How vertebrate and invertebrate visual pigments differ in their mechanism of photoactivation.
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Energetics and volume changes of the intermediates in the photolysis of octopus rhodopsin at a physiological temperature.Molecular basis for ultraviolet vision in invertebrates.Thermal properties of rhodopsin: insight into the molecular mechanism of dim-light vision.Highly conserved glutamic acid in the extracellular IV-V loop in rhodopsins acts as the counterion in retinochrome, a member of the rhodopsin family.Microbial and animal rhodopsins: structures, functions, and molecular mechanisms.A spectrally silent transformation in the photolysis of octopus rhodopsin: a protein conformational change without any accompanying change of the chromophore's absorption.Ci-opsin1, a vertebrate-type opsin gene, expressed in the larval ocellus of the ascidian Ciona intestinalis.Counterion displacement in the molecular evolution of the rhodopsin family.
P2860
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P2860
How vertebrate and invertebrate visual pigments differ in their mechanism of photoactivation.
description
article científic
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article scientifique
@fr
articolo scientifico
@it
artigo científico
@pt
bilimsel makale
@tr
scientific article published on May 1999
@en
vedecký článok
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vetenskaplig artikel
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videnskabelig artikel
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vědecký článek
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name
How vertebrate and invertebrat ...... mechanism of photoactivation.
@en
How vertebrate and invertebrat ...... mechanism of photoactivation.
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type
label
How vertebrate and invertebrat ...... mechanism of photoactivation.
@en
How vertebrate and invertebrat ...... mechanism of photoactivation.
@nl
prefLabel
How vertebrate and invertebrat ...... mechanism of photoactivation.
@en
How vertebrate and invertebrat ...... mechanism of photoactivation.
@nl
P2093
P2860
P356
P1476
How vertebrate and invertebrat ...... mechanism of photoactivation.
@en
P2093
P2860
P304
P356
10.1073/PNAS.96.11.6189
P407
P577
1999-05-01T00:00:00Z