PubMed Health⌕ Search

Biomedical subjects

H Quill

Publications and source records attributed to H Quill.

34 records · Page 2Linked to original sources

Influence of allelic polymorphism on the assembly and surface expression of class II MHC (Ia) molecules.

Cell surface Ia expression was examined following transfection of murine alpha and beta class II major histocompatibility complex (MHC) genes into L cells. Although haplotype-matched (e.g., Ak beta Ak alpha) gene pairs yielded high expression in primary transfectants, haplotype-mismatched pairs (e.g., Ak beta Ad alpha) gave unexpectedly low expression. RNA analysis revealed a requirement for greater A beta, and particularly A alpha transcript levels in haplotype-mismatched vs. haplotype-matched transfectants with similar levels of membrane Ia. A beta allelic control of this assembly/expression process was mapped to the NH2-terminal (beta 1) domain, the locus of high intraspecies polymorphism. These data on the effects of allelic variation on Ia levels provide a possible explanation for the strong linkage disequilibrium of A alpha and A beta genes and may account for the current molecular organization of the I region of the MHC.

Alleles↗

Subunit structure of guinea pig Ia.1 antigens.

Since their discovery in 1976, the guinea pig Ia.1 and Ia1,6 antigens were thought to be borne on a single protein species of approximately 26,000 m.w. This report demonstrates that the Ia.1 and Ia.1,6-bearing molecules are typical Ia.1 heterodimeric structures, consisting of acidic alpha-chain and basic beta-chain subunits. The mature Ia.1 and Ia.1,6 alpha-chains have an apparent size of 29,000 m.w., less than the 33,000 m.w. observed for the mature Ia.3,5 alpha-chain. Furthermore, pulse-chase studies and studies with tunicamycin demonstrate that the precursors of the Ia.1,6 alpha- and Ia.3,5 alpha-chains are clearly distinct. On the basis of their association with Ir genes and on their structural features, we conclude that the Ia.1 and Ia.1,6-bearing molecules are similar to other Ia antigens in subunit organization and biochemical properties.

Animals↗

Comparison and partial characterization of guinea pig Ia alpha- and beta-chain oligosaccharides.

The structures of the N-linked oligosaccharides of mature guinea pig Ia molecules were partially characterized by serial lectin affinity analysis. Those Ia antigens that are thought to be allelic products (Ia.3,5 and Ia.4,5) were found to bear identical oligosaccharides, whereas differences in glycopeptide distribution were found for Ia antigens known to be products of separate I subregions (Ia.2 and Ia.4,5). The two predominant oligosaccharides present on alpha-chains from all three Ia molecules were of the high mannnose type and the triantennary or tetraantennary complex type. Two structurally distinct beta-chains were isolated from Ia.3,5 and Ia.4,5 molecules; beta 1 bore primarily triantennary or tetraantennary complex oligosaccharides, and beta 2 had predominantly biantennary complex-type carbohydrate chains. The composition and distribution of the oligosaccharide moieties of guinea pig Ia molecules indicate that there are structural features shared among guinea pig, murine, and human Ia antigens.

Animals↗

Invariant proteins associated with guinea-pig Ia antigens.

Analysis of guinea-pig Ia immunoprecipitates by two-dimensional gel electrophoresis demonstrated the specific association of Ia molecules with several types of invariant proteins. These include a 33,000 mol. wt basic protein homologous to murine invariant chain (Ii), and a set of 34,000-36,000 mol. wt proteins more acidic than Ii (acidic invariant chain). Two 23,000-25,000 mol. wt non-polymorphic proteins with pIs of 6.0 and 6.5 were also observed in association with Ia, as was a basic protein of mol. wt 42,000. Pulse/chase studies using [35S]methionine demonstrated that Ii, but not acidic invariant chain, was associated with newly synthesized Ia molecules. The amount of 35S-Ii decreased greatly throughout the chase period. 35S-acidic invariant chain was clearly present in Ia precipitates by 30 min after Ia synthesis, but was not detected 4 hr after synthesis. Only acidic invariant chain was associated with mature Ia antigens bound by the lectin Ricinus communis I. Our results indicate that guinea-pig invariant proteins are differentially bound by Ia molecules during maturation of Ia alpha- and beta-chains, and suggest that acidic invariant chain could be a processed form of Ii.

Animals↗

Characterization of a 75,000 mol. wt glycoprotein synthesized by guinea-pig T-lymphocytes: a possible homologue of Lyt-1 antigen.

A xenoantiserum raised in rabbits by immunization with strain 13 guinea-pig antigen-activated T-lymphocytes was previously found to recognize a non-immunoglobulin, 75,000 mol. wt glycoprotein synthesized by guinea-pig T-cells. This protein, p75, has been further characterized to determine its biochemical properties and its expression by various cell types. p75 was found to be a single-chain protein which could be bound by the lectin Lens culinaris hemagglutinin. It has an apparent mol. wt slightly greater than mu-chain as assessed by SDS-polyacrylamide gel electrophoresis and could not be precipitated by anti-guinea-pig immunoglobulin reagents. It exhibited considerable charge heterogeneity during isoelectric focusing and was not affected by neuraminidase treatment, p75 was synthesized by thymus, spleen and lymph node cells, by antigen-stimulated T-cells from strain 13 and strain 2 guinea-pigs, and by guinea-pig B-cell L2C leukemia lines, but not by normal B-lymphocytes or macrophages. No differences between the isoelectric focusing patterns of p75 molecules isolated from different cell types could be demonstrated. The chemical properties of p75 and its expression by the cell types so far examined indicate that p75 is a possible candidate for the guinea-pig homologue of the murine Lyt-1 antigen.

Animals↗

Formation of alpha-1,2- and alpha-1,3-linked mannose disaccharides from dolichyl mannosyl phosphate by rat liver membrane enzymes.

Dolichyl mannosyl phosphate and GDPmannose were active substrates for the transfer of mannose to methyl-alpha-D-mannose, p-nitrophenyl-alpha-D-mannose, and free mannose with rat liver microsomal membranes. The products formed during dolichyl mannosyl phosphate incubation with methyl-alpha-D-mannose or with mannose were alpha-linked. The disaccharides formed by incubation of dolichyl mannosyl phosphate or GDPmannose with mannose were identified by paper chromatography and electrophoresis as mannose-alpha-1,2-mannose and mannose-alpha-1,3-mannose. synthesis of each product was dependent on the assay conditions used and was most markedly affected by the presence of detergent. Transfer of mannose from either substrate to form mannose-alpha-1,3-mannose was severely inhibited by Triton X-100.

Animals↗

Formation of alpha-1,2- and alpha-1,3-linked mannose disaccharides from mannosyl retinyl phosphate by rat liver membrane enzymes.

Mannosyl retinyl phosphate (MRP) was an active substrate for the transfer of mannose to methyl-alpha-D-mannose (CH3-alpha-man), p-nitrophenyl-alpha-D-mannose, and free mannose. The products formed during MRP incubation with CH3-alpha-man or with mannose were alpha-linked. The disaccharides formed by incubation of MRP with mannose were identified by paper chromatography and electrophoresis as mannose-alpha-1,2-mannose and mannose-alpha-1,3-mannose. Triton X-100 greatly inhibited mannose-alpha-1,3-mannose synthesis. In the absence of detergent, MnCl2, NiCl2, and ZnCl2 inhibited synthesis of both products. Formation of mannose-alpha-1,3-mannose was more sensitive to preincubation of the enzyme at 40 degrees C then was synthesis of mannose-alpha-1,2-mannose. No differences in membrane mannosyltransferase activity with MRP, compared to DMP, could be demonstrated.

Animals↗

Transfer of mannose from mannosyl retinyl phosphate to protein.

Upon incubation of [14C]mannose-labeled mannosyl retinyl phosphate with a membrane fraction from rat liver, mannose was transferred to an endogenous acceptor precipitable withchloroform/methanol to the extent of about 7%. The reaction proceeded linearly with time for 120 min at a pH optimum of about 7.0. The acceptor thus labeled with mannose could be solubilized by sodium dodecyl sulfate/mercaptoethanol. More than half of this acceptor appeared in the void volume of a Sephadex G-100 column. When it was digested with Pronase, a substantial proportion of it appeared between the void and bed volumes of a Sephadex G-100 column, thus indicating that it was a glycopeptide. In high-voltage paper electrophoresis, this glycopeptide moved to the cathode at low pH and to the anode at highpH. When digested with highly purified jack bean alpha-mannosidase, the glycopeptide released almost 50% of its radioactivity as mannose. That this transfer of mannose to glycoprotein from mannosyl retinyl phosphate does not take place via dolichyl mannosyl phosphate was shown by the fact that it is Mn2+ and Mg2+ independent, it is not inhibited by the presence of a 10-fold molar excess of nonradioactive GDP-mannose, and neither 14C-labeled dolichyl mannosyl phosphate nor 14-C labeled lipid pyrophosphoryl oligosaccharide could be detected during the incubation.

Animals↗

Adenylate and guanylate cyclase activities and cellular differentiation in rat small intestine.

Adenylate and guanylate cyclase activities were measured in rat small intestinal villus and crypt cells to determine possible correlations with cellular differentiation. Isolated intestinal cells were prepared by a method which effectively separates differentiated villus cells from undifferentiated crypt cells (J Biol Chem 248:2542, 1973). Crypt cells were found to have a significantly lower guanylate cyclase activity than villus cells. Adenylate cyclase activity was higher in crypt cells than villus cells, although the difference was less striking than the reverse gradient observed for guanylate cyclase. There was no gradient of activity for cyclic guanosine 3':5'-monophosphate phosphodiesterase. However, cyclic adenosine 3':5'-monophosphate phosphodiesterase activity was lower in villus cells. No villus to crypt gradient of cyclic adenosine 3':5'-monophosphate concentration was detected in mucosa frozen rapidly in liquid nitrogen. The properties and subcellular localization of the cyclases were also evaluated, and of particular interest was the localization of guanylate cyclase to the microvillus membrane and the confirmation of adenylate cyclase activity in the lateral-basal membrane. The villus to crypt gradient of guanylate cyclase suggests that this enzyme has a specialized role in the differentiated villus cell. The contrasting subcellular localization of the cyclases suggests that the cyclases may be interrelated, possibly reflecting the epithelial cell polarity for absorption and secretion.

Adenylyl Cyclases↗

Intestinal villus and crypt cell responses to cholera toxin.

Adenylate cyclase activity was measured in rat small intestinal villus and crypt cells after in vivo and in vitro exposure to cholera toxin. The increase in intestinal adenylate cyclase induced by cholera toxin in vivo appeared to be largely confined to the villus cell with the largest increase observed for upper villus cells. Crypt cell adenylate cyclase was not responsive to cholera toxin. No response could be demonstrated for isolated villus or crypt cells incubated with cholera toxin in vitro. In vivo incubation with 125I-cholera toxin demonstrated binding to only villus cells. These results suggest that the major effect of cholera toxin was on villus cells rather than crypt cells and this was due to the greater accessibility or binding capacity of the villus cell to luminal cholera toxin.

Adenylyl Cyclases↗

Unexpected expression of a unique mixed-isotype class II MHC molecule by transfected L-cells.

Class II (Ia) major histocompatibility complex (MHC) molecules are heterodimeric integral membrane proteins composed of non-covalently linked alpha and beta glycoprotein chains. Studies of both normal cells and L-cell transfectants have shown that neither alpha- nor beta-chains are found on the cell surface alone, and that alpha beta dimers are required for membrane expression. In both mouse and man, several distinct non-allelic alpha and beta genes exist. Analysis of Ia molecules by immunoprecipitation and two-dimensional gel electrophoresis has demonstrated apparently selective association of particular pairs of the various alpha- and beta-chains to form the expressed class II isotypes I-A and I-E (mouse) or DQ, DP and DR (human). Because the various alpha- or beta-chains encoded by distinct loci exist in many allelic forms within a species, such specific pairing suggests a special role for isotypically conserved regions of each chain in the association process. In attempting to localize such putative assembly-controlling regions using the technique of DNA-mediated gene transfer, various combinations of murine alpha and beta genes were introduced into L-cells. Here we report the unexpected observation, following transfection, of mixed-isotype (Ad beta Ea/k alpha) molecules on the L-cell membrane and document that the formation of this pair is strongly influenced by allelic polymorphism of the A beta chain.

Amino Acid Sequence↗