» Articles » PMID: 301185

Cone Pigments in Human Deutan Colour Vision Defects

Overview
Journal J Physiol
Specialty Physiology
Date 1977 Apr 1
PMID 301185
Citations 12
Authors
Affiliations
Soon will be listed here.
Abstract

1. The Nagel anomaloscope, neutral points and dichromatic matches to a spectral green light identified a population of seventy red-green dichromats. 2. The anomaloscope settings allow the calculation of the relative action spectrum of the match at the wave-length of the red (645 nm) and green (535 nm) primaries. The distribution of this ratio is bimodal; there are two clusters with a gap of about 0-75 long units between. Among the thirty-eight deuteranopes there are wide differences in anomaloscope matches; similar differences appear among the thirty-two protanopes. 3. Retinal densitometry of the foveas of fifteen of the deuteranopes is compared and contrasted with measurements on trichromats. In the former, only one photolabile pigment is found in the red-green region of the spectrum; normals always have two. The view of Rushton (1965a) that deuteranopes have erythrolabe but no measurable chlorolabe is confirmed for each member of this group. 4. Simple deuteranomalous show two red-green cone pigments. The difference spectra of extreme deuteranomalous are very similar to those found in deuteranopia. 5. Individual differnce in kinetics (photosensitivity, time constant of regeneration) and in the density and lambdamax of the difference spectrum of erythrolabe in deuteranopia are appreciable; the reasons for these differences are not clear.

Citing Articles

Compensation for red-green contrast loss in anomalous trichromats.

Boehm A, MacLeod D, Bosten J J Vis. 2014; 14(13):19.

PMID: 25413625 PMC: 4240027. DOI: 10.1167/14.13.19.


Red, green, and red-green hybrid pigments in the human retina: correlations between deduced protein sequences and psychophysically measured spectral sensitivities.

Sharpe L, Stockman A, Jagle H, Knau H, Klausen G, Reitner A J Neurosci. 1998; 18(23):10053-69.

PMID: 9822760 PMC: 6793300.


Foveal cone mosaic and visual pigment density in dichromats.

Berendschot T, van de Kraats J, van Norren D J Physiol. 1996; 492 ( Pt 1):307-14.

PMID: 8730604 PMC: 1158882. DOI: 10.1113/jphysiol.1996.sp021310.


Statistical demonstration of minor colour vision abnormalities.

VERRIEST G, Haurez F, Pierart P Int Ophthalmol. 1982; 5(1):43-54.

PMID: 7118439 DOI: 10.1007/BF00129994.


Color sensation of normal and anomalous trichromats measured by magnitude estimation.

Hemminger H, GEORGI W Psychol Res. 1982; 44(2):147-63.

PMID: 6983082 DOI: 10.1007/BF00308447.


References
1.
ALPERN M, Pugh Jr E . Variation in the action spectrum of erythrolabe among deuteranopes. J Physiol. 1977; 266(3):613-46. PMC: 1283583. DOI: 10.1113/jphysiol.1977.sp011785. View

2.
ALPERN M, Moeller J . The red and green cone visual pigments of deuternomalous trichromacy. J Physiol. 1977; 266(3):647-75. PMC: 1283584. DOI: 10.1113/jphysiol.1977.sp011786. View

3.
Bowmaker J, Loew E, Liebman P . Variation in the lambdamax of rhodopsin from individual frogs. Vision Res. 1975; 15:997-1003. DOI: 10.1016/0042-6989(75)90242-4. View

4.
Piantanida T, SPERLING H . Isolation of a third chromatic mechanism in the deuteranomalous observer. Vision Res. 1973; 13(11):2049-58. DOI: 10.1016/0042-6989(73)90181-8. View

5.
ALPERN M . What is it that confines in a world without color?. Invest Ophthalmol. 1974; 13(9):648-74. View