The nature of the primary photochemical events in rhodopsin and isorhodopsin
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Advances in Determination of a High-Resolution Three-Dimensional Structure of Rhodopsin, a Model of G-Protein-Coupled Receptors (GPCRs)Photoisomerization Mechanism of Rhodopsin and 9-cis-Rhodopsin Revealed by X-ray CrystallographyProtein-assisted pericyclic reactions: an alternate hypothesis for the action of quantal receptors.Ultrafast spectroscopy of the visual pigment rhodopsin.Microsecond time-resolved circular dichroism of rhodopsin photointermediates.Bathorhodopsin structure in the room-temperature rhodopsin photosequence: picosecond time-resolved coherent anti-Stokes Raman scattering.Why are blue visual pigments blue? A resonance Raman microprobe study.Localization of the retinal protonated Schiff base counterion in rhodopsin.Evidence for a bound water molecule next to the retinal Schiff base in bacteriorhodopsin and rhodopsin: a resonance Raman study of the Schiff base hydrogen/deuterium exchange.Octopus photoreceptor membranes. Surface charge density and pK of the Schiff base of the pigmentsTime-resolved rhodopsin activation currents in a unicellular expression system.Photolysis intermediates of the artificial visual pigment cis-5,6-dihydro-isorhodopsin.Wavelength regulation in iodopsin, a cone pigmentQM/MM study of the structure, energy storage, and origin of the bathochromic shift in vertebrate and invertebrate bathorhodopsins.Low-Temperature Trapping of Photointermediates of the Rhodopsin E181Q Mutant.Real-time UV-visible spectroscopy analysis of purple membrane-polyacrylamide film formation taking into account Fano line shapes and scatteringWhy 11-cis-retinal? Why not 7-cis-, 9-cis-, or 13-cis-retinal in the eye?Tracking the excited-state time evolution of the visual pigment with multiconfigurational quantum chemistryNormal and mutant rhodopsin activation measured with the early receptor current in a unicellular expression system.Chromophore structural changes in rhodopsin from nanoseconds to microseconds following pigment photolysis.Asp83, Glu113 and Glu134 are not specifically involved in Schiff base protonation or wavelength regulation in bovine rhodopsin.The unusual pK(a) of the rhodopsin chromophore: Is this how nature minimizes photoreceptor noise?Ground and excited states of retinal schiff base chromophores by multiconfigurational perturbation theory.Interaction with transducin depletes metarhodopsin III: a regulated retinal storage in visual signal transduction?A large geometric distortion in the first photointermediate of rhodopsin, determined by double-quantum solid-state NMR.Modelling vibrational coherence in the primary rhodopsin photoproduct.
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P2860
The nature of the primary photochemical events in rhodopsin and isorhodopsin
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1988 nî lūn-bûn
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1988 թուականի Մարտին հրատարակուած գիտական յօդուած
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1988 թվականի մարտին հրատարակված գիտական հոդված
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1988年の論文
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1988年学术文章
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1988年学术文章
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1988年学术文章
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1988年学术文章
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1988年学术文章
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1988年學術文章
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name
The nature of the primary photochemical events in rhodopsin and isorhodopsin
@ast
The nature of the primary photochemical events in rhodopsin and isorhodopsin
@en
The nature of the primary photochemical events in rhodopsin and isorhodopsin
@nl
type
label
The nature of the primary photochemical events in rhodopsin and isorhodopsin
@ast
The nature of the primary photochemical events in rhodopsin and isorhodopsin
@en
The nature of the primary photochemical events in rhodopsin and isorhodopsin
@nl
prefLabel
The nature of the primary photochemical events in rhodopsin and isorhodopsin
@ast
The nature of the primary photochemical events in rhodopsin and isorhodopsin
@en
The nature of the primary photochemical events in rhodopsin and isorhodopsin
@nl
P2093
P2860
P1433
P1476
The nature of the primary photochemical events in rhodopsin and isorhodopsin
@en
P2093
C M Einterz
L P Murray
P2860
P304
P356
10.1016/S0006-3495(88)83114-X
P407
P577
1988-03-01T00:00:00Z