consequence of the widespread receptor co-expression of the two types of cone pigment in the mouse and of the pattern of retinal wiring that is thought to be characteristic of all mammalian retinas.

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Year:  2007        PMID: 17479214     DOI: 10.1007/s10633-007-9055-z

Source DB:  PubMed          Journal:  Doc Ophthalmol        ISSN: 0012-4486            Impact factor:   2.379


  32 in total

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9.  Human cone pigment expressed in transgenic mice yields altered vision.

Authors:  G H Jacobs; J C Fenwick; J B Calderone; S S Deeb
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  34 in total

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5.  Functional Circuitry of the Retina.

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8.  Eye-specific visual processing in the mouse suprachiasmatic nuclei.

Authors:  Lauren Walmsley; Timothy M Brown
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9.  Melanopsin-derived visual responses under light adapted conditions in the mouse dLGN.

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10.  Neuronal Representation of Ultraviolet Visual Stimuli in Mouse Primary Visual Cortex.

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