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S R Carlsson

Publications and source records attributed to S R Carlsson.

At least 19 recordsLinked to original sources

The lysosomal membrane glycoprotein lamp-1 is transported to lysosomes by two alternative pathways.

It has been demonstrated that lysosomal membrane proteins are directed to lysosomes by a tyrosine-containing structural motif in their cytoplasmic tails. It is presently unclear whether lysosomal membrane proteins are directly transported to lysosomes or first taken to the plasma membrane and then directed to the lysosomes via the endocytic pathway. In the present study, the transport pathways taken by one of the members of highly glycosylated lysosomal membrane proteins, lamp-1, were examined in human HL-60 cells. Pulse-chase labeling, combined with cell surface biotinylation and Percoll density gradient fractionation, was used to measure the kinetics of transport to the cell surface and lysosomes. The results show that the majority of lamp-1 is directly transported to lysosomes by a fast pathway (half-time 60 min), which involves sorting at an intracellular site, presumably in the trans-Golgi network. A minor part of lamp-1 is transported out to the cell surface, where it is internalized and eventually delivered to lysosomes. Transport by this pathway requires a long transit time (half-time greater than 2 h). After granulocytic differentiation of HL-60 cells by dimethyl sulfoxide, the synthesis of lamp-1 was increased approximately twofold. In these cells, the sorting in the Golgi apparatus is more effective, leaving only a minute fraction of lamp-1 for the bulk flow to the cell surface. This study establishes that the majority of lamp-1 is directly transported to lysosomes and that, in certain cells, the minority of the molecules is transported to lysosomes via the cell surface.

Antigens, CD

Isolation and characterization of a membrane glycoprotein from human brain with sequence similarities to cell adhesion proteins from chicken and mouse.

We previously described the production of monoclonal antibodies against a preparation of membrane glycoproteins from human brain [Berglund et al. (1987) J. Neurochem. 48, 809-815]. One of the glycoproteins, recognized by monoclonal antibody CF3, was specifically expressed in the brain. We now report the isolation and characterization of this glycoprotein, called glycoprotein 135 (Gp135). Gp135 was purified by means of lentil lectin affinity chromatography and immunoaffinity chromatography, using monoclonal antibody CF3, from a crude membrane extract of human brain cortex. Gp135 was shown to consist of a glycosylated single polypeptide chain with an apparent molecular mass of 135 kDa. The size of the polypeptide moiety was estimated to 115 kDa following N-glycanase digestion. The glycoprotein is anchored in the membrane by a glycosylphosphatidylinositol tail, as shown by phospholipase C digestion and liposome incorporation experiments. Amino acid sequence analysis of the amino terminal, and of an internal peptide obtained by V8 protease digestion of the glycoprotein, revealed a strong similarity to three previously described glycoproteins from chicken (contactin and F11) and mouse (F3) brains. These glycoproteins belong to the immunoglobulin superfamily and are implicated in cell adhesion phenomena in the developing brain. Gp135 may be the human counterpart to one or several of these glycoproteins.

Amino Acid Sequence

The polylactosaminoglycans of human lysosomal membrane glycoproteins lamp-1 and lamp-2. Localization on the peptide backbones.

Lysosome membrane glycoproteins, lamp-1 and lamp-2, have been shown to contain 18 and 16 N-glycans, some of which are modified by poly-N-acetyl-lactosamine. We have localized the polylactosaminoglycans to specific sites on lamp-1 and lamp-2 purified from human chronic myelogenous leukemia cells. Polylactosaminoglycan-containing glycopeptides, obtained by trypsin, pepsin, and V8 protease digestion of the glycoproteins, were isolated by Datura stramonium agglutinin affinity chromatography, gel filtration, and reverse phase high performance liquid chromatography. The poly-N-acetyllactosaminyl structures of isolated glycopeptides were confirmed by the susceptibility of their released oligosaccharides to endo-beta-galactosidase. Amino acid analysis and sequencing demonstrated that polylactosaminoglycans were located at Asn-34, Asn-93 and/or Asn-102, and Asn-195 and/or Asn-200 in lamp-1, and at Asn-4 and/or Asn-10, and Asn-279 in lamp-2. These results indicated that only certain glycosylation sites can be selectively modified by poly-N-acetyllactosamine, and those sites may confer the requirement by beta 1----3-N-acetylglucosaminyl transferase.

Amino Acid Sequence

Decrease in polylactosaminoglycans associated with lysosomal membrane glycoproteins during differentiation of CaCo-2 human colonic adenocarcinoma cells.

The proportion of labeled polylactosaminoglycans found in glycoproteins decreases during spontaneous differentiation of CaCo-2 human colonic adenocarcinoma cells to enterocytes in culture (A. Youakim and A. Herscovics, Biochem. J., 247: 299-306, 1987). To identify polylactosaminoglycan-containing glycoproteins, CaCo-2 cells were incubated with [3H]glucosamine or [3H]fucose, for 24 h, and membrane glycoproteins solubilized with 0.5% Nonidet P-40 were fractionated by affinity chromatography on Datura stramonium (DSA)-agarose. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis and fluorography showed that a restricted set of glycoproteins with a molecular weight of about 100,000 bound to DSA-agarose. These labeled glycoproteins were shown to contain polylactosaminoglycans by DSA-agarose chromatography and endo-beta-galactosidase digestion of Pronase-derived glycopeptides. Immunoprecipitation of the [3H]glucosamine-labeled Nonidet P-40 extract with polyclonal antibodies to the lysosomal membrane proteins h-lamp-1 and h-lamp-2 followed by sodium dodecyl sulfate-polyacrylamide gel electrophoresis and fluorography also revealed a band with a molecular weight of about 100,000. The immunoprecipitates were digested with Pronase, and the resulting glycopeptides were first fractionated on Bio-Gel P-6 into excluded (Fraction I) and included (Fraction II) glycopeptides, and then by DSA-agarose affinity chromatography. A much greater proportion of labeled glycopeptides in undifferentiated cells (3 to 5 days in culture) than in differentiated cells (19 to 27 days in culture) was recovered in Fraction I; these glycopeptides were bound to DSA-agarose and were sensitive to endo-beta-galactosidase. This decrease in polylactosaminoglycans was associated primarily with h-lamp-1. These results indicate that h-lamp-1 of CaCo-2 cells contains polylactosaminoglycans and that it undergoes a change in glycosylation with differentiation.

Adenocarcinoma

Structure of human lysosomal membrane glycoprotein 1. Assignment of disulfide bonds and visualization of its domain arrangement.

The amino acid sequence of one of the major lysosomal membrane glycoproteins, lysosome-associated membrane protein 1 (lamp-1), was deduced from its cDNA sequence (Fukuda, M., Viitala, J., Matteson, J., and Carlsson, S. R. (1988) J. Biol. Chem. 263, 18920-18928). This amino acid sequence suggests that lamp-1 contains a hinge-like structure and could form disulfide bridges that are observed in the immunoglobulin superfamily. To test this possibility, we have determined the positions of the disulfide bridges by isolating and sequencing cystine-containing peptides which contain disulfide bridges. The results indicate that disulfide arrangement of lamp-1 is different from that of immunoglobulins. Each molecule contains, in total, four loops formed by disulfide bonds, and each loop contains 36-39 amino acid residues. However, none of the disulfide bonds connects two domains that are separated by a hinge-like structure. The results indicate that the hinge region has no ordered structure, and the relative positions of the two domains can be altered in space. Examination of the ultrastructure of lamp-1 by electron microscopy showed that the hinge-like structure actually functions as a hinge. These results indicate that the lamp-1 molecule represents a novel family of glycoproteins with unique structural properties.

Amino Acid Sequence

Characterization of cDNAs encoding human leukosialin and localization of the leukosialin gene to chromosome 16.

We describe the isolation and characterization of cDNA clones encoding human leukosialin, a major sialoglycoprotein of human leukocytes. Leukosialin is very closely related or identical to the sialophorin molecule, which is involved in T-cell proliferation and whose expression is altered in Wiskott-Aldrich syndrome (WAS), an X chromosome-linked immunodeficiency disease. Using a rabbit anti-serum to leukosialin, a cDNA clone was isolated from a lambda gt11 cDNA library constructed from human peripheral blood cells. This lambda gt11 clone was used to isolate longer cDNA clones that correspond to the entire coding sequence of leukosialin. DNA sequence analysis reveals three domains in the predicted mature protein. The extracellular domain is enriched for Ser, Thr, and Pro and contains four contiguous 18-amino acid repeats. The transmembrane and intracellular domains of the human leukosialin molecule are highly homologous to the rat W3/13 molecule. RNA gel blot analysis reveals two polyadenylylated species of 2.3 and 8 kilobases. Southern blot analysis suggests that human leukosialin is a single-copy gene. Analysis of monochromosomal cell hybrids indicates that the leukosialin gene is not X chromosome linked and in situ hybridization shows leukosialin is located on chromosome 16. These findings demonstrate that the primary mutation in WAS is not a defect in the structural gene for leukosialin.

Amino Acid Sequence

Isolation and characterization of human lysosomal membrane glycoproteins, h-lamp-1 and h-lamp-2. Major sialoglycoproteins carrying polylactosaminoglycan.

Two major lysosomal membrane glycoproteins with apparent Mr approximately 120,000 were purified from chronic myelogenous leukemia cells. These glycoproteins are major sialoglycoproteins containing polylactosaminoglycan and represent approximately 0.1-0.2% of total cell proteins. A monoclonal antibody specific to one of the glycoproteins and polyclonal antibodies specific to the other glycoprotein were obtained. Immunoelectron microscopic examination of HeLa cells revealed that these two glycoproteins mainly reside in lysosomes and multivesicular bodies. Immunoprecipitation experiments showed that a number of different cell lines express these glycoproteins. However, the apparent molecular weights differed between cell lines; this probably represents differences in the amount of polylactosaminoglycan expressed by each cell line. As shown in the following paper (Fukuda, M., Viitala, J., Matteson, J., and Carlsson, S. R. (1988) J. Biol. Chem. 263, 18920-18928) one of the glycoproteins is very homologous to that of a mouse counterpart, m-lamp-1. The human form of this glycoprotein is therefore named human lamp-1 (h-lamp-1), while the other glycoprotein, to which the monoclonal antibody was made, is called human lamp-2 (h-lamp-2). Pulse-chase labeling experiments detected that h-lamp-1 and h-lamp-2 are produced first as precursor forms of 87.5 and 84 kDa, and treatment with endo-beta-N-acetylglucosaminidase H (endo-H) or endo-beta-N-acetylglucosaminidase F (endo-F) reduced their molecular masses to 39.5 and 41.5 kDa, respectively. It was estimated that h-lamp-1 has 18 N-linked saccharides and h-lamp-2 16, based on the results of partial digestions with endo-F. These results indicate that the two lysosomal membrane glycoproteins are extensively modified by N-glycans, and some of these were found to have polylactosaminyl repeats and sialic acid. Human lamp-1 and lamp-2, therefore, serve as good models for understanding polylactosaminoglycan formation and the biosynthesis and processing of polylactosaminoglycan-containing glycoprotein.

Amino Acids

Cloning of cDNAs encoding human lysosomal membrane glycoproteins, h-lamp-1 and h-lamp-2. Comparison of their deduced amino acid sequences.

We have isolated and sequenced cDNA clones corresponding to the entire coding sequences of the human lysosomal membrane glycoproteins, lamp-1 and lamp-2 (h-lamp-1 and h-lamp-2). The deduced amino acid sequences indicate that h-lamp-1 and h-lamp-2 consist of 416 and 408 amino acid residues, respectively, and suggest that 27 and 28 NH2-terminal residues are cleavable signal peptides. The major portions of both h-lamp-1 and h-lamp-2 reside on the luminal side of the lysosome and are heavily glycosylated by N-glycans: h-lamp-1 and h-lamp-2 were found to contain 19 and 16 potential N-glycosylation sites, respectively. The findings are consistent with the results obtained by endo-beta-N-acetylglucosaminidase F treatment of h-lamp-1 and h-lamp-2 precursors, described in the preceding paper (Carlsson, S. R., Roth, J., Piller, F., and Fukuda, M. (1988) J. Biol. Chem. 263, 18911-18919). These N-glycosylation sites are clustered into two domains separated by a hinge-like structure enriched with proline and serine in h-lamp-1 or proline and threonine in h-lamp-2. The two domains of h-lamp-1 on each side of the hinge region are homologous to each other, whereas no such homology was detected between the two domains of h-lamp-2. Both proteins have one putative transmembrane domain consisting of 24 hydrophobic amino acids near the COOH terminus, and contain a short cytoplasmic segment composed of 11 amino acid residues at the COOH-terminal end. Comparison of h-lamp-1 and h-lamp-2 sequences reveal strong homology between the two molecules, particularly in the proximity to the COOH-terminal end. It is possible that this portion is important for targeting the molecules to lysosomes. These results also suggest that lamp-1 and lamp-2 are evolutionarily related. Comparison of known lamp-1 sequences among different species, on the other hand, show that human lamp-1 has more similarity to lamp-1 from other species than to human lamp-2. This fact, taken together with the finding that h-lamp-2 lacks repeating domains, suggests that lamp-1 and lamp-2 diverged from a putative ancestor gene in early stages of evolution. These results also suggest that lamp-1 and lamp-2 probably have distinctly separate functions despite the fact that they share many structural features.

Amino Acid Sequence

Characterization of a hydrophilic form of Thy-1 purified from human cerebrospinal fluid.

Thy-1 is a developmentally regulated cell surface glycoprotein in nervous tissue. An inositol-containing glycolipid structure is covalently attached to its carboxyl terminus, which anchors the protein to the cell membrane. In the present paper we report the characterization of a water-soluble form of Thy-1, purified from human cerebrospinal fluid (CSF). In contrast to the membrane-bound form of Thy-1 (M-Thy-1) isolated from human brain cerebral cortex, CSF-Thy-1 behaved like a completely hydrophilic glycoprotein, as analyzed by charge-shift electrophoresis in the presence of detergents and by liposome incorporation experiments. CSF-Thy-1 displayed a slightly higher apparent molecular weight in sodium dodecyl sulfate-polyacrylamide gel electrophoresis than M-Thy-1. Digestions with endoglycosidases demonstrated that this difference in size was correlated to different processing of the three N-linked oligosaccharides, and the mobilities of the deglycosylated molecules were indistinguishable in sodium dodecyl sulfate gels. A Pronase-resistant carboxyl-terminal fragment was isolated from the CSF-Thy-1 after trypsin digestion and compared with the corresponding structure of M-Thy-1, obtained by treatment either with bacterial phosphatidylinositol-specific phospholipase C or with human serum (as a source of phosphatidylinositol-specific phospholipase D). The major fragment from CSF-Thy-1 behaved identically, with respect to size and charge, to the carboxyl-terminal fragment from M-Thy-1 solubilized by phospholipase D. These findings suggest an in vivo release of phosphatidylinositol-anchored Thy-1 glycoprotein from brain cells by the action of an endogenous phospholipase D.

Antigens, Surface

Molecular cloning of cDNAs encoding lamp A, a human lysosomal membrane glycoprotein with apparent Mr approximately equal to 120,000.

Although several lysosomal membrane glycoproteins have been characterized by using specific antibodies, none of the studies so far elucidated the amino acid sequence of a lysosomal membrane glycoprotein. Here we describe cDNA clones encoding for one of the lysosome-associated membrane proteins with apparent Mr approximately equal to 120,000, lamp A. The amino acid sequence based on the fully coded cDNA shows that as many as 18 potential N-glycosylation sites can be found in the total of 385 amino acid residues. The results obtained by endoglycosidase F digestion support the conclusion that this glycoprotein contains 18 N-glycans. These N-glycosylation sites are clustered in two domains; one contains 10 and the other contains 8 N-glycosylation sites. These domains are separated by a (proline-serine)-rich region that has a distinct homology to the IgA hinge structure. The first N-glycosylated domain is elongated to a potential leader peptide toward the NH2-terminal end. The second N-glycosylated domain, on the other hand, is connected to a putative transmembrane portion consisting of hydrophobic amino acids. This segment, in turn, is elongated to a short cytoplasmic segment composed of 11 amino acid residues at the COOH-terminal end.

Amino Acid Sequence

Isolation and characterization of leukosialin, a major sialoglycoprotein on human leukocytes.

A major sialoglycoprotein (previously called gp105) on the human erythroleukemic cell line K562 was purified, and specific antibodies were raised in a rabbit. A number of different hematopoietic cell lines belonging to erythroid, myeloid, T-lymphoid, and B-lymphoid cell lineages were found to possess glycoproteins that were immunoprecipitated by these antibodies. However, the apparent molecular weights differed between cell lines, ranging from 113,000 to 150,000. In almost all cases, the immune precipitated molecule corresponded to the major sialoglycoprotein of the respective cell. Pulse-chase experiments showed that all cells produced an early precursor form of the molecule of 54 kDa, which was susceptible to endo-beta-N-acetylglucosaminidase H to give an apoprotein of 52 kDa. Neuraminidase treatment of the mature forms resulted in a characteristic decrease of the mobility in sodium dodecyl sulfate-polyacrylamide gel electrophoresis (apparent molecular weights from 150,000 to 183,000). Amino acid analysis of the glycoprotein isolated from HL-60 cells showed a high content of serine, threonine, and proline, and the carbohydrate composition was compatible with the presence of a large number (approximately 90) of O-linked carbohydrate chains. The name leukosialin is proposed for this sialoglycoprotein, which seems to be widely distributed, but differently glycosylated, on leukocytes with diverse functions. In the following paper (Carlsson, S.R., Sasaki, H., and Fukuda, M. (1986) J. Biol. Chem. 261, 12787-12795), we demonstrate that the structures of O-linked oligosaccharides vary significantly depending on the cells from which leukosialin was isolated.

Animals

Structural variations of O-linked oligosaccharides present in leukosialin isolated from erythroid, myeloid, and T-lymphoid cell lines.

Structures of O-linked oligosaccharides of leukosialin isolated from K562 erythroid, HL-60 promyelocytic, and HSB-2 T-lymphoid cell lines were examined. Leukosialin was isolated by specific immunoprecipitation from cells which were metabolically labeled with [3H]glucosamine, and glycopeptides were isolated after Pronase digestion. O-Linked oligosaccharides were released by alkaline borohydride treatment, and the structures of purified oligosaccharides were elucidated by specific exoglycosidase digestion, Smith degradation, and methylation anaylsis. Oligosaccharides from K562 cells were found to be GalNAcOH, Gal beta 1----3GalNAcOH, NeuNAc alpha 2----6GalNAcOH, NeuNAc alpha 2----3Gal beta 1----3GalNAcOH, Gal beta 1----3(NeuNAc alpha 2----6)GalNAcOH, and NeuNAc alpha 2----3Gal beta 1----3(NeuNAc alpha 2----6)GalNAcOH. On the other hand, oligosaccharides from HL-60 and HSB-2 cells were found to be NeuNAc alpha 2----3Gal beta 1----3GalNAcOH, NeuNAc alpha 2----3Gal beta 1----4GlcNAc beta 1----6(Gal beta 1----3)GalNAcOH, Gal beta 1----4GlcNAc beta 1----6(NeuNAc alpha 2----3)Gal beta 1----3)GalNAcOH, and NeuNAc alpha 2----3Gal beta 1----4GlcNAc beta 1----6(NeuNAc alpha 2----3Gal beta 1----3)GalNAcOH. These results clearly indicate that leukosialin can be differently glycosylated with O-linked chains, and each erythroid or myeloid (and T-lymphoid) cell line expresses a characteristic set of O-linked oligosaccharides which differ in core structures as well as in sialylation.

Antigens, CD

Structures of O-linked oligosaccharides isolated from normal granulocytes, chronic myelogenous leukemia cells, and acute myelogenous leukemia cells.

O-Linked oligosaccharides were isolated from normal granulocytes, chronic myelogenous leukemia cells, and acute myelogenous leukemia cells by alkaline borohydride treatment. Oligosaccharides were fractionated by Sephadex G-50 gel filtration and QAE-Sephadex column chromatography, and their structures were elucidated by fast atom bombardment-mass spectrometry after permethylation and methylation analysis before and after specific exoglycosidase treatments. Results show that normal granulocytes and chronic myelogenous leukemia cells contain a series of O-linked oligosaccharides with the following structure, (formula: see text) where, in normal granulocytes n = 0 is major and n = 1 or 2, and thus polylactosaminyl oligosaccharides are present as minor components. However, these polylactosaminyl oligosaccharides were barely detectable in chronic myelogenous leukemia cells. On the other hand, acute myelogenous leukemia cells, which represent poorly differentiated myeloid cells, mainly contain short O-linked oligosaccharides with 2----6-linked sialic acid as follows. (formula: see text) These results suggest that structures of O-linked oligosaccharides vary in the different maturation stages along the same cell lineage.

Carbohydrate Conformation

Regional and subcellular distribution of Thy-1 in human brain assayed by a solid-phase radioimmunoassay.

A solid-phase radioimmunoassay, specific for the monomeric form of human Thy-1, was developed and used for quantitation of the Thy-1 antigen in human brain tissue. Determination of Thy-1 in homogenates of 12 anatomically defined brain regions showed that Thy-1 is present throughout the human brain. However, significant variation was found in the expression of the glycoprotein in different regions. Thy-1 appears to be generally enriched within gray matter: caudate nucleus, cerebral cortex, and putamen were found to contain the highest Thy-1 concentration (approximately 2.5 micrograms Thy-1/mg protein). Interestingly, the cerebellar cortex contained only 25% of the Thy-1 concentration of cerebral gray matter. Cerebral subcortical white matter contained half the amount of Thy-1 compared to cerebral cortex. Determination of Thy-1 in subcellular fractions prepared from human brain biopsy tissue indicated that the highest relative concentration of Thy-1 is associated with synaptosomal membranes and myelin/axonal membrane fractions.

Adult

Leukosialin, a major sialoglycoprotein on human leukocytes as differentiation antigens.

Most blood cells derived from the bone-marrow are known to possess only a limited number of heavily sialylated glycoproteins. We have recently isolated a major sialoglycoprotein on leukocytes and found that this glycoprotein, termed leukosialin, is ubiquitously present on various human leukocytes, granulocytes, monocytes/macrophages and T- and B-lymphocytes. Our studies showed that leukosialin is significantly glycosylated by O-linked oligosaccharides (90 chains/molecule). The structures of those O-linked oligosaccharides are characteristic to each cell lineage and maturation stage. The polypeptide portion of these molecules are, however, apparently the same, with a molecular size of 52 KDa. So it will be interesting to explore the possibility that leukosialin expresses different functions by having different O-glycosylation in a variety of hematopoietic cells.

Antigens, CD

Changes in glycan branching and sialylation of the Thy-1 antigen during normal differentiation of mouse T-lymphocytes.

The glycans of the Thy-1 antigen present on thymocytes and lymph-node T-lymphocytes were investigated after external labelling of the cells. Neuraminidase, endoglycosidase H and endoglycosidase F were used in combination with sodium dodecyl sulphate/polyacrylamide-gel electrophoresis and isoelectric focusing in order to characterize the nature of the glycans on 125I-labelled and immunoprecipitated Thy-1. Glycopeptides were prepared from Thy-1 obtained from cells labelled by periodate/boro[3H]hydride treatment. The glycopeptides were separated by affinity chromatography on concanavalin A-Sepharose and analysed by gel filtration. The results show that both types of cells possess Thy-1 molecules with three N-linked carbohydrate chains, of which one is of 'high-mannose' type and the other two of triantennary and biantennary 'complex' type. The ratio of triantennary/biantennary chains was decreased on Thy-1 of mature cells compared with that of immature cells, but instead more sialic acid was present on these chains. Deglycosylated Thy-1 appeared to be of the same size regardless of origin, indicating that only the carbohydrate moiety differs between Thy-1 molecules of the two cell types.

Animals

Activation of Lyt-2+ T cells by antibodies towards brain-associated antigens. I. Accessory cell requirement and role of Fc receptors in the induction of reactivity to interleukin 2.

The present report describes a system where essentially all Lyt-2+ T cells are selectively activated by rabbit anti-mouse brain antibodies (RaMB) to interleukin 2 (IL 2) reactivity. High efficiency of RaMB-mediated induction was obtained by a 5 h incubation with antibodies at high cell density of Sephadex G-10-nonadherent spleen cells. No in situ production of IL 2 by RaMB-treated cells was detected, and proliferative responses were entirely dependent on exogeneous IL 2. RaMB-induced IL 2 reactivity was found to require accessory cells which are Fc receptor positive, and clearly distinct from those required to induce T cell proliferation in mixed lymphocyte cultures. We conclude that Lyt-2+ T cells are triggered to IL 2 reactivity by Fc receptor-mediated presentation of RaMB antibodies. The mechanism of induction by RaMB antibodies is discussed.

Animals