Abstract
A dual beam pump/probe technique has been used with a 585-nm probe wavelength to obtain maximal resonance enhancement of the Raman lines of bathorhodopsin in a photostationary steady-state mixture at -160 degrees C. These studies show that bathorhodopsin has a protonated Schiff base vibration at 1657 cm(-1) which shifts upon deuteration to 1625 cm(-1). Within our experimental error (+/-2 cm(-1)) these frequencies are identical to those observed in rhodopsin and isorhodopsin. These effects show that the strength of the C=N bond and the degree of protonation of the Schiff base nitrogen are the same in bathorhodopsin, rhodopsin, and isorhodopsin. The implication of these results for the structure of the retinal chromophore in bathorhodopsin are discussed. The resonance Raman spectrum of pure bathorhodopsin has been generated by accurately subtracting the residual contributions of rhodopsin and isorhodopsin from spectra of the low temperature photostationary mixture. Bathorhodopsin is found to have lines at 853, 875, 920, 1006, 1166, 1210, 1278, 1323, 1536, and 1657 cm(-1). Also, by using an intensified vidicon detector, we have observed Raman scattering from bathorhodopsin at room temperature by generating a photostationary steady state with pulsed laser excitation. At room temperature the three characteristic lines of bathorhodopsin are found at 858, 873, and 920 cm(-1). The fact that the frequencies of these bathorhodopsin lines are nearly identical at both temperatures implies that the retinal conformation in bathorhodopsin formed at -160 degrees C is the same as that formed at room temperature.
MeSH Terms
Animals
Cattle
Photoreceptor Cells/physiology
Retina/physiology
Retinal Pigments
Rhodopsin
Schiff Bases
Spectrum Analysis, Raman
Chemicals
Retinal Pigments
Schiff Bases
Rhodopsin
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Eyring G
Mathies R
References (24)
24 references, click to expand
-
THE ACTION OF LIGHT ON RHODOPSIN.
Proc Natl Acad Sci U S A. 1958 Feb;44(2):130-9
PMID: 16590155
-
Pre-lumirhodopsin and the bleaching of visual pigments.
Nature. 1963 Mar 30;197:1279-86
PMID: 14002749
-
Resonance Raman studies of bovine metarhodopsin I and metarhodopsin II.
Biochemistry. 1978 Jun 13;17(12):2430-5
PMID: 678522
-
Cis-trans isomerisation in rhodopsin occurs in picoseconds.
Nature. 1977 Sep 8;269(5624):179-80
PMID: 909584
-
Primary photochemical event in vision: proton translocation.
Proc Natl Acad Sci U S A. 1977 Aug;74(8):3119-23
PMID: 20620
-
Interpretation of resonance Raman spectra of biological molecules.
Annu Rev Biophys Bioeng. 1977;6:273-300
PMID: 326148
-
Charge stabilization mechanism in the visual and purple membrane pigments.
Proc Natl Acad Sci U S A. 1978 Jun;75(6):2558-62
PMID: 275826
-
The molecular mechanism of excitation in visual transduction and bacteriorhodopsin.
Proc Natl Acad Sci U S A. 1978 Feb;75(2):549-53
PMID: 273216
-
Temperature and wavelength effects on the photochemistry of rhodopsin, isorhodopsin, bacteriorhodopsin and their photoproducts.
Nature. 1977 Dec 8;270(5637):540-2
PMID: 593379
-
Resonance Raman studies of the conformation of retinal in rhodopsin and isorhodopsin.
J Mol Biol. 1977 Jan 15;109(2):367-72
PMID: 839546
-
Modeling the resonance Raman spectrum of a metarhodopsin: implications for the color of visual pigments.
Proc Natl Acad Sci U S A. 1976 Dec;73(12):4266-70
PMID: 1069982
-
Is proton transfer the initial photochemical process in vision?
Nature. 1976 Nov 4;264(5581):92-4
PMID: 1004544
-
A new facet in rhodopsin photochemistry.
Photochem Photobiol. 1976 Oct;24(4):363-7
PMID: 981341
-
The molecular basis of visual excitation.
Nature. 1968 Aug 24;219(5156):800-7
PMID: 4876934
-
Rhodopsin. Purification and recombination with phospholipids assayed by the metarhodopsin I leads to metarhodopsin II transition.
Biochemistry. 1974 Aug 13;13(17):3448-58
PMID: 4846291
-
Lipid requirements for Rhodopsin regenerability.
Biochemistry. 1973 Oct 23;12(22):4517-23
PMID: 4356243
-
Formation and decay of prelumirhodopsin at room temperatures.
Proc Natl Acad Sci U S A. 1972 Oct;69(10):2802-6
PMID: 4507603
-
Resonance Raman spectroscopy of rhodopsin in retinal disk membranes.
Biochemistry. 1974 Sep 24;13(20):4243-8
PMID: 4472288
-
Retinal has a highly dipolar vertically excited singlet state: implications for vision.
Proc Natl Acad Sci U S A. 1976 Jul;73(7):2169-73
PMID: 1065867
-
Rapid-flow resonance Raman spectroscopy of photolabile molecules: rhodopsin and isorhodopsin.
Proc Natl Acad Sci U S A. 1976 Jan;73(1):1-5
PMID: 1061102
-
Structure of the chromophoric group in bathorhodopsin.
Nature. 1976 Apr 22;260(5553):726-7
PMID: 1264247
-
Molecular flow resonance Raman effect from retinal and rhodopsin.
Biochemistry. 1976 Apr 20;15(8):1621-9
PMID: 1268187
-
On the primary quantum yields in the bacteriorhodopsin photocycle.
Biophys J. 1976 Jul;16(7):839-43
PMID: 938722
-
Conversion of a photon to an electrical signal by sudden polarisation in the N-retinylidene visual chromophore.
Nature. 1975 Dec 11;258(5535):526-8
PMID: 1196385