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R G Spiro

Publications and source records attributed to R G Spiro.

At least 109 records · Page 6Linked to original sources

Structure of a carbohydrate moiety of a unit A glycopeptide of calf thyroglobulin.

The structure of the carbohydrate moiety of a unit A glycopeptide of calf thyroglobulin was studied by glycosidase digestion, acetolysis, and methylation analysis. Based on the results, the whole structure of a unit A glycopeptide with the largest carbohydrate moiety was determined as Man alpha 1 leads to 2Man alpha 1 leads to 6(Man alpha 1 leads to 2Man alpha 1 leads to 3)Man alpha 1 leads to 6(Man alpha 1 leads to 2Man alpha 1 leads to 2Man alpha 1 leads to 3)Man beta 1 leads to 4GlcNAc beta 1 leads to 4GlcNAc leads to Asn-peptide.

Amino Acids↗

Lipid-saccharide intermediates in glycoprotein biosynthesis. I. Formation of an oligosaccharide-lipid by thyroid slices and evaluation of its role in protein glycosylation.

Thyroid slices were found to incorporate radioactivity from 14C-labeled sugars into the carbohydrate moiety of a polar lipid soluble in chloroform/methanol/water, 10/10/3. This radiolabeled glycolipid was purified by chromatography on DEAE-cellulose and was shown to have as its monosaccharide constituents mannose, glucose, and glucosamine. This compound cloud also be labeled by incubation of thyroid slices with [3H]mevalonic acid or [32P]phosphate as demonstrated by the coincidence of elution profiles upon DEAE-cellulose chromatography. This suggested that the lipid portion of the molecule is a polyprenol derivative and the lipid-saccharide linkage region involves a phosphate bridge. Mild acid hydrolysis of the glycolipid labeled with 14C in its carbohydrate released a neutral oligosaccharide which on the basis of Bio-Gel filtration studies was shown to have a molecular weight of approximately 2,400. This oligosaccharide contained [14C]mannose and [14C]glucose in about the same ratio as that occurring in the intact glycolipid. The oligosaccharide-lipid appeared to be distributed rather widely in thyroid particulate fractions obtained after differential and density gradient centrifugation. Its highest specific activity occurred in fractions rich in endoplasmic reticulum. By means of pulse-chase experiments in slices a relationship was demonstrated between the disappearance of radioactivity from the lipid-bound oligosaccharide and its appearance in protein-bound form. When protein synthesis was inhibited by the addition of puromycin during the chase period of the experiment transfer of oligosaccharide from the lipid to protein appeared to be blocked and the level of radiolabeled oligosaccharide-lipid increased. The observation that mannose and glucose were similarly affected during the pulse-chase studies suggests that transfer of the intact oligosaccharide unit was involved in the addition of carbohydrate to protein.

Animals↗

Lipid-saccharide intermediates in glycoprotein biosynthesis. II. Studies on the structure of an oligosaccharide-lipid from thyroid.

Structural studies have been performed on an oligosaccharide-lipid from thyroid believed to be an intermediate in glycoprotein synthesis. For these investigations the compound was isolated from the gland in unlabeled form as well as differentially radiolabeled in its saccharide, lipid, and phosphate portions by incubation of slices with [14C]- or [3H]glucose, [3H]mevalonic acid and [32P]phosphate, respectively. The unlabeled oligosaccharide-lipid was obtained in a chloroform/methanol/water (10/10/3) extract in a yield of about 1 nmol/g of thyroid and was purified therefrom by DEAE-cellulose chromatography. The saccharide moiety released from the glycolipid by mild acid hydrolysis was isolated by gel filtration and contained 11 mannose, 1 to 2 glucose, and 2 N-acetylglucosamine residues. The reducing terminal position of the oligosaccharide was occupied by 1 of the glucosamine residues and from these analyses a molecular weight of 2,415 was calculated. That glucose is an integral part of the molecule was further demonstrated by the finding that during Dowex 50 chromatography it remained as a constituent of the positively charged oligosaccharide produced by deacetylation with alkaline borohydride at 80 degrees. The phosphorus content of the purified unlabeled oligosaccharide-lipid was determined to be 2 residues per molecule, suggesting the presence of a pyrophosphate bridge between its carbohydrate and lipid portions. Further evidence for such a linkage region was provided by characterization of the products from mild acid and alkaline hydrolysis of the differentially radiolabeled glycolipid. These included dolichyl mono- and pyrophosphate, oligosaccharide phosphate, and free oligosaccharide. Digestion with alpha-mannosidase of the radiolabeled glycolipid led to the release of 39% of its mannose while from the free oligosaccharide 53% of this sugar was removed. Acetolysis of the [14C]oligosaccharide yielded a mannobiose and mannotriose as well as larger fragments consisting of mannose, glucose, and glucosamine. Smith periodate degradation gave rise to a small core segment (6 glycose residues) made up only of mannose and glucosamine from which half of the mannose residues could be released by alpha-mannosidase digestion. From these studies a tentative structure for the carbohydrate moiety of the oligosaccharide-lipid has been proposed. In this formulation an inner core (periodate-resistant) made up of 4 mannose and 2 N-acetylglucosamine residues is attached to the pyrophosphate group by the most internal glucosamine. This core, as well as an additional mannose and 1 to 2 glucose residues, constitutes the alpha-mannosidase-resistant fragment. More peripherally are found other mannose residues, all in alpha-linkage. In this structural scheme the glucose is located so as to prevent the enzymatic release of more internally situated alpha-linked mannose residues.

Acetylglucosamine↗

Lipid-saccharide intermediates in glycoprotein biosynthesis. III. Comparison of oligosaccharide-lipids formed by slices from several tissues.

The synthesis of oligosaccharide-lipids thought to play a role in the attachment of carbohydrate to protein has been studied in incubations of slices from calf kidney, pancreas, thymus, and liver, as well as from hen oviduct. These compounds were characterized after radiolabeling of their saccharide moiety by incubation with [14C]glucose or [14C]mannose and a comparison was made with the oligosaccharide-lipid produced by thyroid slices. Furthermore, the unlabeled glycolipid was prepared from hen oviduct for the purpose of quantitating its sugar constituents. Purification of the oligosaccharide-lipids extracted with chloroform/methanol/water (10/10/3) was achieved by DEAE-cellulose chromatography and their carbohydrate moieties were released by mild acid hydrolysis. On the basis of gel filtration it was determined that the lipid-bound oligosaccharides formed by oviduct, thymus, kidney, and liver had molecular weights comparable to that from thyroid (about 2400). The saccharide moiety of the glycolipid from pancreas was however distinctly smaller in size with a molecular weight of approximately 1800. Analyses of the radiolabeled oligosaccharide-lipids from oviduct, kidney, and thymus indicated that they, like the compound from thyroid slices, but unlike those believed to be formed by cell-free systems from various tissues, contained glucose in addition to mannose and N-acetylglucosamine as their monosaccharide constituents. This compositional data was supported by the finding that the unlabeled oligosaccharide from oviduct consists of 10 mannose, 1 glucose, and 2 N-acetylglucosamine residues. Sodium borohydride reduction of this oviduct saccharide moiety indicated that 1 of the 2 glucosamines was situated in a reducing terminal position. The radiolabeled oligosaccharide from the glycolipid produced by pancreas differed from the others analyzed in that it contained only trace amounts of glucose. Upon treatment with alpha-mannosidase this glucose-deficient pancreatic oligosaccharide was extensively digested (85% of the mannose released). In contrast, the carbohydrate moieties of oviduct, kidney, and thymus, like that of thyroid, underwent a more limited digestion with the alpha-mannosidase (55% or less of the mannose released) suggesting that the presence of glucose may serve to block a more complete degradation of these oligosaccharides by this enzyme.

Acetylglucosamine↗

Studies on the subunit composition of the renal glomerular basement membrane.

The bovine glomerular basement membrane in its S-carboxymethylated form has been fractionated into a large number of polypeptide components ranging from 25,800 to 205,000 in apparent molecular weight by performing polyacrylamide gel electrophoresis in sodium dodecyl sulfate on fractions obtained by DEAE- and CM-cellulose chromatography. While only 20 electrophoretic bands were recognized in the unfractionated S-carboxymethylated membrane the DEAE-cellulose column fractions yielded 43 distinct polypeptide components and an additional 15 were obtained from the CM-cellulose chromatography. Analyses of the purified subunits indicated pronounced compositional diversity even in polypeptide components of the same molecular weight. Great differences in the content of the amino acids characteristic of collagen, namely, hydroxyproline, hydroxylysine, and glycine were evident and these three amino acids varied in a parallel manner. In contrast a reciprocal relationship between the number of lysine and hydroxylysine residues was observed so that the sum of these two remained fairly constant. While the collagen-like polypeptide components had a relatively low content of S-carboxymethylcysteine, tyrosine, aspartic acid, and heteropolysaccharides the more polar subunits were enriched in there constituents. These results are consistent with a structural model for the membrane in which the peptide chains vary greatly in the proportion of helical segments and polar regions which they contain. It is likely that the subunit polydispersity is nor primarily a biosynthetic function, but is due to limited in vivo proteolysis.

Amino Acids↗

Search for a biochemical basis of diabetic microangiopathy.

Diabetic microangiopathy, particularly as seen in the renal glomerulus, is characterized by morphological and biochemical alterations of the capillary basement membrane. Observations from a number of disciplines have indicated that the microvascular disease is not a separately inherited entity but a true consequence or "complication" of insulin deficiency. An evaluation of the biochemical events which could be responsible for the basement membrane lesions of diabetes indicates that the hyperglycemia or plasma somatotropin elevation of this disease alone, or in combination, may play an important role.

Animals↗

Glycoprotein biosynthesis: studies on thyroid mannosyltransferases. II. Characterization of a polyisoprenyl mannosyl phosphate and evaluation of its intermediary role in the glycosylation of exogenous acceptors.

The transfer of mannose from GDP-mannonse to exogenous glycopeptides and simple glycosides has been shown to be carried out by calf thyroid particles (Adamany, A. M., and Spiro, R. G. (1975) J. Biol. Chem. 250, 2830-2841). The present investigation indicates that this mannosylation process is accomplished through two sequential enzymatic reactions. The first involves the transfer of mannose from the sugar nucleotide to an endogenous acceptor to form a compound which has the properties of dolichyl mannosyl phosphate, while in the properties of dolichyl mannosyl phosphate, while in the second reaction this mannolipid serves as the glycosyl donor to exogenous acceptors. The particle-bound enzyme which catalyzed the first reaction utilized GDP-mannose (Km = 0.29 microM) as the most effective mannosyl donor, required a divalent cation, preferably manganese or calcium, and acted optimally at pH 6.3. Mannolipid synthesis was reversed by addition of GDP and a ready exchange of the mannose moiety was observed between [14C]mannolipid and unlabeled GDP-mannose. Exogenously supplied dolichyl phosphate, and to a lesser extent ficaprenyl phosphate, served as acceptors for the transfer reaction. The 14C-labeled endogenous lipid had the same chromatographic behavior as synthetic dolichyl mannosyl phosphate and enzymatically mannosylated dolichyl phosphate. The mannose component in the endogenous lipid was not susceptible to reduction with sodium borohydride and was released by mild acid hydrolysis. Alkaline treatment of the mannolipid released a phosphorylated mannose with properties consistent with that of mannose 2-phosphate. The formation of this compound which can arise from a cyclic 1,2-phosphate indicated, on the basis of steric considerations, that the mannose is present in beta linkage to the phosphate of the lipid. An intermediate role of the mannolipid in the glycosylation of exogenous acceptors was suggested by the observation that addition of dolichyl phosphate to thyroid particles resulted in a marked enhancement of mannose transfer from GDP-mannose to methyl-alpha-D-mannopyranoside acceptor while the presence of the glycoside caused a decrease in the mannolipid level. The glycosyl donor function of the polyisoprenyl mannosyl phosphate in the second reaction of the mannosylation sequence could be directly demonstrated by the transfer of [14C]mannose from purified endogenous mannolipid to either methyl-alpha-D-mannoside or dinitrophenyl unit A glycopeptides by thyroid enzyme in the presence of Triton X-100. The mannosylation of the glycoside was not inhibited by EDTA whereas the transfer of mannose to glycopeptide was cation-dependent. While dolichyl [14C]mannosyl phosphate, prepared from exogenous dolichyl phosphate, served as a donor of mannose to exogenous acceptor, this function could not be fulfilled by ficaprenyl [14C]mannosyl phosphate. The two-step reaction sequence carried out by thyroid enzymes which leads to the formation of an alpha-D-manno-pyranosyl-D-mannose linkage in exogenous acceptors by transfer of mannose from GDP-mannose through a beta-linked intermediate appears to involve a double inversion of anomeric configuration of this sugar.

Animals↗

Glycoprotein biosynthesis: studies on thyroid mannosyltransferases. I. Action on glycopeptides and simple glycosides.

A particulate fraction from calf thyroid catalyzes the transfer of mannose from GDP-mannose to exogenous glycopeptides and methyl or aryl glycosides to form alpha-D-mannopyranosyl-D-mannose sequences. The transfer to the simple glycosides required a single nonreducing mannose residue linked to a lipophilic aglycone. Thus p-nitrophenyl-, 4-methylumbelliferyl-, phenyl- and methyl-alpha-D-mannopyranosides were effective acceptors while free mannose and glycosides of several other sugars were totally inactive. The Km value for methyl-alpha-D-mannopyranoside was 2.6 mM. Specificity for the anomeric configuration of the acceptor was glycosylated to the extent of 50% of the alpha anomer and mutual inhibition between these two acceptors was observed. Acetolysis or mild acid hydrolysis of the 14C-labeled products from the glycoside acceptors yielded the disaccharide, 2-O-alpha-D-mannopyranosyl-D-mannose, which represents the predominant linkage between mannose residues in the carbohydrate unit A of thyroglobulin. Glycopeptides with mannose sequences served as acceptors for the transfer reaction but only after dinitrophenylation of their peptide portion. The unit A glycopeptides of thyroglobulin with 10 mannose residues (Km equals 0.89 mM) were much better acceptors than glycopeptides containing the core portion of unit B which contains only three mannose components. Reduction in size of unit A glycopeptide acceptors by timed alpha-mannosidase treatment resulted in a progressive decrease in activity. Peptide-free unit A was inactive even after it was modified to carry dinitrophenyl groups on its glucosamine residues. GDP-mannose was the most effective glycosyl donor, with a Km value of 1.4 muM for methyl-alpha-D-mannopyranoside and 0.30 muM for dinitrophenyl unit A glycopeptides, although ADP- and UDP-mannose could substitute to the extent of 40 to 45%. The mannose transfer to the glycopeptides had a optimum of 6.3 while that to the simple glycopeptides was best at pH 7.0. Both types of transfer reactions required a divalent cation with manganese serving most effectively in that capacity. Mannoslytransferase activity for both groups of acceptors was found predominantly in particulate subcellular fractions. A number of aromatic compounds and reagents which are disruptive of membrane integrity caused loss of enzyme activity presumably by interfering with the function of the lipophilic substituents on the various acceptors.

Animals↗

Glycoproteins.

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Amino Acid Sequence↗