Literature DB >> 1428711

Blood-retinal barrier dysfunction at the pigment epithelium induced by blue light.

B J Putting1, R C Zweypfenning, G F Vrensen, J A Oosterhuis, J A van Best.   

Abstract

Exposure to low-intensity white light can induce dysfunction of the blood-retinal barrier (BRB) at the retinal pigment epithelium (RPE). To determine whether the shorter wavelengths white light are responsible for this dysfunction, rabbit retinas were exposed to blue light (400-520 nm) or yellow light (510-740 nm). The permeability of the BRB, a parameter for the integrity of the barrier, was quantified with vitreous fluorophotometry. Morphologically, the barrier at the RPE was visualized on light and electron microscopy using horseradish peroxidase (HRP) as a tracer. Seventeen pigmented rabbits were exposed to blue light and 11 were exposed to yellow light. Vitreous fluorescein leakage increased with the exposure energy according to a power function (correlation coefficient > 0.79). The threshold energy for an increase in BRB permeability was 50 J/cm2 (0.014 W/cm2 for 1 hr) after blue and 1600 J/cm2 after yellow light. HRP tracing demonstrated that after blue light exposure, a significant fluorescein leakage on fluorophotometry corresponded to the presence of HRP in the RPE cells and in the subretinal space. After yellow light exposures of < 3700 J/cm2 and in rabbits with no significant fluorescein leakage, the HRP was limited to the choroidal capillaries and Bruch's membrane. These results demonstrate that the blue component of white light causes dysfunction of the BRB at the RPE 30 times more effectively than the longer wavelength fraction of white light. As a result, a blue light blocking filter should be used in ocular surgery on humans when an operating microscope is being used (light power 0.1-0.9 W/cm2).

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Year:  1992        PMID: 1428711

Source DB:  PubMed          Journal:  Invest Ophthalmol Vis Sci        ISSN: 0146-0404            Impact factor:   4.799


  17 in total

1.  Adhesion failures determine the pattern of choroidal neovascularization in the eye: a computer simulation study.

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2.  Spectral sensitivity of the blood-retinal barrier at the pigment epithelium for blue light in the 400-500 nm range.

Authors:  B J Putting; J A van Best; R C Zweypfenning; G F Vrensen; J A Oosterhuis
Journal:  Graefes Arch Clin Exp Ophthalmol       Date:  1993-10       Impact factor: 3.117

Review 3.  Light damage revisited: converging evidence, diverging views?

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Journal:  Graefes Arch Clin Exp Ophthalmol       Date:  1996-01       Impact factor: 3.117

4.  Fluorescein-ERG, a sensitive method for the detection of vascular damage in diabetic patients.

Authors:  M Janáky; Z Fülöp; G Benedek
Journal:  Doc Ophthalmol       Date:  1999       Impact factor: 2.379

5.  Atrophy of the retinal pigment epithelium following vitrectomy with trypan blue.

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6.  Influence of blue light on photoreceptors in a live retinal explant system.

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7.  The influence of visible light exposure on cultured RGC-5 cells.

Authors:  John P M Wood; Gerassimos Lascaratos; Anthony J Bron; Neville N Osborne
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8.  The influence of sublethal blue light exposure on human RPE cells.

Authors:  Cora Roehlecke; Annette Schaller; Lilla Knels; Richard H W Funk
Journal:  Mol Vis       Date:  2009-09-21       Impact factor: 2.367

9.  Blue Light from Cell Phones Can Cause Chronic Retinal Light Injury: The Evidence from a Clinical Observational Study and a SD Rat Model.

Authors:  Huili Li; Ming Zhang; Dahong Wang; Guojun Dong; Zhiwei Chen; Suilin Li; Xiaohong Sun; Min Zeng; Haiyang Liao; Huifang Chen; Shengyan Xiao; Xiaodan Li
Journal:  Biomed Res Int       Date:  2021-05-16       Impact factor: 3.411

10.  The effect of fluorescein angiography on full-field electroretinography parameters.

Authors:  Mohsen Azarmina; Siamak Moradian; Hossein Azarmina
Journal:  J Ophthalmic Vis Res       Date:  2012-10
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