Abstract
Isolated photoreceptor organelles (rhabdoms) from eyes of crayfish (Procambarus. Orconectes) were examined on a microscope system designed for quantitative measurements of fluorescent. Although fully dark-adapted rhabdoms are nonfluorescent or very weakly fluorescent, an increasing emission appears on exposure to light. Over the 30-fold range of intensities studied, the rate of the appearance of this fluorescence is identical to the rate of formation of metarhodopsin from rhodopsin. Furthermore, the excitation spectra for the observed emission are similar to the absorption spectra of crayfish metarhodopsin at both neutral and acid pH. Finally, the amount of fluorescence observed in rhabdoms previously irradiated with selected wavelengths of light is proportional to the amount of metarhodopsin present in the photosteady state established by the prior irradiation. The emission therefore originates from crayfish metarhodopsin. Fluorescence emission peaks at 670 nm at neutral pH. The quantum efficiency is 1.6 +/- 0.4 X 10(-3). Although emission from other rhodopsin photoproducts has previously been noted, this is the first description of fluorescence from the metarhodopsin chromophore site.
MeSH Terms
Animals
Astacoidea
Kinetics
Organoids/analysis
Photoreceptor Cells/analysis
Retinal Pigments/analysis
Rhodopsin/analogs & derivatives,analysis
Spectrometry, Fluorescence
Chemicals
Retinal Pigments
metarhodopsins
Rhodopsin
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Cronin T W
Goldsmith T H
References (16)
16 references, click to expand
-
Visual pigment fluorescence.
Science. 1968 Jan 19;159(3812):312-4
PMID: 5634499
-
Fluorescence spectra of the intermediates of rhodopsin bleaching.
Photochem Photobiol. 1969 Jun;9(6):565-70
PMID: 5807949
-
Energy transfer in rhodopsin, N-retinyl-opsin, and rod outer segments.
Proc Natl Acad Sci U S A. 1971 Apr;68(4):713-6
PMID: 5279513
-
The fluorescence from the tryptophans of rhodopsin.
Photochem Photobiol. 1972 Jun;15(6):585-8
PMID: 5034101
-
Formation and decay of prelumirhodopsin at room temperatures.
Proc Natl Acad Sci U S A. 1972 Oct;69(10):2802-6
PMID: 4507603
-
Visual pigments. 3. Determination and interpretation of the fluorescence quantum yields of retinals, Schiff bases, and protonated Schiff bases.
J Am Chem Soc. 1973 Dec 12;95(25):8223-7
PMID: 4773241
-
Observation of light emission from a rhodopsin.
Nature. 1976 Apr 22;260(5553):675-8
PMID: 1264238
-
Reduction of the retinal-opsin linkage in isolated frog retinas.
Exp Eye Res. 1976 Jun;22(6):595-609
PMID: 776639
-
On the origin of the red emission of light adapted purple membrane of Halobacterium halobium.
FEBS Lett. 1977;78(1):57-60
PMID: 872939
-
Evidence for a sensitising pigment in fly photoreceptors.
Nature. 1977 Sep 29;269(5627):386-90
PMID: 909585
-
The fluorescence from the chromophore of the purple membrane protein.
Biophys J. 1978 Apr;22(1):67-77
PMID: 638227
-
The spectral absorption of crayfish rhabdoms: pigment, photoproduct and pH sensitivity.
Vision Res. 1978;18(4):463-73
PMID: 27003
-
The kinetics of visual pigment systems. I. Mathematical analysis.
Biol Cybern. 1978 Jul 14;30(1):23-32
PMID: 687687
-
Autofluorescence in the retina of a snail, Helix aspersa.
Vision Res. 1978;18(11):1541-3
PMID: 726303
-
The contribution of a sensitizing pigment to the photosensitivity spectra of fly rhodopsin and metarhodopsin.
J Gen Physiol. 1979 May;73(5):517-40
PMID: 458418
-
Spectral properties of fluorescence induced by glutaraldehyde fixation.
J Histochem Cytochem. 1981 Mar;29(3):411-4
PMID: 6787116