Preparation of retinal rod outer segments.
Explore the source record for details and available documents.
SEARCH · Search PubMed
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.
Explore the source record for details and available documents.
Rhodopsin kinase was purified to near homogeneity by affinity binding to light-exposed rod cell outer segment membranes, followed by DEAE-cellulose and hydroxyapatite chromatography. This resulted in a 1055-fold purification of highly active rhodopsin kinase with an overall recovery of 19%. Rhodopsin kinase is a single polypeptide chain with Mr = 67,000-70,000 as determined by gel filtration and SDS-PAGE. The kinetic parameters of the enzyme for freshly bleached rhodopsin are Km = 4 microM and Vmax = 700 nmol/min/mg whereas for ATP Km = 2 microM (which is a low value for kinases generally, and about 20 times lower than comparable measurements for a kinase of a similar type, the beta-adrenergic-receptor kinase (Benovic, J.L., Mayor, F. Jr., Staniszewski, C., Lefkowitz, R.J., and Caron, M.G. (1987) J. Biol. Chem. 262, 9026-9032). GTP, on the other hand, is a very poor substrate (Km = 1 mM, Vmax = 10 nmol/min/mg). Rhodopsin kinase is competitively inhibited by adenosine and its mono- and diphosphate derivatives, but not by most other adenosine derivatives. Based upon measurements with 28 nucleotide derivatives, the ATP-binding site of rhodopsin kinase appears to have more specific requirements than that for other kinases. Compounds such as cGMP, inositol trisphosphate, and others that change concentration during exposure of rod cells to light have only minor inhibitory effects on the kinase activity, with the exception of inositol monophosphate, which can activate the kinase about 20% at 50-100 microM. Rhodopsin kinase has been difficult to store with retention of activity, but can be successfully stored frozen at -20 degrees C in 20% adonitol.
Rhodopsin is the G protein-coupled receptor that upon light activation triggers the visual transduction cascade. Rod cell outer segment disc membranes were isolated from dark-adapted frog retinas and were extracted with Tween detergents to obtain two-dimensional rhodopsin crystals for electron crystallography. When Tween 80 was used, tubular structures with a p2 lattice (a = 32 A, b = 83 A, gamma = 91 degrees) were formed. The use of a Tween 80/Tween 20 mixture favored the formation of larger p22(1)2(1) lattices (a = 40 A, b = 146 A, gamma = 90 degrees). Micrographs from frozen hydrated frog rhodopsin crystals were processed, and projection structures to 7-A resolution for the p22(1)2(1) form and to 6-A resolution for the p2 form were calculated. The maps of frog rhodopsin in both crystal forms are very similar to the 9-A map obtained previously for bovine rhodopsin and show that the arrangement of the helices is the same. In a tentative topographic model, helices 4, 6, and 7 are nearly perpendicular to the plane of the membrane. In the higher-resolution projection maps of frog rhodopsin, helix 5 looks more tilted than it appeared previously. The quality of the two frog rhodopsin crystals suggests that they would be suitable to obtain a three-dimensional structure in which all helices would be resolved.
Phagocytosis of shed photoreceptor rod outer segments (ROS) by the retinal pigment epithelium (RPE) is essential for retinal function. Here, we demonstrate that this process requires alpha(v)beta5 integrin, rather than alpha(v)beta3 integrin utilized by systemic macrophages. Although adult rat RPE expressed both alpha(v)beta3 and alpha(v)beta5 integrins, only alpha(v)beta3 was expressed at birth, when the retina is immature and phagocytosis is absent. Expression of alpha(v)beta5 was first detected in RPE at PN7 and reached adult levels at PN11, just before onset of phagocytic activity. Interestingly, alpha(v)beta5 localized in vivo to the apical plasma membrane, facing the photoreceptors, and to intracellular vesicles, whereas alpha(v)beta3 was expressed basolaterally. Using quantitative fluorimaging to assess in vitro uptake of fluorescent particles by human (ARPE-19) and rat (RPE-J) cell lines, alpha(v)beta5 function-blocking antibodies were shown to reduce phagocytosis by drastically decreasing (85%) binding of ROS but not of latex beads. In agreement with a role for alpha(v)beta5 in phagocytosis, immunofluorescence experiments demonstrated codistribution of alpha(v)beta5 integrin with internalized ROS. Control experiments showed that blocking alpha(v)beta3 function with antibodies did not inhibit ROS phagocytosis and that alpha(v)beta3 did not colocalize with phagocytosed ROS. Taken together, our results indicate that the RPE requires the integrin receptor alpha(v)beta5 specifically for the binding of ROS and that phagocytosis involves internalization of a ROS-alpha(v)beta5 complex. Alpha(v)beta5 integrin does not participate in phagocytosis by other phagocytic cells and is the first of the RPE receptors involved in ROS phagocytosis that may be specific for this process.
PURPOSE: To investigate the presence and role of a recently cloned cysteine protease (cathepsin S) in the digestion of rod outer segments (ROS) by cultured retinal pigment epithelial (RPE) cells. METHODS: RPE cell cultures were established from eye bank donor eyes. Total RNA was extracted from freshly harvested cultures, and after reverse transcription, the cDNA was subjected to polymerase chain reaction (PCR). Cathepsin S (Cat S) mRNA translation was inhibited by antisense oligonucleotides, and the effect of inhibition on the accumulation of fluorescent debris was examined. The activity of cysteine and aspartic proteases in ROS-challenged RPE cell cultures was inhibited by leupeptin and pepstatin, respectively. The accumulation of autofluorescent debris within RPE cells was measured by a fluorophotometric flow cytometer. The presence of phagosomes in antisense DNA-inhibited and control cultures was demonstrated by electron microscopy. RESULTS: The expression of Cat S in RPE cells was demonstrated by RNA-PCR. Using antisense oligonucleotide-mediated-specific inhibition of Cat S, a significant ROS-derived increase in autofluorescence was detected within the RPE cells when they were compared with the unchallenged control cultures and cultures in the presence of ROS and sense oligonucleotides. Electron microscopy demonstrated the presence of a large number of phagosomes that enveloped structures similar to ROS. The accumulation of autofluorescent debris was also demonstrated in cysteine protease-inhibited, ROS-challenged RPE cultures, but it was not detected with aspartic protease inhibition. CONCLUSIONS: The expression of Cat S in RPE cells and the accumulation of an autofluorescent debris in cultures in which cysteine proteases or Cat S activity is inhibited suggest a key role for this enzyme, either in the ROS digestion process or in the activation of cathepsin D, the major lysosomal enzyme present in RPE cells.
In the previous article the authors reported that the ingestion phase of phagocytosis is defective in cultured dystrophic rat pigment epithelial (PE) cells. When these cells are challenged with isolated rod outer segments (ROS), attachment of ROS to the PE cell surfaces occurs to a normal extent. However, only a small number of these bound ROS are subsequently ingested. This raised the possibility that the contractile protein actin might not function normally in the dystrophic rat PE cells, since actin is intimately involved in the ingestion mechanism in other phagocytic cells. Utilizing actin antibodies and the technique of indirect immunofluorescence, we have studied the distribution of actin in cultured normal and dystrophic rat PE cells. Results show that the arrangement of actin fibers in the dystrophic cells appears normal both before and during the attachment of ROS to the cell surfaces. With the additional use of an ROS antiserum to label externally bound ROS, it is also possible to show that actin is involved with the ingestion of ROS by both normal and dystrophic PE cells. Thus, it appears that actin can function normally in dystrophic PE cells, but that the ingestion mechanism becomes activated at only a few sites of ROS attachment. The results of a scanning electron microscope study support this conclusion and also show the presence of a saucer-shaped elaboration of the PE cell plasma membrane beneath attached ROS. These may correspond to the actin feltworks seen with immunofluorescence microscopy at sites of ROS attachment.
Using novel methodology, this study describes the kinetics of rod outer segment (ROS) phagocytosis and digestion by human retinal pigment epithelial (RPE) cells in vitro and examines the effect of certain lysosomal enzyme inhibitors on ROS digestion in these cells. Human RPE cells displayed saturation of phagocytosis with respect to both ROS concentration and time. While surface-binding and ingestion phases of ROS phagocytosis saturated after 24-36 h, the rate of ROS digestion reached a maximal level within 24 h. Increasing the concentration of zinc in the culture medium from 1.9 to 100 microM had no significant effect on ROS digestion. The effects of swainsonine (an alpha-mannosidase inhibitor), pepstatin (an aspartic protease inhibitor), and leupeptin (a cysteine protease inhibitor) were also examined. At 6 h, ROS digestion was reduced 27.3 +/- 15.3% by swainsonine, 69.4 +/- 20.9% by pepstatin, and 77.0 +/- 14.4% by leupeptin. The effect of these inhibitors declined with increasing time. This study is the first to demonstrate the functional importance of cysteine and aspartic proteases in the digestion of ROS by RPE cells in vitro.
Retinal pigment epithelium plasma membranes have been isolated by differential and density gradient centrifugation of glass-bead-bound, collagenase-treated cells. Electron microscopic evidence indicates that the glass-bead-bound cells were devoid of red blood cells, rod outer segments and other ocular cell contaminants. The plasma membranes were recovered in 4-6 micrograms/eye yields and purified 10-fold by 5'-nucleotidase and alkaline phosphodiesterase I, and 6.5-fold by (Na+ + K+)-ATPase. Plasma membrane purity as measured by covalent labeling of the epithelial cell plasma membrane proteins with p-(diazonium) benzene[32S]sulfonic acid was 8-19-fold. In purified plasma membranes contamination by mitochondria was undetectable and lysosomal contamination reduced 100-fold, while endoplasmic reticulum was 2-fold enriched. SDS-polyacrylamide gel electrophoresis of the plasma membrane proteins revealed 23-26 major bands by Coomassie blue staining and 12-16 major bands by radioactive labeling. The plasma membranes exhibited a 3-fold lower concentration of docosahexaenoic acid, a 3-fold higher cholesterol/phosphate ratio, and were 10-fold enriched in cholesterol per micrograms protein when compared to the whole cell fraction. Retinal epithelial plasma membranes contain an average of 1 mol cholesterol per mol of lipid phosphorus, a high palmitic acid concentration (39 mol%) and a low concentration of docosahexaenoic acid (2 mol%). The lipid profile of the retinal pigment epithelial plasma membranes indicates that they are typical of plasma membranes from many other cell types and that they appear to be less fluid than total rod outer segment membranes.
PURPOSE: Recovery of photoreceptor cells after light damage is thought to involve the physiologic process of disk renewal. However, only indirect evidence is available to support this hypothesis. The present study sought to examine more directly the mechanisms of photoreceptor cell recovery by quantitatively assessing the rate of rod outer segment (ROS) disk synthesis in retinas damaged by ultraviolet-A (UVA) light. METHODS: Pigmented rats were anesthetized, and their right eyes were exposed for 1 hour to a uniform field of UVA light at a dose of 6 J/cm2. Animals were returned to their dim cyclic light environment and were allowed to recover for various time points up to 42 days, at which time their eyes were enucleated for histologic examination and quantification of outer nuclear layer (ONL) thickness. Seven days before the 6- and 21-day time points, some animals were intravitreally injected with 3H-leucine in both eyes, and these eyes were used to analyze autoradiographically the rate of ROS disk synthesis. RESULTS: ROS disk synthesis in UVA-exposed eyes was 43% slower relative to nonexposed controls in the more severely damaged superior retina at postexposure day 6. Ultrastructural observations revealed a sharp demarcation between damaged and recovered ROS disks at this time. At postexposure day 21, there was a marked recovery in outer segment structure despite a further decrease in ONL thickness and a continued slow rate of disk synthesis. In the less severely damaged inferior region of the retina, the rate of disk synthesis was not altered by UVA exposure, although mild ROS disruption was evident at the earlier time points. CONCLUSIONS: These findings indicate that the rate of ROS disk synthesis is slowed in moderately damaged photoreceptor cells even though they eventually fully recover in structure. A slow-down of this rate after UVA exposure may be an adaptive change geared toward recovery mechanisms, or it may simply be a manifestation of cellular damage.
A new procedure for assaying the phagocytosis of rod outer segments (ROS) by cultured rat pigment epithelial (PE) cells has been developed. Using an ROS antiserum and a double immunofluorescent labeling procedure, ROS attached to the external surfaces of these cells can be distinguished from those that have already been ingested. We have used this procedure to study the phagocytosis of ROS by PE cells isolated from normal rats and rats with inherited retinal dystrophy (RCS rats). With this approach we have been able to show that the attachment of ROS to the external surfaces of dystrophic PE cells does take place to a normal extent. However, only a small number of these bound ROS are subsequently ingested, demonstrating that the ingestion phase of phagocytosis is defective. After a 4-hr incubation during which ROS are continuously present, normal rat PE cells ingest about 80% of the ROS that have bound to the cell surfaces. In contrast, after this time period, less than 20% of the ROS bound to the dystrophic PE cells have been ingested. These results, as well as the results of pulse-chase experiments in which ROS are rinsed away after two hours and the incubation continued without further addition of ROS, have demonstrated that normal PE cells rapidly ingest most of the bound ROS, whereas the dystrophic PE cells show no such rapid ingestion. Both cell types, however, are able to slowly ingest additional bound ROS with time.
The glycerolipid and fatty acid compositions of frog retinal pigment epithelium (RPE) were determined and compared with rod outer segments (ROS), retina, plasma, and red blood cells (RBC). The glycerolipid class composition of RPE was similar to RBC and ROS or retina, with phosphatidylcholine and phosphatidylethanolamine being the major components. The fatty acid composition of RPE differed substantially from that of plasma or RBC; the former contained much higher levels of C-20 and C-22 polyunsaturated fatty acids (PUFAs), such as 20:4n-6 and 22:6n-3, but less C-18 mono-, dienoic, and trienoic acids. The difference between RPE and ROS or retina with respect to fatty acid profile was also dramatic; RPE had relatively less 22:6n-3, but more 20:4n-6 and 18:2n-6, than ROS or retina. These results suggest that frog RPE cells may selectively take up C-20 and C-22 PUFAs from the circulation, but preferentially deliver 22:6n-3 to the ROS and retina. Fatty acid analyses show that 20:4n-6 and 22:6n-3 were unevenly distributed among RPE glycerolipids; phosphatidic acid, diglyceride, triglyceride, and phosphatidylserine are relatively more enriched in 22:6n-3 compared with 20:4n-6. This information might imply that these two PUFAs are metabolized differently inside the frog RPE cells.
Retinal pigment epithelial (RPE) cells selectively phagocytize rod outer segments (ROS) by a process which may be mediated by specific cell surface receptors. We have studied the kinetics of this process using rat RPE cells grown in tissue culture. By cooling RPE cells to 17 degrees C, the binding and ingestion phases of phagocytosis can be separated. Maximum ROS binding with minimum ingestion occurs at 17 degrees C; above 17 degrees C the rate of ingestion increases markedly. Thus it is possible to measure the kinetics of ROS binding to RPE cells at 17 degrees C and of ROS ingestion at 37 degrees C. At 17 degrees C, ROS binding is saturable, both with respect to time and to ROS concentration. ROS ingestion saturates after 4 hr of incubation at 37 degrees C, after which the cells are refractory to further ROS ingestion for 1-2 hr. During this recovery period, rapid digestion of the internalized ROS takes place. Cycloheximide, when present at a concentration (2 x 10(-5) M) which inhibits protein synthesis by 92%, has no effect on ROS phagocytosis or on the recovery of ROS ingestion at 37 degrees C. This suggests that if receptors mediate the ingestion of ROS by RPE cells, they are not degraded after the ROS are internalized. Dystrophic rat (RCS-p+) RPE cells exhibit normal binding, but very limited ingestion of ROS at 37 degrees C. The rate and amount of ROS binding to these cells at 37 degrees C is comparable with that occurring to normal cells at 17 degrees C. These observations support the hypothesis that there are a limited number of receptors which are specific for ROS binding on the surface of normal and dystrophic rat RPE cells.
PURPOSE: To examine whether the vitronectin (VN) in serum is responsible for the serum stimulation of phagocytosis in the rod outer segment (ROS) by cultured retinal pigment epithelial (RPE) cells. METHODS: Vitronectin was removed from fetal bovine serum by heparin-agarose affinity chromatography. Concentrations in normal and depleted serum were determined by enzyme-linked immunosorbent assay, using a polyclonal antibody against bovine VN and commercially prepared human VN as a standard. A monoclonal antibody against human alpha v beta 5 was used in localization and in blocking experiments. Rod outer segment phagocytosis was measured using a flow cytometric assay. RESULTS: Affinity chromatography removed 95% of the VN from serum as determined by enzyme-linked immunosorbent assay. Vitronectin-depleted serum did not stimulate ROS phagocytosis by RPE cells. Commercially prepared VN added to serum-free medium stimulated ROS phagocytosis in a dose-dependent manner. Pretreatment of RPE cells with an antibody against alpha v beta 5, an integrin receptor for VN, had no effect on phagocytosis in the absence of serum but completely blocked the serum stimulation of ROS phagocytosis. Antibody against alpha v beta 5 demonstrated a variable labeling pattern on the cultured RPE cell surface with morphologically distinct cell clusters exhibiting less labeling. Those cell clusters exhibiting less receptor labeling also showed less uptake of fluorescent-labeled ROS. CONCLUSIONS: Vitronectin is the component responsible for serum stimulation of ROS uptake, and this uptake appears to be mediated by an alpha v beta 5 integrin. Although clearly important in vitro, a role for VN in ROS uptake by RPE cells in situ remains to be determined.
BACKGROUND: We set out to evaluate the growth potential of human iris pigment epithelial (hIPE) cells in vitro, to establish whether these cells acquire the ability to phagocytose rod outer segments (ROS) and to compare the phagocytic activity of hIPE to that of human retinal pigment epithelial (hRPE) cells. METHODS: hIPE and hRPE cells were isolated and cultured from human donor eyes and surgical specimens and growth characteristics were analyzed. HIPE and hRPE of an eye of a 46-year-old donor were used for the phagocytosis assay. Phagocytosis was evaluated by adding ROS isolated from porcine retina to cultures of hIPE and hRPE, which had been labeled with the pH-sensitive fluorescent dye, carboxy-SNAFL. After 4 h the number of ingested ROS was counted with a light microscope. For each cell type phagosomes in 500 cells were counted. The epithelial characteristics of the cells used in this study were evidenced by their morphology. RESULTS: Morphologically cultured hIPE are indistinguishable from the hRPE cultured from the same donor eye and show a similar pattern of cytokeratin distribution. Cultured hIPE acquire the ability to phagocytose ROS at a level slightly lower than hRPE; hIPE contained 0.76 phagosomes per cell, hRPE 0.99 phagosomes per cell. CONCLUSION: The morphology of hIPE in culture and the acquisition of the phagocytic phenotype indicate that these cells have the ability to differentiate into cells that have characteristics in common with hRPE. The acquisition of phagocytic activity suggests that it is feasible to culture hIPE from surgical iridectomies and that these cultured cells can be transplanted into the subretinal space in individuals with retinal degenerations.
The accumulation of autofluorescent lipofuscin was quantified in cultured human retinal pigment epithelial (RPE) cells phagocytosing bovine rod outer segments (BROS) and the expression of proteins in these cells was investigated. Results showed a steady increase in autofluorescence of RPE cells over a 4-week period as measured by fluorophotometric flow cytometry. A significantly greater increase in autofluorescence was found in the cultured RPE cells from a 7-year-old donor compared with those from a 47-year-old donor. Within both groups the BROS-challenged cells had significantly higher fluorescence readings than the control cells which were not challenged. Autoradiography of 35S-labelled proteins separated by polyacrylamide gel electrophoresis (PAGE) revealed a small distinct band at 102 kDa in BROS-challenged RPE cells of both bovine and human origin that did not appear in control or microsphere-phagocytosing RPE cells. The intensity of the signal was unrelated to the duration of the challenge period.
Royal College of Surgeons (RCS) rats exhibit an hereditary defect in phagocytosis of the tips of the photoreceptor cell rod outer segments (ROS) which leads to degeneration of the retinal visual cells. The lipid composition of outer segment membranes of these rats was analysed and compared to those of normal rats to determine whether there are differences between the normal and mutant rat ROS. The cholesterol distribution in ROS disk membranes from normal and RCS rats was investigated using a digitonin induced change in membrane density. Normal rat ROS disks varied in cholesterol to phospholipid mole ratio from 0.36 to 0.03. The disk membranes from RCS rats, however, do not exhibit the same marked cholesterol heterogeneity. The mean molar ratio of cholesterol to phospholipid in the disk membranes of normal rats is 0.11 while that found in the RCS rats is 0.14. The ROS plasma membrane of dystrophic rats also has a lower cholesterol to phospholipid ratio (0.20) than is found in the normal rat (0.40). The phospholipid headgroup composition of RCS disks and plasma membrane were determined. RCS disks were shown to differ from those of normal animals. The cholesterol content of ROS disks may be governed by the phospholipid composition.
The role of carbohydrates in mediating the interaction of rhodopsin-containing membranes with retinal pigment epithelium (RPE) cells was investigated by studying the influence of various monosaccharides on their binding by RPE cells of the embryonic chick maintained in cell culture. Rod outer-segment (ROS) disc membranes were selected as a model rhodopsin-containing membrane system for these studies in view of their high concentration of rhodopsin and the relative purity with which they can be isolated. Disc membranes, frozen and thawed in order to expose the carbohydrate groups of rhodopsin which are oriented intraluminally in situ, were incubated with monolayers of RPE cells under various conditions, and the binding of the membranes by the cells was quantitated by radioimmunoassay for rhodopsin. Cell-membrane association was also verified by indirect immunofluorescence microscopy. The surface accessibility of the sugars in frozen-thawed discs was verified by succinyl concanavalin A-binding studies. From 15- to 20-fold increase in carbohydrate-reactive sites was obtained after freezing and thawing the discs. The RPE cell-membrane binding process was saturable, and time- and temperature-dependent. By means of competition studies carried out in the presence of high concentrations of various monosaccharides, and also by comparing the binding of disc membranes whose carbohydrate groups were either exposed (frozen-thawed) on the surface or inaccessible (native), it was concluded that the carbohydrates of rhodopsin, mannose and N-acetylglucosamine, were not involved in the interaction with the RPE. The possibility was also examined that enzymatically galactosylated rhodopsin might serve as a site for recognition by the RPE cell. The binding of ROS disc membranes modified in this manner was not enhanced, indicating that the presence of galactose groups on rhodopsin did not serve as a site for recognition by the RPE. The influence of monosaccharides on the binding of intact ROS by the RPE cells was also investigated. Similar to the results with the disc membranes, the process was not blocked by the presence in the incubation medium of high concentrations (up to 30,000-fold higher than that of rhodopsin) of mannose or GlcNAc, as with the disc membranes, or by glucose or galactose. Thus, from these studies it is concluded that a lectin-like carbohydrate-recognition process may not be involved in the interaction between rhodopsin-containing membranes and the RPE cells.
Photoreceptor cells contain rod outer segments (ROS) which are specialized light-sensitive organelles. The biological function of ROS is to generate a photoresponse, which occurs via the classic transducin-mediated pathway. Moreover, ROS undergo light-regulated membrane turnover and protein translocation whose mechanisms have not been fully elucidated to date. Phospholipase D (PLD) is a key enzyme involved in lipid signal transduction and membrane trafficking. We have previously reported that PLD activity is present in purified ROS (Salvador, G.A., Giusto, N.M., 1998. Characterization of phospholipase D activity in bovine photoreceptor membranes. Lipids 33, 853-860). We now demonstrate that ROS PLD activity is enhanced by phosphatidylinositol bisphosphate (PIP2) and cytosolic factors in a GTP dependent-manner. Western blot analysis demonstrates the presence of PLD1 isoform in purified ROS. In ROS obtained from dark-adapted retinas (DROS), PIP2-dependent PLD activity was higher than that observed in ROS obtained from light-adapted retinas (LROS). In addition, experiments carried out in the presence of C3 toxin inhibited PLD activity from DROS whereas pertussis toxin did not affect the enzyme activity. Western blot analysis demonstrates the presence of RhoA, a PLD upstream-regulator. Moreover, RhoA levels were higher in DROS with respect to those in LROS. The present study reports evidence of the involvement of the small G-protein, RhoA, in ROS PLD regulation. Our data strongly suggest that RhoA regulates ROS PLD activity under a light-dependent mechanism.