Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Rod Opsins”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 343 records · Page 19Linked to original sources

Defective phototransductive disk membrane morphogenesis in transgenic mice expressing opsin with a mutated N-terminal domain.

Retinitis pigmentosa is a heterogeneous group of inherited retinal disorders in which the photoreceptor cells degenerate. A line of transgenic mice expresses a mutant opsin gene that encodes three missense mutations near the amino terminus, including P23H, which is the basis for a common form of dominant retinitis pigmentosa. By studying the photoreceptor cells of these mice and their normal littermates, we found that: (1) opsin was routed correctly, (2) the concentration of opsin in the disk membranes appeared normal by freeze fracture analysis, (3) the amount of disk membrane shedding was normal, but (4) the basal disks of the outer segments were disorganized, indicating defective disk membrane morphogenesis. Defective disk membrane morphogenesis appears to result in the formation of fewer mature disks, thus accounting for observed gradual shortening of the photoreceptor outer segments with age. We suggest that abnormal disk membrane morphogenesis is the primary cellular defect that leads to blindness, and that it arises from the inability of nascent disk membranes, containing normal and mutant opsin, to interact normally with each other.

Animals↗

Immunological and immunopathological aspects of opsin-induced uveoretinitis.

In an extension of our previous studies, experimental autoimmune uveoretinitis (EAU) was induced in Lewis rats by injection of very high doses of bovine opsin. The induced reaction consisted predominantly of a mild posterior retinitis. Varying the amount of injected opsin between 300 and 1,000 micrograms did not influence this result, provided that the antigen was injected in Freund's complete adjuvant. Pathogenicity of opsin appeared to be lower than that of interphotoreceptor retinoid binding protein (IRBP) or S-antigen, while EAU induced by the latter antigens was much more dose-dependent than EAU induced by opsin. An increase of the dose strongly accelerated the onset and increased the incidence of EAU from low to moderate. However, severe inflammation and high incidence were only obtained by co-injection of Hemophilus pertussis bacteria. This adjuvant especially increased cellular immune responses to opsin as measured by lymphocyte transformation. No marked effects on humoral responses were detected by ELISA, using different types of opsin preparations. Development of opsin-induced EAU was inhibited by ciclosporin, a suppressor of certain specific T cell functions. Ciclosporin injections lowered the antibody response of the rats and eliminated measurable lymphocyte transformation in vitro. Induction of opsin-EAU therefore appears to be T-cell-dependent. The effect of pertussis adjuvant may be explained by enhancement of the T cell responses to opsin and by increasing the permeability of the blood-retina barriers. Other properties of the adjuvant may be of importance as well. A relationship between change in molecular conformation and uveitogenicity of opsin is discussed.

Adjuvants, Immunologic↗

Relation of an array of early-differentiating cones to the photoreceptor mosaic in the primate retina.

The retina of diurnal primates, including humans, contains a reiterative mosaic of red-, green- and blue-sensitive cones whose visual pigments are maximally sensitive to long, middle or short wavelengths, respectively. Although the distribution of the cone subtypes in the adult rhesus monkey has been quantified using opsin-specific antisera, the mechanism for the phenotypic specification of the cone subtypes and the establishment of their ratios in the retinal mosaic remain unknown. Here we present immunocytochemical evidence that a subset of cones (about 10%) express their cell-specific opsin two to three weeks before the surrounding cones. Remarkably, these precocious cones are evenly stationed throughout undifferentiated regions of the retinal surface from several weeks after their last mitotic division, and at least one month before the formation of their synapses with bipolar and horizontal cells. Use of confocal laser microscopy reveals that the inner segments of immunolabelled and surrounding unlabelled cones are transiently in apposition with one another, enabling surface mediated interactions to occur during this period. We suggest that the early maturing cones induce neighbouring undifferentiated cones to express an appropriate opsin phenotype, and therefore constitute a 'protomap' for the emergence of the species-specific retinal mosaic.

Animals↗

Biogenesis of blowfly photoreceptor membranes is regulated by 11-cis-retinal.

Biogenesis of photoreceptor membranes has been investigated by analyzing the rhodopsin and opsin content of microvillar photoreceptor membranes after injecting retinal isomers and radioactive amino acids into the compound eyes of carotenoid-deficient blowflies. The amount of rhodopsin in the membranes was measured photometrically in extracts of isolated rhabdoms. The opsin content of the membranes and the level of radioactive labelling of opsin were measured after separating the membrane proteins by dodecyl sulphate/polyacrylamide gel electrophoresis. In the photoreceptor membrane of carotenoid-deficient flies the rhodopsin and opsin content is less than 4% of that in normal flies where opsin may constitute about 65% of the total membrane protein. In carotenoid-deficient flies the incorporation of rhodopsin into photoreceptor membranes is triggered by 11-cis-retinal but not all-trans retinal. After injection of 11-cis-retinal the opsin content of the photoreceptor membranes increases in parallel with the rhodopsin content. Radioactive labelling of opsin reveals that 11-cis-retinal triggers an incorporation of newly synthesized opsin into photoreceptor membranes whereas all-trans retinal does not induce the assembly of opsin into photoreceptor membranes. Light-dependent incorporation of radioactive labelled opsin into membranes with a high rhodopsin content shows that not only the visual pigment chromophore but also the opsin undergoes a light-dependent turnover. The findings raise the possibility that opsin synthesis in blowfly photoreceptors and consequently the assembly of photoreceptor membranes is regulated by 11-cis-retinal.

Animals↗

The pineal organ as a folded retina: immunocytochemical localization of opsins.

The most simple pineal complex (the pineal and parapineal organs of lampreys), consists of saccular evaginations of the diencephalic roof, and has a retina-like structure containing photoreceptor cells and secondary neurons. In more differentiated vertebrates, the successive folding of the pineal wall multiplies the cells and reduces the lumen of the organ, but the pattern of the histological organization remains similar to that of lampreys; therefore, we consider the histological structure of the pineal organ of higher vertebrates as a 'folded retina'. The cell membrane of several pineal photoreceptor outer-segments of vertebrates immunoreact with anti-retinal opsin antibodies supporting the view of retina-like organization of the pineal. Some other pineal outer segments do not react with retinal anti-opsin antibodies, a result suggesting the presence of special pineal photopigments in different types of pinealocytes that obviously developed during evolution. The chicken pinopsin, detected in the last years, may represent one of these unknown photopigments. Using antibodies against chicken pinopsin, we compared the immunoreactivity of different photoreceptors of the pineal organs from cyclostomes to birds at the light and electron microscopic levels. We found pinopsin immunoreaction on all pinealocytes of birds and on the rhodopsin-negative large reptilian pinealocytes. As the pinopsin has an absorption maximum at 470 nm, these avian and reptilian immunoreactive pinealocytes can be regarded as green-blue light-sensitive photoreceptors. Only a weak immunoreaction was observed on the frog and fish pinealocytes and no reaction was seen in cyclostomes and in the frontal organ of reptiles. Some photoreceptors of the retina of various species also reacted the pinopsin antibodies, therefore, pinopsin must have certain sequential similarity to individual retinal opsins of some vertebrates.

Animals↗

The visual system of the alligator.

The eye tissues and liver of the alligator contain vitamin A(1) alone. The retina contains rhodopsin, typical in absorption spectrum (lambda(max) 500 mmicro); but synthesized in solution from neo-b retinene and opsin much more rapidly than are the frog, mammalian, or chicken rhodopsins previously examined. In this regard alligator rhodopsin resembles the rhodopsins and porphyropsins of fishes, all of which so far investigated are synthesized rapidly in solution. The rates of synthesis in vitro of frog and alligator rhodopsins are matched closely by the rates of rod dark adaptation in living frogs and alligators, measured electrophysiologically at the same temperature. Alligator rods dark-adapt, and alligator rhodopsin is synthesized in solution, at rates characteristically associated with cones and cone pigments in frogs, mammals, and birds.

Alligators and Crocodiles↗

Ancestral loss of short wave-sensitive cone visual pigment in lorisiform prosimians, contrasting with its strict conservation in other prosimians.

Mammals are basically dichromatic in color vision, possessing middle to long wave-sensitive (M/LWS) and the short wave-sensitive (SWS) cone opsins in the retina, whereas some nocturnal mammals lack functional SWS opsins. Prosimians, primitive primates consisting of three extant groups (Lorisiformes, Lemuriformes, and Tarsiiformes), include many nocturnal species. Among nocturnal prosimians, a species of lorisiforms, the greater galago (Otolemur crassicaudatus), is known to lack a functional SWS opsin gene, while lemuriforms and tarsiiforms appear to retain SWS opsins in the retina. It has not been established, however, whether the loss of SWS opsin is a universal phenomenon among lorisiforms and whether the functional SWS opsin genes of lemuriforms and tarsiiforms are under strict or relaxed selective constraint. To gain better insight into an association between nocturnality and loss of SWS function, we isolated and sequenced the SWS opsin genes from two species of lorisiforms, the slow loris (Nycticebus coucang; nocturnal) and the lesser galago (Galago senegalensis; nocturnal), and one species each of lemuriforms and tarsiiforms, the brown lemur (Eulemur fulvus; cathemeral) and the western tarsier ( Tarsius bancanus; nocturnal), respectively. Our sequence analysis revealed that (1) the SWS opsin gene was disrupted in the common ancestor of galagids and lorisids and (2) the rate of nonsynonymous nucleotide substitution has been kept significantly lower than that of synonymous substitution in tarsier and lemur, demonstrating the presence of strict selective constraint on the SWS opsin genes in tarsiiforms and lemuriforms.

Animals↗

Isolation and nucleotide sequence of a partial cDNA clone for bovine opsin.

Bovine cDNAs were cloned by using a mixture of 18-base-long synthetic deoxyribonucleotides as a hybridization probe. The longest cDNA clone (pBO-1) contained an 811-bp insert that included the 434 bp of the coding region corresponding to the C-terminal 144 amino acid residues of opsin peptide and the 377 bp of the 3'-untranslated region. The size of opsin mRNA was determined as 23 S by Northern blot hybridization. Bovine liver DNA gave rise to a single band of 2.8 kb, 1.1 kb and 7.9 kb each with Eco RI, Hind III and Bam HI, respectively, by Southern blot hybridization with pBO-1 as probe. Therefore, bovine opsin gene may occur once per haploid genome.

Amino Acid Sequence↗

Increment threshold and purity discrimination spectral sensitivities of X-chromosome-linked color-defective observers.

The goal of the study was to evaluate spectral opponency in nine X-chromosome-linked color-defective observers. The tasks included increment threshold spectral sensitivity on an achromatic background, heterochromatic flicker photometry, and colorimetric purity discrimination. With a task of heterochromatic flicker photometry, the anomalous trichromatic observers showed spectral sensitivity of the corresponding dichromat. The increment threshold spectral sensitivity and colorimetric purity discrimination data were analyzed using the concept of standard cone photopigment spectral sensitivities for normal and defective vision, and a model that postulates one cone-additive and two cone-antagonistic systems. The model incorporated a shift of the peak spectral sensitivity of the long-wavelength-sensitive (LWS) pigment (for protan observers) or of the middle-wavelength-sensitive (MWS) pigment (for deutan observers). Two dichromats and two anomalous trichromats did not show clear evidence of LWS vs MWS cone antagonism. Five anomalous trichromats showed such cone antagonism. Molecular genetic analysis of the opsin genes is presented for eight of the observers.

Color Vision Defects↗

Conserved cis-elements in the Xenopus red opsin promoter necessary for cone-specific expression.

The long-wavelength sensitive (red) opsin genes encode proteins which play a central role in daytime and color vision in vertebrates. We used transgenic Xenopus to identify 5' cis-elements in the red cone opsin promoter necessary for cone-specific expression. We found a highly conserved extended region (-725 to -173) that was required for restricting GFP transgene expression to cones. We further identified a short element (5'-CCAATTAAGAGAT-3') highly conserved amongst tetrapods, including humans, necessary to restrict expression to cones in the retina. These results identify novel conserved elements that regulate spatial expression of tetrapod red cone opsin genes.

5' Flanking Region↗

Opsin/all-trans-retinal complex activates transducin by different mechanisms than photolyzed rhodopsin.

In rhodopsin, the 11-cis-retinal chromophore forms a complex with Lys296 of opsin via a protonated Schiff base. Absorption of light initiates the activation of rhodopsin by cis/trans photoisomerization of retinal. Thermal relaxation through different intermediates leads into the metarhodopsin states which bind and activate transducin (Gt) and rhodopsin kinase (RK). all-trans-Retinal also recombines with opsin independent of light, forming activating species of the receptor. In this study, we examined the mechanism by which all-trans-retinal activates opsin. To exclude other amines except active site Lys296 from formation of Schiff bases, we reductively methylated rhodopsin (PM-rhodopsin), which we then bleached to generate PM-opsin. Using spectroscopic methods and a Gt activation assay, we found that all-trans-retinal interacted with PM-opsin, producing a noncovalent complex that activated Gt. The residual nucleotide exchange in Gt catalyzed by opsin was approximately 1/250 lower relative to that of photoactivated rhodopsin (pH 8.0, 23 degrees C). Addition of equimolar all-trans-retinal led to an occupancy of one-tenth of the putative retinal binding site(s) of opsin and enhanced the Gt activation rate 2-fold. When the concentration of all-trans-retinal was increased to saturation, the Gt activation rate of the opsin/all-trans-retinal complex was approximately 1/33 lower compared to that of photoactivated rhodopsin. We conclude that all-trans-retinal can form a noncovalent complex with opsin that activates Gt by different mechanisms than photolyzed rhodopsin.

Animals↗

Molecular evolution of retinal and nonretinal opsins.

Vision and the circadian rhythms of various biological functions are triggered by phototransduction. The retinal and nonretinal (pineal gland-specific) opsins are traced back to a single common ancestor. Evolutionary analyses of these opsins identify amino acid changes that are potentially important in the regulation of wavelength absorption of photosensitive molecules-visual pigments. Such theoretical predictions can now be tested experimentally using site-directed mutagenesis; expressing the mutagenized opsins in tissue culture cells, reconstituting with 11-cis retinal, and measuring the absorption spectra of the regenerated visual pigments.

Animals↗

The spectral properties and photosensitivities of analogue photopigments regenerated with 10- and 14-substituted retinal analogues.

Analogues of 11-cis- and 9-cis-retinal with substitutions at positions 10 and 14 were used to regenerate analogue photopigments with two opsins: that of the transmuted (cone-like) 521-pigment of Gekko gekko and that of the rhodopsin of Porichthys notatus. The spectral absorbances and photosensitivities of the regenerated photopigments were determined and compared, first, between the two systems of analogue photopigments, and second, in the responses to the two opsins. Unlike the 10-fluoropigments, the comparable 14-compounds were significantly red-shifted by 19-30 nm and their sensitivity to light was similar to that of the parent 11-cis- and 9-cis-pigments. These were the results for both analogue pigments. In contrast, the 10-pigments were spectrally located close to the wavelengths of the parent compounds and the photosensitivity was significantly reduced, especially in the case of the 9-cis-analogues. Evidence was obtained for a steric hindrance effect at position 14, for no regeneration was obtained when methyl or ethyl groups were at this carbon. In the 10-substituted retinals, steric hindrance was noted only for the gecko; only the fluorosubstituted, but not the chloro-, the methyl- or the ethyl-substituted, retinals reacted. With the fish opsin, pigments were regenerated with all but the ethyl-substituted retinal. The gecko opsin appears to have a more restricted binding site. Another feature of the gecko was related to the chloride bathochromic and hyperchromic effects, in which the 521-pigment prepared in a chloride-deficient state has a blue-shifted spectrum compared with the spectrum obtained after the addition of chloride, and its extinction is raised by the addition of chloride to give a mean ratio of 1.23 for the two extinctions, one with, the other without, added chloride. The 11-cis-10-F-analogue pigment gave both chloride effects and the hyperchromic ratio was the same as that recorded for the native visual pigment. In contrast, the pigment formed with 11-cis-14-F-retinal gave a hyperchromic ratio significantly greater than 1.23. A similar contrast in the responses to chloride was obtained with the analogue photopigments regenerated with the 9-cis-10-F- and 9-cis-14-F-chromophores. This difference between the two systems is interpreted as the result of a specific configurational feature of the gecko opsin when in the chloride-deficient state that is relevant to the binding of the retinal analogue.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Opsin maturation and targeting to rhabdomeral photoreceptor membranes requires the retinal chromophore.

The function of the retinal chromophore in the transcription, translation and targeting of opsin was investigated in fly photoreceptor cells R1-6. Carotenoid deprivation and light-dependent depletion of photoreceptor cells in 11-cis (3-OH) retinal reduced not only the rhodopsin content but also the opsin density of the rhabdomeral membrane by as much as 96%. Electron microscopy revealed that rhabdomeral membranes which lack opsin are morphologically intact, but the cells show a modest proliferation of endoplasmic reticulum and zipper-like differentiations of the plasma membrane adjacent to the microvilli. Opsin mRNA levels, quantified by Northern blot analysis with opsin sense cRNA as an external standard, remain relatively constant (7 x 10(-19) moles opsin mRNA per cell), irrespective of the chromophore-dependent, large changes in the opsin content. Labeling of newly synthesized opsin after injection of eyes with [35S]methionine reveals that opsin mRNA is translated in rhodopsin-depleted cells to the same extent as in rhodopsin-rich cells. Molecular weight changes of metabolically radiolabeled opsin, indicative for the posttranslational processing of the nascent opsin to the mature opsin form, suggest that opsin processing is delayed in chromophore-deprived photoreceptor cells. Time courses of opsin labeling reveal that newly synthesized opsin is degraded faster in chromophore-deprived cells than in cells with a high chromophore supply. These results strongly suggest that the chromophore does not regulate opsin gene transcription, but is required for the processing of opsin and its targeting to the rhabdomeral photoreceptor membranes.

Animals↗

Spectral tuning of a circadian photopigment in a subterranean 'blind' mammal (Spalax ehrenbergi).

The atrophied subcutaneous eyes of Spalax ehrenbergi (the blind mole rat) express a long wavelength sensitive (LWS) cone opsin. Our data provide strong evidence that this photopigment is spectrally tuned to enhance photon capture in the red light environment of the eye. Furthermore, novel mechanisms appear partially responsible for this sensory fine-tuning. These data support the hypothesis that the LWS opsin of Spalax acts as a functional photopigment and that it is not a 'residue' of the pre-subterranean visual system. As the eye of Spalax has only one known function, the entrainment of circadian rhythms to environmental light, the LWS photopigment is implicated in this task. These results, together with our recent findings that rod and cone photopigments are not required for murine photoentrainment, suggest that multiple photopigments (classical and novel) mediate the effects of light on the mammalian circadian system.

Amino Acid Sequence↗

Myosin 3A transgene expression produces abnormal actin filament bundles in transgenic Xenopus laevis rod photoreceptors.

Myo3A, a class III myosin, localizes to the distal (plus) ends of inner segment actin filament bundles that form the core of microvillus-like calycal processes encircling the base of the photoreceptor outer segment. To investigate Myo3A localization and function, we expressed green fluorescent protein-tagged bass Myo3A and related constructs in transgenic Xenopus rods using a modified opsin promoter. Tagged intact Myo3A localized to rod calycal processes, as previously reported for native bass Myo3A. Transgenic rods developed abnormally large calycal processes and subsequently degenerated. Modified Myo3A expression constructs demonstrated that calycal process localization required an active motor domain and the tail domain. Expressed tail domain alone localized to actin bundles along the entire inner segment length, rather than to the distal end. This tail domain localization required the conserved C-terminal domain (3THDII) previously shown to possess an actin-binding motif. Our findings suggest that Myo3A plays a role in the morphogenesis and maintenance of calycal processes of vertebrate photoreceptors.

Actin Cytoskeleton↗

Colour tuning mechanisms of visual pigments.

Spectral tuning by visual pigments involves modulation of physical properties of the 11-cis-retinylidene protonated Schiff base (PSB) chromophore by amino acid side chains in and around the chromophore-binding pocket. Specific molecular contacts between the chromophore and the amino acid side chains of the opsin chromophore-binding pocket have been determined recently using an interdisciplinary approach consisting of site-directed mutagenesis, optical and vibrational spectroscopy, and molecular graphics modelling. These studies provide insight into the mechanism of spectral tuning among visual pigments. In blue pigments a majority of the opsin shift is caused by polar amino acid side chains arrayed about the PSB to increase the energy gap between the ground (S0) and excited states (S1). In addition, a specific tyrosine near the chromophore ring causes a decrease in solvent polarizability. Other amino acid residues alter the binding pocket structure to strengthen electrostatic interaction between the PSB and its counterion and/or solvent dipoles. In the green and red pigments, the work of Kochendoerfer et al (1997; Biochemistry 26:6577-6587) demonstrates that local structural perturbations at the PSB or elsewhere are not responsible for spectral tuning. Instead, the green-to-red opsin shift is best explained by dipolar side chains near the chromophore ring that lower the transition energy that occurs upon electronic excitation by affecting the change in electric dipole moment. In summary, the absorption maximum of a visual pigment is primarily regulated by the interaction of the chromophore charge distribution with dipolar residues in its opsin chromophore-binding pocket. The work presented in this paper is reported in greater detail in Lin et al.

Animals↗

Development and distribution of opsin-like immunoreactivity in the dystrophic retinas of rdle mutant mice.

The opsin-like immunoreactivity in the retinas of C57BL/6J rdle mutant mice has been studied by light-microscopic immunocytochemistry. Positively labeled cells were found in the normal heterozygous and homozygous mutant mouse outer nuclear layer (ONL) as early as postnatal day 3 (PN3). Beginning at PN10, in the retinas of the homozygous mutant mice, labeled photoreceptor cells rapidly decreased in number and disappeared after PN42. In the decreased ONL, remaining opsin-positive cells were labeled at higher density than those of controls. The retinal pigment epithelium was also moderately labeled during the loss of opsin-positive photoreceptor cells. In addition, sparse opsin-immunoreactive cells were demonstrated in the inner nuclear layer (INL) in the retinas of both the mutant and non-dystrophic mice as early as PN10 and are presumed to be ectopic photoreceptor cells. However, these displaced photoreceptor cells disappeared by PN28 in mutants along the same time course as those in the ONL but were still present in the PN28 retina of controls and seemed to be more abundant at later adult ages. There was no difference in the developmental regulation of opsin in the heterozygous and normal controls.

Animals↗