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C D Bridges

Publications and source records attributed to C D Bridges.

At least 19 recordsLinked to original sources

Expression pattern of the type 1 sigma receptor in the brain and identity of critical anionic amino acid residues in the ligand-binding domain of the receptor.

The type 1 sigma receptor (sigmaR1) has been shown to participate in a variety of functions in the central nervous system. To identify the specific regions of the brain that are involved in sigmaR1 function, we analyzed the expression pattern of the receptor mRNA in the mouse brain by in situ hybridization. SigmaR1 mRNA was detectable primarily in the cerebral cortex, hippocampus, and Purkinje cells of cerebellum. To identify the critical anionic amino acid residues in the ligand-binding domain of sigmaR1, we employed two different approaches: chemical modification of anionic amino acid residues and site-directed mutagenesis. Chemical modification of anionic amino acids in sigmaR1 with 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide reduced the ligand-binding activity markedly. Since it is known that a splice variant of this receptor which lacks exon 3 does not have the ability to bind sigma ligands, the ligand-binding domain with its critical anionic amino acid residues is likely to be present in or around the region coded by exon 3. Therefore, each of the anionic amino acids in this region was mutated individually and the influence of each mutation on ligand binding was assessed. These studies have identified two anionic amino acids, D126 and E172, that are obligatory for ligand binding. Even though the ligand-binding function was abolished by these two mutations, the expression of these mutants was normal at the protein level. These results show that sigmaR1 is expressed at high levels in specific areas of the brain that are involved in memory, emotion and motor functions. The results also provide important information on the chemical nature of the ligand-binding site of sigmaR1 that may be of use in the design of sigmaR1-specific ligands with potential for modulation of sigmaR1-related brain functions.

Amino Acid Motifs↗

Interleukin-10 reduces morbidity and mortality in murine multiple organ dysfunction syndrome (MODS).

HYPOTHESIS: IL-10 will reduce morbidity and mortality in murine MODS. Introduction. Intraperitoneal (ip) zymosan causes a triphasic inflammatory process leading to MODS. Phase I is an acute systemic inflammatory response to sterile peritonitis. Phase II is the recovery phase. Phase III is characterized by recurrent illness, progressive organ dysfunction, and elevated proinflammatory cytokines. METHODS: Male ICR mice were randomized (on Experiment Day 0, time = 0 h) into four initial groups (A-D): Control Group A received no zymosan and no IL-10. Group B received zymosan (1 mg/g mouse BW, t = 0) and no IL-10. Group C received no zymosan and IL-10 at t = 2 h. Group D received zymosan and IL-10 at t = 2 h. On Experiment Day 4, mice in Groups B-D were randomized into six further treatment groups (B1 and B2, C1 and C2, D1 and D2). Group B1 received no treatment. Group B2 received IL-10 when clinical signs of recurrent illness developed (Phase III, 12-18 days after zymosan treatment). Mice were sacrificed when they were preterminal (clinical signs of shaking, shivering, or paralysis) or on Experiment Day 28 (survivors). Plasma total bilirubin and creatinine levels were measures of organ function. Terminal pulmonary compliance was measured in situ through a physiologic range of tidal volumes. RESULTS: Mice entering Phase III consistently progressed to MODS characterized by elevated bilirubin and hemorrhagic lungs which, if left untreated, was lethal. Mice treated with IL-10 (Group B2) when they entered Phase III had lower mortality (28.6% vs 100%, P < 0.02), longer survival (25 vs 18 days, P < 0.05), and improved lung pulmonary compliance (slope beta1 = 0.082 ml/mm Hg vs 0.059 ml/mm Hg, P < 0.001) compared to untreated (Group B1) mice in Phase III. CONCLUSIONS: IL-10 improves survival even when given after clinical signs of illness are present.

Animals↗

Characterization and comparative structural features of the gene for human interstitial retinol-binding protein.

We have cloned the gene for human interstitial retinol-binding protein (IRBP) and compared its nucleotide sequence with that of the corresponding cloned cDNA. The human IRBP gene is approximately 9.5 kilobase pairs (kbp) in length and consists of four exons separated by three introns. The introns are 1.6-1.9 kbp long. The gene is transcribed by photoreceptor and retinoblastoma cells into an approximately 4.3-kilobase mRNA that is translated and processed into a glycosylated protein of 135,000 Da. The amino acid sequence of human IRBP can be divided into four contiguous homology domains with 33-38% identity, suggesting a series of gene duplication events. In the gene, the boundaries of these domains are not defined by exon-intron junctions, as might have been expected. The first three homology domains and part of the fourth are all encoded by the first large exon, which is 3,180 base pairs long. The remainder of the fourth domain is encoded in the last three exons, which are 191, 143, and approximately 740 base pairs long, respectively. This unusual structure is shared with the bovine IRBP gene. A large (1.7 kbp) fragment appears to have been lost from the 3'-noncoding region of the last human exon. We conclude that the human and bovine genes have similar evolutionary histories.

Amino Acid Sequence↗

Analysis of genes coding for S-antigen, interstitial retinol binding protein, and the alpha-subunit of cone transducin in patients with retinitis pigmentosa.

We screened 526 unrelated patients with autosomal dominant, autosomal recessive, or simplex retinitis pigmentosa for evidence of mutations of the genes encoding S-antigen (S-Ag), interstitial retinol binding protein (IRBP), and the alpha-subunit of cone-specific transducin. Restriction fragment length polymorphisms (RFLPs) were identified at each of these loci. Within each set of patients with a particular genetic type of retinitis pigmentosa, RFLP alleles at each of these loci showed no departure from Hardy-Weinberg equilibrium. No gene deletions or rearrangements could be detected in any patient. Furthermore, in each of six pedigrees (one autosomal dominant, one autosomal recessive, three Usher's syndrome type I, and one Laurence-Moon-Bardet-Biedl syndrome) there was no co-segregation of the disease with alleles determined by RFLPs at the locus for S-antigen. At the IRBP locus, lack of co-segregation was seen in one autosomal dominant, two autosomal recessive, and three Usher's syndrome type I pedigrees. Finally, one pedigree with autosomal recessive retinitis pigmentosa showed no co-segregation of the disease with alleles at the locus for the alpha-subunit of the cone-specific transducin. These data support the idea that the genes coding for S-Ag, IRBP, and the alpha-subunit of the cone-specific transducin do not play an etiologic role in the families with retinitis pigmentosa so far studied.

Alleles↗

Retinoids bound to interstitial retinol-binding protein during light and dark-adaptation.

High-performance liquid chromatography was used to determine the types and amounts of retinoids bound to interstitial retinol-binding protein (IRBP) during light- and dark-adaptation in frogs. IRBP was separated from CRBP and CRA1BP by ion-exchange chromatography and quantitated by determining the amount of Serva Blue R dye bound to it in stained sodium dodecyl sulfate polyacrylamide gels. The amount of IRBP was not significantly different in light- and dark-adapted eyes (0.15 +/- 0.05 nmol/eye compared with 0.18 +/- 0.08 nmol/eye). In the dark-adapted state, IRBP bound mainly 11-cis retinol and 11-cis retinal in quantities that summed to about 1 mol/mol IRBP. After the onset of light-adaptation, all-trans retinol increased from its very low dark-adapted level, peaked at 0.2 mol/mol IRBP and then declined to the dark-adapted level again. Concomitantly, the total retinoid bound to IRBP fell, mainly because there was a drop in the amount of 11-cis retinal. During dark-adaptation, the amount of 11-cis retinal increased. No significant changes were seen in the amount of 11-cis retinol in light and darkness. These findings support the hypothesis that when rhodopsin is bleached IRBP transports all-trans retinol from the retina to the pigment epithelium and that it delivers 11-cis retinal to the rod outer segments for rhodopsin regeneration.

Animals↗

Distribution of retinol isomerase in vertebrate eyes and its emergence during retinal development.

Ocular tissue homogenates were incubated in darkness with [11,12-3H] all-trans retinol. Formation of radiolabeled 11-cis retinol was used as an index of isomerase activity and was determined by high-performance liquid chromatography. Isomerase was found in the eyes of cattle, human, rat, chicken, turtle, goldfish and frog, representing the mammals, birds, reptiles, bony fishes and amphibians. The enzyme was concentrated in the pigment epithelium (RPE). Variable activity was found in the retina, where the amount of radiolabeled 11-cis retinol formed under standard incubation conditions at protein concentrations of 0.03-1.08 mg/ml was 6.4 +/- 6.0% of that in the RPE-choroid. Using the same methodology, we could not detect isomerase in the retinas of three cephalopods (Octopus, Sepia and Loligo). In rats, isomerase was present at postnatal day 10 but not at postnatal days 0 and 4. Therefore, the expression in the RPE of retinol isomerase, which is essential for the formation of rhodopsin in the developing photoreceptors, is coordinated with the emergence of the rod outer segment in the retina. However, the continued expression of this enzyme in RCS rats does not depend on the presence of photoreceptors, because loss of photoreceptors was not associated with an absence of isomerase activity in RCS rats. Our findings suggest that a reciprocal flow of retinoids between the retina and the site of isomerase action in the RPE is a feature common to the visual cycle in all vertebrates.

Animals↗

Internal quadruplication in the structure of human interstitial retinol-binding protein deduced from its cloned cDNA.

Interstitial retinol-binding protein (IRBP) is a glycoprotein that shuttles retinoids between the retina and pigment epithelium and is secreted by the photoreceptor cells of the vertebrate eye. Human retina cDNA libraries in lambda gt10 were screened with a previously isolated human IRBP probe (H.4 IRBP), yielding five overlapping cDNA clones generating a 4223-base sequence. A 17-kilobase pair clone (HGL.3) isolated by screening a human genomic library in EMBL3 with H.4 IRBP yielded a 2.5-kilobase pair SstI fragment that overlapped the 5' end of the cDNA sequence by 329 nucleotide residues. An open reading frame encoded the N-terminal sequence of human IRBP and predicted a protein consisting of 1262 amino acids with a molecular mass of 136,600. Two putative N-linked glycosylation sites were identified. The translated sequence suggests that there is a 16-amino acid presumptive signal peptide rich in hydrophobic residues and with a high alpha-helix probability preceding the N terminus of the mature protein. The amino acid sequence of human IRBP could be aligned with 87% identity with the amino acid sequences of 31 peptides (605 residues) purified from a tryptic digest of bovine IRBP. The protein sequence of human IRBP contains four duplicated segments (302-310 residues in length) with 33-38% identity. From the degree of identity between the bovine and human sequences, it is possible that IRBP evolved by several gene duplications that occurred 600-800 million years ago, before the emergence of the vertebrates.

Amino Acid Sequence↗

Retinoid-binding proteins in retinoblastoma tumors.

A combination of Western blot, Northern blot, and radiolabeled ligand-binding techniques was used to investigate retinoid-binding proteins in retinoblastoma (RB) cells from fresh tumors and from 19 RB tumor lines cultured in vitro. Using rabbit anti-bovine cellular retinal-binding protein (CRA1BP) antibodies, no CRA1BP could be detected. As determined by [3H]retinol binding, cellular retinol-binding protein was sometimes not detectable but averaged 2.3 +/- 2.7 means +/- SD, n = 7) pmol [3H]retinol bound/mg protein, similar to adult retina cytosol. Using [3H]retinoic acid as ligand, cellular retinoic acid-binding protein was not detectable in some lines and averaged 1.0 +/- 1.2 (means +/- SD, n = 7) pmol [3H]retinoic acid bound/mg protein, well below the adult retina cytosol level of 94.4 +/- 16.3 (means +/- SD, n = 4) pmol [3H]retinoic acid bound/mg. Using rabbit antibovine interstitial retinol-binding protein (IRBP) antibodies, IRBP of the same molecular mass as human IRBP (135,000) was detected in the medium from all cultured RB cells and averaged 75.9 +/- 19.2 pmol/10(8) cells (bovine IRBP immunochemical equivalents). Cytosol levels were less than 1% of the medium. Using a human IRBP complementary DNA probe, levels of IRBP RNA transcripts in 19 RB cell lines were comparable to adult retina. The Y-79 RB cell line was different from the others; the amount of IRBP in the medium was only about 1% of the RB cell lines. Levels of cellular retinol-binding protein were comparable with the other lines, but cellular retinoic acid-binding protein was 9 times more abundant. IRBP RNA transcripts in Y-79 cells were below the limits of detectability but appeared at low levels after induction of differentiation of Y-79 by 10(-6) M retinoic acid. Although this cell line has been in culture longer than the others, it may also have been initiated at an earlier stage of retinal development.

Carrier Proteins↗

IRBP-like proteins in the eyes of six cephalopod species--immunochemical relationship to vertebrate interstitial retinol-binding protein (IRBP) and cephalopod retinal-binding protein.

SDS polyacrylamide gel electrophoresis and immunoblotting were used to examine soluble proteins from the eyes of six species of cephalopods i.e. Lolliguncula brevis, Sepia officinalis, Octopus maya, Octopus bimaculoides, Rossia pacifica and Loligo opalescens. All species had a protein ("IRBP") with molecular weight virtually identical with vertebrate interstitial retinol-binding protein (IRBP) averaging 132,400 +/- 700 (n = 6). "IRBP" reacted on nitrocellulose blot transfers with rabbit antibovine IRBP and rabbit antifrog IRBP antibodies. Unlike vertebrate IRBP, cephalopod "IRBP" (from L. brevis) did not bind exogenous retinol or concanavalin A. The N-terminal amino acid appeared to be blocked in samples electroeluted from SDS gels. The antifrog IRBP antibodies also reacted with a series of proteins with molecular weights between 46,000 and 47,000, identified as retinal-binding protein (RALBP) with anti-RALBP antibodies. Anti-IRBP also reacted with pure RALBP prepared from Todarodes pacificus. Occasionally, anti-RALBP antibodies were seen to react weakly with "IRBP" in some cephalopods. We conclude that RALBP, cephalopod "IRBP" and vertebrate IRBP share a common but distant ancestry, and that a protein resembling IRBP appeared before the vertebrates diverged from the invertebrates. Both RALBP and IRBP appear to have analogous functions in shuttling retinoids between rhodopsin and the corresponding isomerizing system, retinochrome in the cephalopods and retinol isomerase in the vertebrates. The function of cephalopod "IRBP" is unknown.

Amino Acids↗

The visual cycle operates via an isomerase acting on all-trans retinol in the pigment epithelium.

Thirty years have elapsed since Wald and his colleagues showed that 11-cis retinal was isomerized to all-trans when rhodopsin was bleached, yet little has been understood about the reverse process that generates 11-cis retinal for rhodopsin regeneration. It is not known whether the isomerization is enzyme-mediated, whether it occurs in the pigment epithelium or in the retina, or whether retinal, retinol, or a retinyl ester is the vitamin A compound that is isomerized. Radiolabeled all-trans retinol and high-performance liquid chromatography have now been used to demonstrate the existence of an eye-specific, membrane-bound enzyme (retinol isomerase) that converts all-trans to 11-cis retinol in the dark. Retinol isomerase is concentrated in the pigment epithelium; this localization clarifies the role of this tissue in rhodopsin regeneration and explains the need to transfer all-trans retinol from the rod outer segments to the pigment epithelium during the visual cycle.

Animals↗