Abstract
The effects of light adaptation on the increment threshold, rhodopsin content, and dark adaptation have been studied in the rat eye over a wide range of intensities. The electroretinogram threshold was used as a measure of eye sensitivity. With adapting intensities greater than 1.5 log units above the absolute ERG threshold, the increment threshold rises linearly with increasing adapting intensity. With 5 minutes of light adaptation, the rhodopsin content of the eye is not measurably reduced until the adapting intensity is greater than 5 log units above the ERG threshold. Dark adaptation is rapid (i.e., completed in 5 to 10 minutes) until the eye is adapted to lights strong enough to bleach a measurable fraction of the rhodopsin. After brighter light adaptations, dark adaptation consists of two parts, an initial rapid phase followed by a slow component. The extent of slow adaptation depends on the fraction of rhodopsin bleached. If all the rhodopsin in the eye is bleached, the slow fall of threshold extends over 5 log units and takes 2 to 3 hours to complete. The fall of ERG threshold during the slow phase of adaptation occurs in parallel with the regeneration of rhodopsin. The slow component of dark adaptation is related to the bleaching and resynthesis of rhodopsin; the fast component of adaptation is considered to be neural adaptation.
Keywords
ADAPTATION
OCULAR
ELECTRORETINOGRAPHY
EXPERIMENTAL LAB STUDY
RATS
RECEPTORS
NEURAL
RETINAL PIGMENTS
MeSH Terms
Adaptation, Ocular
Dark Adaptation
Electroretinography
Light
Rats
Research
Retinal Pigments
Rhodopsin
Sensory Receptor Cells
Vision, Ocular
Chemicals
Retinal Pigments
Rhodopsin
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
DOWLING J E
References (15)
15 references, click to expand
-
The instantaneous threshold and early dark adaptation.
J Opt Soc Am. 1953 Sep;43(9):798-803
PMID: 13097258
-
Rhodopsin measurement and dark-adaptation in a subject deficient in cone vision.
J Physiol. 1961 Apr;156:193-205
PMID: 13744793
-
Measurement of the scotopic pigment in the living human eye.
J Physiol. 1955 Oct 28;130(1):131-47
PMID: 13278892
-
Early dark adaptation to dim luminances.
J Opt Soc Am. 1959 Nov;49:1065-70
PMID: 13795997
-
[Comparative study of the sharp bend in the dark adaptation curve by use of electroretinograms and subjective thresholds for light stimuli of varying densities].
Doc Ophthalmol Proc Ser. 1956;10:351-63; discussion, 364-72
PMID: 13414621
-
Regeneration of rhodopsin in the albino rat.
J Physiol. 1957 May 23;136(3):624-31
PMID: 13429527
-
The relation between concentration of visual purple and retinal sensitivity to light during dark adaptation.
J Physiol. 1939 Jun 14;96(1):31-44
PMID: 16995113
-
Electroretinal and psychophysical dark adaptation curves.
J Exp Psychol. 1951 Feb;41(2):139-47
PMID: 14824419
-
Iodopsin.
J Gen Physiol. 1955 May 20;38(5):623-81
PMID: 14367777
-
On the mechanism of the visual threshold and visual adaptation.
Science. 1954 Jun 25;119(3104):887-92
PMID: 13168386
-
Visual purple level and the course of dark adaptation.
Nature. 1954 Feb 13;173(4398):301-2
PMID: 13144746
-
QUANTUM RELATIONS OF THE RAT ELECTRORETINOGRAM.
J Gen Physiol. 1963 Jul;46:1267-86
PMID: 14043002
-
VITAMIN A DEFICIENCY AND NIGHT BLINDNESS.
Proc Natl Acad Sci U S A. 1958 Jul 15;44(7):648-61
PMID: 16590255
-
Visual pigments in man.
Sci Am. 1962 Nov;207:120-32
PMID: 13975605
-
Initial stages of dark and light adaptation.
J Opt Soc Am. 1963 Jan;53:98-103
PMID: 13969149