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 235 records · Page 13Linked to original sources

Enhancement of opsin activity by all-trans-retinal.

The rod cell photoreceptor apoprotein, opsin, activates the G-protein, transducin, although at a much reduced level than light-activated rhodopsin. The ability of all-trans-retinal to enhance opsin apoprotein activity was investigated using a guanyl nucleotide exchange assay on transducin. All-trans-retinal enhanced opsin activity in a concentration-dependent manner. At high concentrations of all-trans-retinal, the activity of the all-trans-retinal-opsin complex was comparable to that from an equimolar amount of metarhodopsin(II). However, in contrast to metarhodopsin(II), the active all-trans-retinalopsin complex did not require a stable Schiff base linkage between opsin and all-trans-retinal. The lack of a stable Schiff base and differences in activity at high pH imply that opsin and all-trans-retinal form a complex that is distinct from metarhodopsin(II). The ability of all-trans-retinal to stimulate the transduction cascade may be a source of post-bleach noise in photoreceptors.

Animals↗

Tunicamycin-induced dysgenesis of retinal rod outer segment membranes. II. Quantitative freeze-fracture analysis.

Tunicamycin (TM), a selective inhibitor of dolichylphosphate-dependent oligosaccharide biosynthesis, effectively blocks glycosylation, but not synthesis, of opsin, the rod visual pigment apoglycoprotein. In parallel with this inhibition, vesicular membrane material accumulates in the compartment between rod inner and outer segments (the intersegmental space) in TM-treated retinas (Fliesler et al, J Cell Biol 100:574-587, 1985). Freeze-fracture analysis was applied to isolated Xenopus laevis retinas which were incubated in the presence or absence of TM in order to clarify the relationship of those intersegmental membranous structures to others in the rod outer segment (ROS) assembly pathway. The membranes in the intersegmental space display characteristics similar to those of the ROS, but distinct from those of the inner segment. They exhibit densely particulate convex protoplasmic face (PF)-leaflets and relatively particle-free concave exoplasmic face (EF)-leaflets, similar to comparable leaflets of the ROS plasmalemma and nascent (immature) disc membranes. Quantitative analysis further demonstrates that the size distribution and densities of intramembrane particles (IMPs) in PF-leaflets of the intersegmental membranes are indistinguishable from those of ROS membranes, suggesting that both membrane systems contain similar integral proteins (i.e., opsin). Finally, the topology of the intersegmental membranes is most closely related to that of the ROS plasmalemma or nascent disc membranes, suggesting that they arise as a result of aberrant disc morphogenesis, rather than by breakdown of mature discs. Overall, the data support the conclusion that the tubulo-vesicular membranes in the intersegmental space represent newly assembled, opsin-containing material which has been efficiently compartmentalized in preparation for disc morphogenesis, but is incapable of forming normal, topologically closed discs.

Animals↗

Opsin exhibits cGMP-activated single-channel activity.

Low concentrations of cGMP evoked reversible single-channel currents in patches excised from liposomes that contained purified bovine opsin. Two elementary conductances, of 32 and 17 pS, were observed in the presence of 10-200 microM cGMP. Both individual channel openings (mean open times, approximately 1.6 ms for the 32-pS conductance and approximately 1.0 ms for the 17-pS conductance) and bursts of openings (mean burst duration, approximately 2-3 ms for the large events) were observed. The cGMP-activated channel activity could be observed in the presence or absence of Ca2+. These results raise the possibility that opsin or rhodopsin, an opsin/rhodopsin isoform, or an opsin/isoform multimer serves as a cGMP-modulated pore in the rod outer segment.

Animals↗

Constitutive opsin signaling: night blindness or retinal degeneration?

A subset of genetic mutations in photoreceptor-specific genes results in abnormally prolonged activation of transducin-mediated photosignaling in rod cells. In humans and animal models, these mutations cause visual dysfunctions ranging from a mild stationary night blindness to severe, early-onset retinal degeneration. There are mechanistic differences between mutations causing night blindness and those causing retinal degeneration. Here, we hypothesize that mutations causing continuous activation of the visual cascade as the result, for example, of the inability of the photoreceptor to regenerate rhodopsin, lead to retinal degeneration; those mutations that can terminate signaling, even if only partially and intermittently, slow the rate of degeneration sufficiently to give rise to stationary night blindness. Furthermore, we hypothesize that a prolonged decrease in intracellular calcium concentration resulting from persistent activation is responsible for triggering apoptotic rod-cell death.

Animals↗

Photoreceptor and glial markers in human embryonic retina and in human embryonic retinal transplants to rat retina.

The purpose of this study was to compare the development of photoreceptor and glial cells in human embryonic retinal transplants with the development of normal human embryonic retina (13-20 weeks postconception). Human embryonic retinal cells (donor age 6-11 weeks postconception) were transplanted to the retinas of adult immunosuppressed rat hosts. Host animals were killed when the transplants were of 13-37 weeks total age (donor age+survival time after surgery). Immunohistochemistry was performed with antibodies specific for neuron-specific enolase (NSE), synaptophysin (SYN), cone-specific opsins, rhodopsin, rod alpha-transducin, S-antigen, vimentin, cellular retinaldehyde-binding protein (CRALBP) and glial fibrillary acidic protein (GFAP). With regards to photoreceptors, NSE and SYN immunoreactive cones were seen in transplants from 14-16 weeks of age, but cone opsin immunoreactivity was not seen until 25 weeks. Developing graft rods became S-antigen immunoreactive at 17-18 weeks. At 20 weeks, inner segments and some cell somas of graft rods stained faintly for alpha-transducin and rhodopsin. At 31 and 37 weeks, inner and outer rod segments were intensely labelled for the rod-specific antigens. The grafts exhibited areas of varying maturation with different staining intensities. Concerning the glial cells, vimentin immunoreactivity was seen in the earliest transplants studied (total age 14-16 weeks), but only in stages older than 19 weeks was the immunoreactivity of graft Müller cells comparable in intensity to those of the host retina. Host Müller cells were immunoreactive for GFAP near the lesion site at all times. At 20 weeks, some GFAP immunoreactive processes were seen inside the graft, apparently coming from the host retina. At 25 weeks, faintly stained Müller cells intrinsic to the graft were observed, indicating a gliosis within the graft. Graft Müller cells were first seen to express CRALBP immunoreactivity at 19-20 weeks and, at 25 weeks, intense immunoreactivity was seen in the transplant, mostly in regions near the host. In the transplants only the Müller cells were stained, whereas both Müller and retinal pigment epithelium cells were CRALBP immunoreactive in the host retina. The development of human embryonic retinal transplants appears to parallel approximately normal in utero development. Transplant cones, rods and Müller cells all express their cell-specific proteins. The photoreceptors develop both inner and outer segments and contain several essential proteins for processing light. The transplants can reach a degree of maturity comparable to newborn retina.

Animals↗

Relief of opsin desensitization and prolonged excitation of rod photoreceptors by 9-desmethylretinal.

The 9-methyl group of 11-cis-retinal plays a crucial role in photoexcitation of the visual pigment rhodopsin. A hydrogen-substituted analogue, 11-cis-9-desmethylretinal, combines with opsin to form a pigment that produces abnormal photoproducts and diminished activation of the GTP-binding protein transducin in vitro. We have measured the formation of this analogue pigment in bleached salamander rods and determined the size and shape of its quantal response. In addition, we have characterized the influence of opsin and newly formed analogue pigment on the quantal response to native porphyropsin. We find that, as 11-cis-9-desmethylretinal combines with opsin in bleached rods, the amplitude of the quantal response from residual native pigment is elevated by approximately 7.5-fold to 0.15 +/- 0.09 pA, a value close to the amplitude of the quantal response before bleach (0.31 +/- 0.10 pA). When activated by light, the new analogue pigment produces a quantal response that is approximately 30-fold smaller and decays approximately 5 times more slowly than that of native pigment in unbleached cells. We conclude that the 9-methyl group of retinal is not critical for conversion of opsin to its nondesensitizing state but that it is critical for the normal processes of activation and deactivation of metarhodopsin that give rise to the quantal response.

Action Potentials↗

Absence of short-wavelength sensitive cones in the retinae of seals (Carnivora) and African giant rats (Rodentia).

Most non-primate mammals have two types of cone: short-wavelength sensitive (S) and middle-to-long-wavelength sensitive (M/L) cones. In two species of African giant rats, Cricetomys gambianus and C. emini, and in two species of earless seals, Phoca hispida and P. vitulina, the retinal cone types and cone distributions were assessed with antibodies specific for the M/L-cone opsin and the S-cone opsin, respectively. All four species were found to completely lack S-cones, while M/L-cones were present in low densities. M/L-cone densities, rod densities and cone/rod ratios were determined across the retina. Cone proportions are about 0.3-0. 5% in C. gambianus, 0.5-0.8% in C. emini, and 1.5-1.8% in P. hispida. An absence of S-cones has previously been reported in a few nocturnal mammals. As earless seals are visually active during night and day, we conclude that an absence of S-cones is not exclusively associated with nocturnality. The functional and comparative aspects are discussed.

Anatomy, Comparative↗

The uncommon retina of the common house mouse.

Unlike most mammals, most cones in house mouse retina express two opsins, one sensitive to UV-light, and another sensitive to middle-wavelengths. Is the mouse unique, having a single cone type that normally expresses two opsins? Or is the mouse a typical mammal having two cone types, but a species wide mutation results in co-expression of two opsins?

Animals↗

Opsin activation of transduction in the rods of dark-reared Rpe65 knockout mice.

Rpe65 knockout mice (Rpe65-/-) are unable to synthesize the visual pigment chromophore 11-cis retinal; however, if these animals are reared in complete darkness, the rod photoreceptors accumulate a small amount of 9-cis retinal and its corresponding visual pigment isorhodopsin. Suction-electrode recording of single rods from dark-reared Rpe65-/- mice showed that the rods were about 400 times less sensitive than wild-type control rods and that the maximum responses were much smaller in amplitude. Spectral sensitivity measurements indicated that Rpe65-/- rod responses were generated by isorhodopsin rather than rhodopsin. Sensitivity and pigment concentration were compared in the same mice by measuring light responses from rods of one eye and pigment concentration from the retina of the other eye. Retinas had 11-35% of the normal pigment level, but the rods were of the order of 20-30 times less sensitive than could be accounted for by the loss in quantum catch. This extra desensitization must be caused by opsin-dependent activation of the visual cascade, which leads to a state equivalent to light adaptation in the dark-adapted rod. By comparing the sensitivity of dark-reared Rpe65-/- rods to that produced in normal rods by background light, we estimate that Rpe65-/- opsin is of the order of 2.5x10(-5) as efficient in activating transduction as photoactivated rhodopsin (Rh*) in WT mice. Dark-reared Rpe65-/- rods are less desensitized than rods from cyclic light-reared Rpe65-/- mice, have about 50% more photocurrent and degenerate at a slower rate. Retinas sectioned after 9 months in darkness show a larger number of photoreceptor nuclei in dark-reared animals than in cyclic light-reared animals, though both have fewer nuclei than in cyclic light-reared wild-type retinas. Both also have shorter outer segments and a lower free-Ca2+ concentration. These experiments provide the first quantitative measurement of opsin activation in physiologically responding mammalian rods.

Animals↗

Identification and distribution of photoreceptor subtypes in the neotenic tiger salamander retina.

The neotenic tiger salamander retina is a major model system for the study of retinal physiology and circuitry, yet there are unresolved issues regarding the organization of the photoreceptors and the photoreceptor mosaic. The rod and cone subtypes in the salamander retina were identified using a combination of morphological and immunocytochemical markers for specific rod and cone opsin epitopes. Because the visual pigment mechanisms present in the tiger salamander retina are well characterized and the antibodies employed in these studies are specific for particular rod and cone opsin epitopes, we also were able to identify the spectral class of the various rod and cone subtypes. Two classes of rods corresponding to the "red" and "green" rods previously reported in amphibian retinas were identified. In serial semithin section analyses, rods and cones comprised 62.4+/-1.4% and 37.6+/-1.4% of all photoreceptors, respectively. One rod type comprising 98.0+/-0.7% of all rods showed the immunological and morphological characteristics of "red" rods, which are maximally sensitive to middle wavelengths. The second rod subtype comprised 2.0+/-0.7% of all rods and possessed the immunological and morphological characteristics of "green" rods, which are maximally sensitive to short wavelengths. By morphology four cone types were identified, showing three distinct immunological signatures. Most cones (84.8+/-1.5% of all cones), including most large single cones, the accessory and principal members of the double cone, and some small single cones, showed immunolabeling by antisera that recognize long wavelength-sensitive cone opsins. A subpopulation of small single cones (8.4+/-1.7% of all cones) showed immunolabeling for short wavelength-sensitive cone opsin. A separate subpopulation of single cones which included both large and small types (6.8+/-1.4% of all cones) was identified as the UV-Cone population and showed immunolabeling by antibodies that recognize rod opsin epitopes. Analysis of flatmounted retinas yielded similar results. All photoreceptor types appeared to be distributed in all retinal regions. There was no obvious crystalline organization of the various photoreceptor subtypes in the photoreceptor mosaic.

Animals↗

Melanopsin retinal ganglion cells receive bipolar and amacrine cell synapses.

Melanopsin is a novel opsin synthesized in a small subset of retinal ganglion cells. Ganglion cells expressing melanopsin are capable of depolarizing in response to light in the absence of rod or cone input and are thus intrinsically light sensitive. Melanopsin ganglion cells convey information regarding general levels of environmental illumination to the suprachiasmatic nucleus, the intergeniculate leaflet, and the pretectum. Typically, retinal ganglion cells communicate information to central visual structures by receiving input from retinal photoreceptors via bipolar and amacrine cells. Because melanopsin ganglion cells do not require synaptic input to generate light-induced signals, these cells need not receive synapses from other neurons in the retina. In this study, we examined the ultrastructure of melanopsin ganglion cells in the mouse retina to determine the type (if any) of synaptic input these cells receive. Melanopsin immunoreaction product was associated primarily with the plasma membrane of (1) perikarya in the ganglion cell layer, (2) dendritic processes in the inner plexiform layer (IPL), and (3) axons in the optic fiber layer. Melanopsin-immunoreactive dendrites in the inner (ON) region of the IPL were postsynaptic to bipolar and amacrine terminals, whereas melanopsin dendrites stratifying in the outer (OFF) region of the IPL received only amacrine terminals. These observations suggested that rod and/or cone signals may be capable of modifying the intrinsic light response in melanopsin-expressing retinal ganglion cells.

Amacrine Cells↗