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N L Shaper

Publications and source records attributed to N L Shaper.

At least 37 records · Page 2Linked to original sources

Immunocytochemical localization of beta 1,4 galactosyltransferase in epithelial cells from bovine tissues using monoclonal antibodies.

Post-embedding immunocytochemistry was employed to investigate the distribution of UDP-galactose:N-acetylglucosamine galactosyltransferase (beta 1,4-GT) in epithelial cells from various bovine organs. Several well characterized monoclonal antibodies previously demonstrated to recognize distinct polypeptide epitopes within the primary structure of beta 1,4-GT were applied to thin sections from tissues embedded in Lowicryl K4M, followed by the protein A-gold technique. Immunoreactivity was observed in the Golgi apparatus of epithelial cells from intestine, thymus and trachea. No immunoreactivity was observed in other intracellular structures, including rough endoplasmic reticulum, nuclear envelope and goblet cell mucus droplets. Within the Golgi apparatus, the staining was restricted to several cisternae in the trans region, with most portions of the trans-Golgi network appearing unlabelled. However, in thymic epithelial-reticular cells trans-Golgi network portions resembling classical GERL elements were stained by the antibodies. Thus, although immunoreactivity was subcompartmentalized within the Golgi apparatus in all epithelial cell types examined, the extent of staining within the trans-Golgi network was variable. Immunoreactivity was not detected at the plasma membrane (ecto-galactosyl-transferase), except in the case of a subpopulation of tracheal cells that resemble brush cells. These results suggest that in the epithelial cells examined, the subcompartmental distribution of beta 1,4-GT within the Golgi apparatus is maintained across different types of epithelial cell organization. Moreover, no evidence for a general epithelial cell ecto-galactosyltransferase could be discerned with these reagents.

Animals↗

Evidence that rodent epididymal sperm contain the Mr approximately 94,000 glucocorticoid receptor but lack the Mr approximately 90,000 heat shock protein.

Monoclonal antibodies directed against four different polypeptide epitopes on the Mr approximately 94,000 steroid-binding subunit of the rat liver cytosolic glucocorticoid receptor (GcR) were used to probe Western blots of epididymal spermatozoa from rats and mice. Two sperm polypeptides with apparent molecular weights of 94,000 (indistinguishable in size from the liver GcR subunit) and 150,000 reacted with these antibodies. Other polypeptides that are present in a wide variety of somatic cells [lamin-A, -B, and -C; topoisomerase-I; poly(ADP-ribose) polymerase; the 62-kilodalton internal nuclear matrix protein; the nucleolar protein B23; and histone H1] could not be detected in these preparations of spermatozoa, thus appearing to rule out contamination by somatic cells. Rat and mouse pachytene spermatocytes and round spermatids contained much lower amounts of the Mr approximately 94,000 and 150,000 polypeptides. These results suggested that the steroid-binding subunit of the GcR might be accumulated late in spermatogenesis. Consistent with this view, a 6-kilobase mRNA (identical in size to a mRNA detected in mouse somatic cell lines) was detected when Northern blots of mouse round spermatid RNA were probed with a cDNA to the steroid-binding GcR subunit. Although the results described above suggest the presence of GcR in rodent sperm, high affinity binding of glucocorticoids to epididymal sperm could not be detected in a whole cell binding assay. Further analysis revealed that the Mr approximately 90,000 heat shock protein (hsp90), a component reportedly required for high affinity ligand binding to the GcR, was present in early germ cells, but absent from rodent epididymal sperm. These results suggest that the Mr approximately 94,000 steroid-binding subunit of the GcR and an immunologically related Mr approximately 150,000 polypeptide are specifically accumulated during the later stages of rodent spermatogenesis, but are not assembled into receptor complexes capable of binding steroid. In addition, these results support the view that hsp90 is required for high affinity binding of glucocorticoids to the Mr approximately 94,000 GcR subunit in intact cells.

Adrenalectomy↗

Characterization of an alpha 1----3-galactosyltransferase homologue on human chromosome 12 that is organized as a processed pseudogene.

UDP-Gal:Gal beta 1----4GlcNAc alpha 1----3-galactosyltransferase is a terminal glycosyltransferase that is widely expressed in a variety of mammalian species, with the notable exception of man, apes, and Old World monkeys. We recently reported the isolation of a bovine cDNA clone that contains the complete coding sequence for this enzyme (Joziasse, D. H., Shaper, J. H., Van den Eijnden, D. H., Van Tunen, A. J., and Shaper, N. L. (1989) J. Biol. Chem. 264, 14290-14297). Using this cDNA as a probe, we have demonstrated that, although transcripts cannot be detected in a variety of established human cell lines by Northern blot analysis, homologous sequences are present in human genomic DNA. To establish that these sequences represent a human homologue of alpha 1----3-galactosyltransferase, we have used the bovine cDNA as a probe to isolate two nonoverlapping clones (HGT-2 and HGT-10) from a human genomic DNA library. Clone HGT-2 contains a 1.5-kilobase uninterrupted linear sequence similar to bovine alpha 1----3-galactosyltransferase that is organized as a processed pseudogene. This sequence, flanked by Alu type repeats, contains a short 5'- and 3'-untranslated region and a complete recognizable coding region that is 81% similar at the nucleotide level to bovine alpha 1----3-galactosyltransferase. This putative coding region contains multiple frameshift mutations and nonsense codons in all three reading frames which precludes the synthesis of a functional enzyme. Nevertheless, after optimal alignment, translation predicts a polypeptide that is 68% similar at the amino acid level to the bovine enzyme. Based on Southern analysis and limited sequence analysis, clone HGT-10 contains coding sequences similar to the NH2-terminal region of bovine alpha 1----3-galactosyltransferase. By analysis of panels of human-rodent somatic cell hybrids we have established that the nonfunctional, processed pseudogene and the human homologue represented by HGT-10 are located on human chromosomes 12 and 9, respectively. Interestingly, a comparison of the predicted amino acid sequence of the carboxyl-terminal two-thirds of human alpha 1----3-galactosyltransferase, with the corresponding region of the human blood group A, UDP-GalNAc:[Fuc alpha 1----2]Gal beta 1----4GlcNAc alpha 1----3-GalNAc-transferase (Yamamoto, F., Marken, J., Tsuji, T., White, T., Clausen, H., and Hakomori, S. (1990a) J. Biol. Chem. 265, 1146-1151), reveals a significant similarity (39%) suggesting that these two enzymes may have arisen from the same ancestral gene as a result of gene duplication and subsequent divergence.

Amino Acid Sequence↗

T cell activation in the absence of interleukin 2 (IL 2) results in the induction of high-affinity IL 2 receptor unable to transmit a proliferative signal.

Although interleukin 2 (IL 2) clearly up-regulates the expression of the p55 chain of the IL 2 receptor (IL 2R) little is known about its role in the induction of the high-affinity IL 2R. Resting T lymphocytes were induced to express IL 2R under experimental conditions in which IL 2 production was not induced or was prevented. Under these conditions high- and low-affinity IL 2R were easily demonstrated by Scatchard analysis. Northern blot analysis confirmed the accumulation of p55 specific mRNA and the absence of the IL 2 transcript. High-affinity IL 2R induced in the complete absence of IL 2 were unable to transmit a proliferative response unless exposed to extremely high concentrations of IL 2. The addition of picomolar amounts of recombinant IL 2 or the initiation of endogenous IL 2 production during the induction period restored the functionality of high-affinity IL 2R. Also, T cells induced to generate IL 2 displayed functional high-affinity IL 2R even in the presence of monoclonal antibodies blocking extracellular IL 2 and IL 2R. These results indicate that the presence of IL 2 during the early phase of T cell activation is an absolute requirement for the induction of fully operational high-affinity IL 2R and that low amounts of intracellular IL 2 are sufficient to confer functional properties to these receptors. The data also suggest that an intracellular as well as an extracellular high-affinity structure, expressed as a consequence of cell activation, is responsible for conferring competence to the high-affinity IL 2R involved in IL 2-dependent proliferation.

Animals↗

Alpha 1----3-galactosyltransferase: the use of recombinant enzyme for the synthesis of alpha-galactosylated glycoconjugates.

We have reported the isolation and characterization of a bovine cDNA clone containing the complete coding sequence for UDP-Gal:Gal beta 1----4GlcNAc alpha 1----3-galactosyltransferase [Joziasse, D. H., Shaper, J. H., Van den Eijnden, D. H., Van Tunen, A. J. & Shaper, N. L. (1989) J. Biol. Chem. 264, 14290-14297]. Insertion of this cDNA clone into the genome of Autographa californica nuclear polyhedrosis virus (AcNPV) and subsequent infection of Spodoptera frugiperda (Sf9) insect cells with recombinant virus, resulted in high-level expression of enzymatically active alpha 1----3-galactosyltransferase. The expressed enzyme accounted for about 2% of the cellular protein; the corresponding specific enzyme activity was 1000-fold higher than observed in calf thymus, the tissue with the highest specific enzyme activity reported to date. The recombinant alpha 1----3-galactosyltransferase could be readily detergent-solubilized and subsequently purified by affinity chromatography on UDP-hexanolamine-Sepharose. The recombinant alpha 1----3-galactosyltransferase showed the expected preference for the acceptor substrate N-acetyllactosamine (Gal beta 1----4GlcNAc), and demonstrated enzyme kinetics identical to those previously reported for affinity-purified calf thymus alpha 1----3-galactosyltransferase [Blanken, W. M. & Van den Eijnden, D. H. (1985) J. Biol. Chem. 260, 12927-12934]. In pilot studies, the recombinant enzyme was examined for the ability to synthesize alpha 1----3-galactosylated oligosaccharides, glycolipids and glycoproteins. By a combination of 1H-NMR, methylation analysis, HPLC, and exoglycosidase digestion it was established that, for each of the model compounds, the product of galactose transfer had the anticipated terminal structure, Gal alpha 1----3Gal beta 1----4-R. Our results demonstrate that catalysis by recombinant alpha 1----3-galactosyltransferase can be used to obtain preparative quantities of various alpha 1----3-galactosylated glycoconjugates. Therefore, enzymatic synthesis using the recombinant enzyme is an effective alternative to the chemical synthesis of these biologically relevant compounds.

Animals↗

Bovine beta 1----4-galactosyltransferase: two sets of mRNA transcripts encode two forms of the protein with different amino-terminal domains. In vitro translation experiments demonstrate that both the short and the long forms of the enzyme are type II membrane-bound glycoproteins.

We have used S1 and primer extension analysis to demonstrate that the gene for bovine beta 1----4-galactosyltransferase specifies two sets of mRNA transcripts of different lengths. The longer mRNA transcripts initiate upstream of two in-frame ATG codons and encode a protein of 402 amino acids (long form). The shorter mRNA transcripts initiate between the two in-frame ATG codons and encode a protein of 389 amino acids (short form). These two related forms of beta 1----4-galactosyltransferase have an identical large (358 amino acids), potentially glycosylated, COOH-terminal catalytic domain, and an identical single transmembrane domain. The only difference in primary structure between the two forms is that the long form contains an NH2-terminal extension of 13 amino acids. Thus, bovine beta 1----4-galactosyltransferase fits the pattern established for murine beta 1----4-galactosyltransferase (Shaper, N. L., Hollis, G. L., Douglas, J. G., Kirsch, I. R., and Shaper, J. H. (1988) J. Biol. Chem. 263, 10420-10428). Inspection of the NH2-terminal domain suggests that the long form of the bovine enzyme, like its murine counterpart, has a functional cleavable signal sequence which would dictate that the two forms of the membrane-bound enzyme are oriented in opposite directions. We have tested this hypothesis by in vitro translation in the absence or presence of dog pancreas microsomes. In vitro translation of RNA transcripts for the long and short form of beta 1----4-galactosyltransferase in the absence of microsomes results in the synthesis of polypeptides with apparent Mr of 44,500 and 43,000, respectively. In vitro translation of each transcript in the presence of microsomes results in the synthesis of two glycosylated, endoglycosidase H-sensitive proteins with apparent Mr of 47,500 and 46,000. These experiments and additional protease protection experiments demonstrate that the COOH-terminal domain of both the short and the long form of bovine beta 1----4-galactosyltransferase are translocated into the microsomal lumen. By extrapolation, both forms of the enzyme are oriented in vivo as Type II membrane-bound glycoproteins.

Amino Acid Sequence↗

Murine beta 1,4-galactosyltransferase: both the amounts and structure of the mRNA are regulated during spermatogenesis.

Previously we have shown that the gene encoding murine beta 1,4-galactosyltransferase (beta 1,4-GT; UDPgalactose:N-acetyl-D-glucosaminyl-glycopeptide 4-beta-D-galactosyltransferase, EC 2.4.1.38) is unusual in that it specifies two sets of mRNAs of about 3.9 and 4.1 kilobases (kb). Translation of the 3.9- and 4.1-kb mRNAs results in the predicted synthesis of two related membrane-bound forms of the protein of 386 amino acids (short form) and 399 amino acids (long form), respectively. In this study we have examined the expression of beta 1,4-GT during murine spermatogenesis. Spermatogonia contain a 4.1-kb transcript that is comparable in size to the beta 1,4-GT mRNA identified in somatic cells. During differentiation from spermatogonia (2n) to pachytene spermatocytes (4n), the amount of beta 1,4-GT mRNA is reduced to barely detectable levels. Continued differentiation to round spermatids (n) is coincident with a renewed production of beta 1,4-GT mRNA to levels comparable with those detected in spermatogonia. However, the characteristic 4.1-kb mRNA detected in spermatogonia is replaced by two truncated transcripts of 2.9 and 3.1 kb. By S1 nuclease analysis, the 2.9- and 3.1-kb transcripts were shown to encode the same open reading frame as the 4.1-kb transcript found in somatic cells. The shorter round spermatid transcripts arise as a consequence of the use of alternative poly(A) signals. Lastly, we show that, in direct contrast to all somatic tissues and cell lines examined to date, male germ cells synthesize only the long form of the beta 1,4-GT polypeptide.

Animals↗

Bovine alpha 1----3-galactosyltransferase: isolation and characterization of a cDNA clone. Identification of homologous sequences in human genomic DNA.

We have isolated, by immunological screening of a lambda gt11 expression library, a cDNA clone that represents the complete coding sequence for bovine alpha 1----3-galactosyltransferase. The coding sequence predicts a membrane-bound protein with three distinct structural features: a large, potentially glycosylated COOH-terminal domain (346 amino acids), a single transmembrane domain (16 amino acids), and a short NH2-terminal domain (6 amino acids). Thus, the domain structure for this transferase is similar to that deduced for beta 1----4-galactosyltransferase (Shaper, N. L., Hollis, G. F., Douglas, J. G., Kirsch, I. R., and Shaper, J. H. (1988) J. Biol. Chem. 263, 10420-10428) and alpha 2----6-sialyltransferase (Weinstein, J., Lee, E. V., McEntee, K., Lai, P.-H., and Paulson, J. C. (1987) J. Biol. Chem. 262, 17735-17743). S1 analysis demonstrates that two sets of mRNAs, which are heterogeneous at their 5' ends, are transcribed. Because both sets initiate upstream of the translational start site, only one protein is encoded by this gene. alpha 1----3-Galactosyltransferase is widely expressed in different mammalian species, with the notable exception of man and Old World monkeys (Galili, U., Shohet, S. B., Kobrin, E., Stults, C.L.M., and Macher, B. A. (1988) J. Biol. Chem. 263, 17755-17762). By Northern blot analysis we were indeed unable to detect transcripts for this enzyme in various human and Old World monkey cell lines; transcripts were readily detected in other mammalian species. However, by Southern blot analysis, homologous sequences for alpha 1----3-galactosyltransferase were identified in human genomic DNA. This suggests that the gene, although present in the human genome, is normally not expressed. These observations have potential medical implications. Because many humans have high levels of circulating antibodies directed against the enzymatic product of alpha 1----3-galactosyltransferase (Gal alpha 1----3Gal beta 1----4GlcN Ac) (Galili, U., Clark, M. R., Shohet, S. B., Buehler, J., and Macher, B. A. (1987) Proc. Natl. Acad. Sci. U. S. A. 84, 1369-1373), it has been suggested that activation of this normally silent gene may play a role in autoimmune disease in man (Etienne-Decerf, J., Malaise, M., Mahieu, P., and Winand, R. (1987) Acta Endocrinol. 115, 67-74).

Amino Acid Sequence↗

Genomic structure of murine beta-1,4-galactosyltransferase.

We have isolated a series of overlapping murine genomic DNA clones that include the complete coding sequence of the Golgi membrane bound marker enzyme beta-1,4-galactosyltransferase. The coding sequence is distributed into six exons spanning 50,000 b.p. of mouse chromosome 4. The COOH terminal domain is predominantly encoded by exons 2-6 and the transmembrane and amino terminal cytoplasmic domains are encoded by exon 1. S1 analysis establishes the most 5' transcriptional initiation site 190 b.p. upstream of the first methionine residue.

Amino Acid Sequence↗

Characterization of the full length cDNA for murine beta-1,4-galactosyltransferase. Novel features at the 5'-end predict two translational start sites at two in-frame AUGs.

We have isolated overlapping cDNA clones representing the full length (4038 base pairs) transcript for murine beta-1,4-galactosyltransferase. The coding sequence predicts a membrane-bound glycoprotein with three distinct structural features, a large COOH-terminal domain (355 amino acids), a single transmembrane domain (20 amino acids), and a short NH2-terminal domain. Primer extension analysis, S1 protection analysis, and RNA blotting demonstrate the presence of two sets of mRNA transcripts which differ in length by about 200 base pairs. The 5' boundary of the long transcripts maps upstream of two in-frame ATGs. The 5' boundary of the short transcripts maps between these two ATGs. These results predict that two related forms of beta-1,4-galactosyltransferase of 399 and 386 amino acids are synthesized as a consequence of alternative translation initiation. The long form (399 amino acids) has an NH2-terminal extension of 13 amino acids.

Amino Acid Sequence↗

Evidence for two forms of murine beta-1,4-galactosyltransferase based on cloning studies.

We have isolated overlapping cDNA clones representing the full-length transcript (4038 base pairs) for murine beta-1,4-galactosyltransferase. The coding sequence predicts a membrane-bound glycoprotein with 3 distinct structural features: 1) a large, potentially glycosylated COOH-terminal domain (355 amino acids) which is positioned within the Golgi lumen and contains both the catalytic and alpha-lactalbumin binding site; 2) a single transmembrane domain (20 amino acids); and 3) a short NH2-terminal domain containing 2 Met residues, separated by 12 amino acids. The gene for murine beta-1,4-galactosyltransferase is unusual in that it specifies 2 mRNA transcripts which differ in length by about 200 base pairs. The longer transcript contains both Met residues found in the NH2-terminal domain; the shorter transcript contains only the downstream Met. These results predict that 2 related forms of beta-1,4-galactosyltransferase of 399 and 386 amino acids are synthesized as a consequence of alternative translation initiation. Both forms of the enzyme are identical in primary structure with the exception that the long form has an NH2-terminal extension of 13 amino acids which, in part, potentially encodes a cleavable signal sequence. The structural implications, topological distribution and potential biological significance of the 2 forms of the enzyme are discussed.

Amino Acid Sequence↗

The gene for galactosyltransferase maps to mouse chromosome 4.

The chromosomal localization of the gene for UDP-galactosyltransferase (glycoprotein 4-B-galactosyltransferase, EC 2.4.1.38) has been determined to be on mouse chromosome 4 by the use of mouse X hamster somatic cell hybrids. It has been proposed that galactosyltransferase is associated with the mouse T/t complex which has been localized to mouse chromosome 17. These results show that galactosyltransferase is not encoded within the T/t complex.

Animals↗

Codistribution of galactosyl- and sialyltransferase: reorganization of trans Golgi apparatus elements in hepatocytes in intact liver and cell culture.

The intracellular distribution of galactosyl- and sialyltransferase was investigated in rat hepatocytes of intact liver, primary monolayer cultures of freshly isolated hepatocytes, in a nontumorigenic hepatocyte cell line and in a hepatoma cell line. The two glycosyltransferases were detected by immunofluorescence using affinity-purified rabbit antibodies. Indirect double immunofluorescence showed that both terminal glycosyltransferases were identically codistributed in the same cell. This codistribution was always observed regardless of the cell type investigated, and in both stationary and migrating cells. The immunofluorescence pattern for both galactosyl- and sialyltransferase was found to be different in hepatocytes in vivo compared to hepatocytes grown in vitro. In hepatocytes of intact liver a spot-like cytoplasmic fluorescence was observed, whereas in cultured normal hepatocytes a perinuclear fluorescence from which an extensive tubular network radiated far into the cytoplasm existed. Cultured hepatoma cells also exhibited an extensive cytoplasmic fluorescence, which in contrast to the normal hepatocytes was rather diffuse. We conclude that (a) galactosyl- and sialyltransferase are codistributed in rat hepatocytes, and (b) a reorganization of (trans) Golgi apparatus elements containing both terminal glycosyltransferases occurs under conditions of in vitro growth and malignant transformation.

Animals↗

Monoclonal antibodies to bovine UDP-galactosyltransferase. Characterization, cross-reactivity, and utilization as structural probes.

A series of mouse monoclonal antibodies has been developed against a soluble form of bovine UDP-galactose:N-acetylglucosamine galactosyltransferase purified to apparent chemical homogeneity by a combination of affinity and immunoadsorption chromatography. The purified enzyme consists of two molecular mass variants of 42 and 48 kDa. Individual monoclonal antibodies were selected for by their ability to recognize immobilized affinity-purified galactosyltransferase and were not reactive against bovine alpha-lactalbumin and bovine immunoglobulins. Based on competitive binding assays and Western blot analysis with either galactosyltransferase or lactose synthetase (covalently cross-linked alpha-lactalbumin galactosyltransferase), these monoclonal antibodies can be subdivided into four groups. Group A (3 clones) recognize an epitope at or near the alpha-lactalbumin binding site. In addition, this group is cross-reactive with soluble galactosyltransferase from human milk and pleural effusion. Group B (6 clones) and D (1 clone) appear to recognize two different epitopes on the 6-kDa fragment which is released when the 48-kDa galactosyltransferase polypeptide is converted to the 42-kDa form, apparently by proteolysis. Groups A and C (1 clone) recognize epitopes found on both the 48- and 42-kDa polypeptide. Interestingly, immunofluorescence studies indicate that only two monoclonal antibody groups (C and D) are able to decorate membrane-bound galactosyltransferase (Golgi-associated) in formalin-fixed, methanol-, or detergent-permeabilized cells. Thus, these groups of monoclonal antibodies appear to identify four separate structural/functional domains on soluble galactosyltransferase, two of which are not readily accessible for binding in situ.

Animals↗

The human galactosyltransferase gene is on chromosome 9 at band p13.

The structural gene for galactosyltransferase (glycoprotein 4-B-galactosyltransferase, EC 2.4.1.38) was localized to human chromosome 9 band p13 by chromosome in situ hybridization using a cloned bovine galactosyltransferase cDNA probe. This chromosomal location is at the same position to which galactose-1-phosphate uridyltransferase, an enzyme which provides the nucleotide sugar substrate (UDP-galactose) for galactosyltransferase, has been mapped.

Animals↗

Bovine galactosyltransferase: identification of a clone by direct immunological screening of a cDNA expression library.

A 1.3-kilobase cDNA clone (7A) coding for bovine galactosyltransferase (glycoprotein 4-beta-galactosyltransferase, EC 2.4.1.38) was isolated from a lambda gt11 expression library by immunological screening with monospecific polyclonal antisera to the affinity-purified bovine enzyme. The nucleotide sequence of this clone predicts an open reading frame that starts at the 5' end of the insert and codes for a polypeptide of 334 amino acids with Mr 37,645. Based on a Mr of 57,000 for the membrane-bound enzyme this clone accounts for approximately 61% of the coding sequence. Portions of the predicted amino acid sequence matched the six tryptic peptides isolated from affinity-purified bovine galactosyltransferase. Clone 7A hybridizes to a 4.8-kilobase bovine mRNA and identifies multiple EcoRI restriction fragments in bovine, murine, and human DNA.

Amino Acid Sequence↗