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Domains of the human androgen receptor involved in steroid binding, transcriptional activation, and subcellular localization.

A series of human androgen receptor (AR) deletion mutants was constructed to study the relationship between the structural domains and their different functions in the AR protein. Human AR mutants were expressed in COS-1 and HeLa cells to investigate hormone binding, transcriptional activation, and subcellular localization. The wild-type human AR (AR 1-910) was expressed as a 110- to 112-kDa doublet, as revealed on immunoblots. All mutant AR proteins also migrated as doublets, except for one. This AR has a deletion from amino acid residues 51-211 and migrated as a single protein band, possibly due to altered posttranslational modification. The AR steroid-binding domain is encoded by approximately 250 amino acid residues in the C-terminal end. Deletions in this domain as well as truncation of the last 12 C-terminal amino acid residues abolished hormone binding. Cotransfection studies in HeLa cells showed that transcriptional activation of an androgen-regulated reporter gene construct was induced by the wild-type human AR. Mutational analysis revealed two regions in the N-terminal part, encoded by amino acid residues 51-211 and 244-360, to be essential for this transcriptional activation. Deletion of the hormone-binding domain yielded a constitutively active AR protein, indicating that in the absence of hormone this domain displays an inhibitory function. In the presence of its ligand, the wild-type AR was located in the cell nucleus. In the absence of androgens the receptor was mainly nuclear, but cytoplasmic localization was observed as well.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Proclotting enzyme from horseshoe crab hemocytes. cDNA cloning, disulfide locations, and subcellular localization.

Proclotting enzyme is an intracellular serine protease zymogen closely associated with an endotoxin-sensitive hemolymph coagulation system in limulus. Its active form, clotting enzyme, catalyzes conversion of coagulogen to insoluble coagulin gel. We present here the cDNA and amino acid sequences, disulfide locations, and subcellular localization of proclotting enzyme. The isolated cDNA for proclotting enzyme consists of 1,501 base pairs. The open reading frame of 1,125 base pairs encodes a sequence comprising 29 amino acid residues of prepro-sequence and 346 residues of the mature protein with a molecular mass of 38,194 Da. Three potential glycosylation sites for N-linked carbohydrate chains were confirmed to be glycosylated. Moreover, the zymogen contains six O-linked carbohydrate chains in the amino-terminal light chain generated after activation. The cleavage site that accompanies activation catalyzed by trypsin-like active factor B, proved to be an Arg-Ile bond. The resulting carboxyl-terminal heavy chain is composed of a typical serine protease domain, with a sequence similar to that of human coagulation factor XIa (34.5%) or factor Xa (34.1%). The light chain has a unique disulfide-knotted domain which shows no significant homology with any other known proteins. Thus, this proclotting enzyme has a mammalian serine protease domain and a structural domain not heretofore identified in coagulation and complement factors. Immunohistochemical studies showed that the proclotting enzyme is localized in large granules of hemocytes.

Amino Acid Sequence

Subcellular localization of secretogranin II and synaptophysin by immunoelectron microscopy in differentiated hypothalamic neurons in culture.

Secretogranin II (SgII), a tyrosine-sulfated secretory protein, is a widespread component of endocrine and neuronal cells. In the present study we used mouse hypothalamic neurons differentiated in culture and studied the subcellular localization of SgII by two methods, i.e., by the use of immunoperoxidase or immunogold electron microscopy. By immunoperoxidase labeling, SgII was mainly detected in the matrix of large dense-core vesicles (LDCVs). In addition, usually in nerve terminals containing LDCVs, peroxidase reaction product was also found in association with the membrane of small synaptic vesicles (SSVs). By immunogold labeling, SgII was detected only in the matrix of LDCVs. We also compared the localization of SgII and synaptophysin (SY), an integral membrane protein of SSVs, by double labeling, using a combination of pre-embedding immunogold and -peroxidase techniques for SgII and SY, respectively. In perikarya, SgII-positive LDCVs were observed in the vicinity of the Golgi complex and scattered in the cytoplasm. In contrast, SY labeling was restricted to electron-translucent vesicles and tubular membranes in the Golgi area. Moreover, membrane structures positive for both SgII and SY were not found either in the Golgi zone or in other regions of the cytoplasm. In synaptic boutons, immunolabeling of LDCVs and SSVs with anti-SgII and anti-SY, respectively, was mutually exclusive. In summary, within the limitation of the methods used, our data are consistent with the notion that SgII and SY are segregated from each other on exit from the trans-Golgi network, than follow two distinct membrane traffic pathways, and that the presence of SgII on the membrane of some SSVs is due to endocytosis.

Animals

Subcellular localization, partial purification, and characterization of a dynorphin processing endopeptidase from bovine pituitary.

An enzyme capable of cleaving dynorphin B-29 to dynorphin B-13 is present in bovine pituitary, with 40- to 50-fold higher specific activity in the posterior and intermediate lobes than in the anterior lobe. Subcellular fractionation of bovine neurointermediate pituitary shows that this enzyme is present in the peptide-containing secretory vesicles. The enzyme has been purified 2,800-fold from whole bovine pituitaries using ion-exchange and gel filtration chromatography. Purified dynorphin-converting enzyme has a neutral pH optimum, and is subsantially inhibited by the thiol-protease inhibitor p-chloromercuriphenylsulfonic acid, but not by serine or metalloprotease inhibitors. The purified enzyme processes dynorphin B-29 at Arg14, producing both dynorphin B-14 and dynorphin B-13 in a 5:1 ratio. No other cleavages are observed, suggesting that the activity is free from other proteases and is specific for single Arg sequences. Purified enzyme also processes dynorphin A-17 at the single Arg cleavage site, generating both dynorphin A-8 and A-9 in a 7:1 ratio. The tissue distribution, subcellular localization, and substrate specificity of this enzyme are consistent with a physiological role in the processing of dynorphin B-29 and dynorphin A-17, and possibly other peptides, at single Arg residues.

4-Chloromercuribenzenesulfonate

Subcellular localization of the nodD gene product in Rhizobium leguminosarum.

In Rhizobium strains the transcription of symbiosis plasmid-localized nod genes, except nodD, is induced by plant flavonoids and requires the nodD gene product. In order to localize NodD protein in R. leguminosarum, a NodD protein-specific antiserum was raised against a lacZ'-'nodD gene fusion product. Using these antibodies, we determined that the NodD protein is located exclusively in the cytoplasmic membrane of wild-type R. leguminosarum biovar viciae cells. This localization is independent of the presence of inducers. In a Rhizobium strain that overproduced the NodD protein, the protein was present both in the cytoplasmic membrane and the cytosol, indicating an influence of the protein abundance on its ultimate subcellular localization. It was estimated that 20 to 80 molecules of NodD protein were present per wild-type Rhizobium cell. A model which combines the localization and the DNA-binding properties of the NodD protein as well as the observed association of flavonoids with the cytoplasmic membrane is discussed.

Bacterial Proteins

Subcellular localization of gonadotrophic hormones LH and FSH in frog adenohypophysis using double-staining immunocytochemistry.

We applied double post-embedding immunocytochemical methods using specific antibodies against bullfrog (Rana catesbeiana) luteinizing hormone (LH) and follicle-stimulating hormone (FSH) with immunogold staining (5- and 20-nm particles) to determine the subcellular localization of both gonadotropins and to observe their immunostaining patterns in anterior pituitary of the frog Rana pipiens. Results showed that individual gonadotrophs may store either one or both gonadotropins in a given secretory granule and in large globules (lysosomes?). Most gonadotrophs (50-88%) contain both hormones; 12-50% contain only FSH, and only a few (0-7%) contain LH alone. Individual secretory granules, even in cells that contain both hormones, may contain only one or both gonadotropin molecules. Evaluation of the percentage of monohormonal and multihormonal secretory granules revealed that multihormonal secretory granules were the most numerous and that LH monohormonal secretory granules were the least numerous. These results indicate that cellular storage of gonadotropin in amphibian pituitary is similar to that described for mammals, where a single cell type containing both gonadotropins predominates. Variability in hormone content both of cells and of granules in all individuals is consistent with the hypothesis that frog pituitary possesses a single multipotential gonadotroph.

Animals

Studies on the subcellular localization of protease and arylaminopeptidase activities in Streptococcus sanguis ATCC 10556.

Intact cells of Streptococcus sanguis ATCC 10556 possessed arylaminopeptidases exhibiting activity toward the nitroanilide (NA) derivatives of leucine, alanine, methionine, arginine, or lysine. Weak hydrolytic activity was observed in assays with the NA derivatives of valine, proline, glycine, or glutamic acid. Subcellular localization studies revealed that arylaminopeptidase activities were located in both the cell membrane and cytoplasm. Arylaminopeptidases exhibiting activity toward the leucine, alanine, or methionine NA substrates appeared to be more predominantly associated with the membrane, whereas enzymes exhibiting activity toward arginyl-NA or lysyl-NA were more prevalently located in the cytoplasm. Several results from this study suggest that the membrane-assocaited arginyl and lysyl arylaminopeptidases were located in such a way that their expression was restricted in the intact cell. The addition of 0.5 mol/L NaCl to protoplast preparations derived from mutanolysin-treated cells resulted in an almost complete solubilization of membrane-associated arylaminopeptidase activities. These observations support the conclusion that the association of arylaminopeptidases with the cell membrane may involve hydrophobic or electrostatic interactions, or both. S. sanguis ATCC 10556 also possessed at least one caseinolytic endopeptidase activity. This activity is most likely located near the membrane surface, as no association with the cell wall was evident. The location of membrane-associated endopeptidase and arylaminopeptidase activities, together with intracellular peptidases, is suggested to provide an efficient mechanism for the hydrolysis and subsequent utilization of polypeptide and oligopeptide substrates as sources of amino acids for growth by this microorganism.

Aminopeptidases

Cytological events in allo-stimulated lymphocytes triggered by exposure to stimulatory alloantigens. II. Changes in the areal density of cytoplasmic vacuoles and in the subcellular localization of acid phosphatase.

H-2b lymphocytes were sensitized against H-2d alloantigens by lymphocyte culture reaction and incubated with H-2d mastocytoma cells. The interaction between lymphoid cells and mastocytoma cells was stopped by fixation with glutaraldehyde. The areal density of the cytoplasmic vacuoles as well as the subcellular localization of acid phosphatase in lymphocytes were examined by electron microscopy. Two populations of lymphocytes were observed, small lymphocytes with heterochromatic nuclei and larger lymphocytes (lymphoblasts) with euchromatic nuclei. Only the lymphoblasts showed change following interaction with target cells. The vacuole area in percent of cytoplasmic area (vacuole areal density) of sensitized lymphoblasts increased during the first 30 minutes and from the third to fourth hour of interaction with target cells. Acid phosphatase staining was observed in the Golgi apparatus of the lymphoblasts after 30 minutes of interaction. Multivesicular bodies showed acid phosphatase staining within 20 minutes of interaction with target cells. After 20 minutes of interaction, phagosomes containing myelin figures were formed. These phagosomes also showed acid phosphatase staining and during the next hours of interaction their number increased over the number of multivesicular bodies.

Acid Phosphatase

Subcellular localization of ubiquitin and ubiquitinated proteins in Arabidopsis thaliana.

Ubiquitin is a highly conserved, 76-amino acid, eukaryotic protein. Its widely accepted role as a proteolytic cofactor depends on its unique ability to covalently ligate to other cellular proteins. While there is good evidence for the existence of such ubiquitinated proteins in the cytosolic and nuclear compartments, relatively little is known about the presence of free ubiquitin and ubiquitinated proteins in other subcellular compartments. This is especially true of higher plants, which have not previously been the subject of extensive biochemical subcellular localizations of ubiquitinated proteins. We extracted cell wall proteins and purified nuclei, vacuoles, chloroplasts, and microsomes from chlorophyllous tissues of Arabidopsis. Immunoblot analyses were used to compare the profiles of ubiquitinated proteins from purified subcellular fractions to those from unfractionated extracts. Purified nuclei contained, in addition to a complex mixture of high molecular mass ubiquitinated proteins, a strongly immunoreactive 28-kDa protein. In the apoplastic extract, we did not detect any ubiquitinated proteins enriched above the background level of those due to cytosolic contamination. Vacuoles appeared to contribute significantly to the ubiquitinated proteins present in the whole protoplast extract. At least three high molecular mass ubiquitinated proteins were unique to the vacuolar extract. Chloroplast stromal proteins did not react specifically with anti-ubiquitin antibodies. When microsomal ubiquitinated proteins were compared to those found in a whole protoplast extract, a distinct pattern was evident. Microsomal ubiquitinated proteins were not visible in the 10,000 x g supernatant used to prepare the 100,000 x g pellet, indicating that they were probably low abundance proteins in the protoplast extract.

Cell Fractionation

Cellular oxidation of lignoceric acid is regulated by the subcellular localization of lignoceroyl-CoA ligases.

The acyl-CoA ligases convert free fatty acids to acyl-CoA derivatives, and these enzymes have been shown to be present in mitochondria, peroxisomes, and endoplasmic reticulum. Because their activity is obligatory for fatty acid metabolism, it is important to identify their substrate specificities and subcellular distributions to further understand the cellular regulation of these pathways. To define the role of the enzymes and organelles involved in the metabolism of very long chain (VLC) fatty acids, we studied human genetic cell mutants impaired for the metabolism of these molecules. Fibroblast cell lines were derived from patients with X-linked adrenoleukodystrophy (X-ALD) and Zellweger's cerebro-hepato-renal syndrome (CHRS). While peroxisomes are present and morphologically normal in X-ALD, they are either greatly reduced in number or absent in CHRS. Palmitoyl-CoA ligase is known to be present in mitochondria, peroxisomes, and endoplasmic reticulum (microsomes). We found enzyme-dependent formation of lignoceroyl-CoA in these same organelles (specific activities were 0.32 +/- 0.12, 0.86 +/- 0.12, and 0.78 +/- 0.07 nmol/h per mg protein, respectively). However, lignoceroyl-CoA synthesis was inhibited by an antibody to palmitoyl-CoA ligase in isolated mitochondria while it was not inhibited in peroxisomes or endoplasmic reticulum (ER). This suggests that palmitoyl-CoA ligase and lignoceroyl-CoA are different enzymes and that mitochondria lack lignoceroyl-CoA ligase. This conclusion is further supported by data showing that oxidation of lignoceric acid was found almost exclusively in peroxisomes (0.17 nmol/h per mg protein) but was largely absent from mitochondria and the finding that monolayers of CHRS fibroblasts lacking peroxisomes showed a pronounced deficiency in lignoceric acid oxidation in situ (1.8% of control). In spite of the observation that lignoceroyl-CoA ligase activity is present on the cytoplasmic surface of ER, our data indicate that lignoceroyl-CoA synthesized by ER is not available for oxidation in mitochondria. This organelle plays no physiological role in the beta-oxidation of VLC fatty acids. Furthermore, the normal peroxisomal oxidation of lignoceroyl-CoA but deficient oxidation of lignoceric acid in X-ALD cells indicates that cellular VLC fatty acid oxidation is dependent on peroxisomal lignoceroyl-CoA ligase. These studies allow us to propose a model for the subcellular localization of various acyl-CoA ligases and to describe how these enzymes control cellular fatty acid metabolism.

Adrenoleukodystrophy

Dipeptidyl peptidase IV--subcellular localization, activity and kinetics in lymphocytes from control subjects, immunodeficient patients and cord blood.

Dipeptidyl peptidase IV (DPIV), a T cell enzyme, has been implicated in the regulation of lymphocyte proliferation in response to lectins and allogeneic cells. A sensitive fluorimetric assay has been established for the enzyme and used to investigate DPIV activity, kinetics and the subcellular localization in lymphocytes from control subjects, cord blood and patients with common variable hypogammaglobulinaemia (CVH) and chronic lymphatic leukaemia (CLL). Using sucrose density gradient centrifugation and organelle marker enzyme assays, in conjunction with digitonin as a selective plasma membrane perturbant and diazotized sulphanilic acid as a non-permeant enzyme inhibitor, DPIV was shown to be a plasma membrane ecto-enzyme. A significant decrease in lymphocyte DPIV activity was observed in cord blood and in patients with CVH and CLL compared to controls. Kinetic analysis showed a marked decrease in the Vmax of lymphocyte DPIV from cord blood and patients with CVH and CLL compared to controls. The apparent Km for the substrate was unaffected in cord blood and patients with CLL. However, in patients with CVH the Km was significantly reduced. Various enzyme inhibitors showed no differences between control subjects and CVH lymphocyte activities. The decreased Km for DPIV provides further evidence for a stem cell defect rather than cell immaturity in CVH.

Agammaglobulinemia

Subcellular localization of prostaglandin-E2 in rat heart tissue.

It has been reported that isolated rat heart myocytes and cardiac mesenchymal cells convert arachidonic acid mainly into three types of prostaglandins (PGs): PGE2, PGF2 alpha, and PGI2. In addition, we have demonstrated that fresh atrial slices of patients with heart-valve disease contain appreciable quantities of PGE2 and PGF2 alpha. However, there have been no reports on the subcellular localization of the prostaglandin system in heart muscle tissue. The present study was performed to define the distribution of PGE2 in mitochondrial, microsomal, and cytosolic fractions, isolated by differential centrifugation from homogenates of fresh normal rat atrium and ventricle slices. In addition, we determined whether differences exist in PGE2 levels between atrial subcellular fractions and those of ventricular fractions. The results showed that PGE2 was located mainly in the high-speed cytosolic supernatant fraction of the heart homogenates analyzed. Furthermore, PGE2 concentrations (ng/mg protein) were significantly higher in fractions obtained from atrial than those of ventricular tissue.

Animals

The subcellular localization of labelled tyrosine in the vitelline cells of Schistosoma mansoni.

Autoradiographic studies at light and electron microscope level showed that tritiated tyrosine injected into the peritoneal cavity of infected mice localised in the cells of adult Schistosoma mansoni within one hour. The amino acid was avidly taken up by vitelline cells compared to other tissues. Subcellular localization was in the granular endoplasmic reticulum and in the vitelline droplets. The label was also present in the tissues of the tegument and gut but the route of entry into the parasite was not determined.

Autoradiography

Monoclonal antibody study of the subcellular localization and DNA-stimulating activity of murine sarcoma virus-activated transformation-associated proteins.

Previously, we reported the monoclonal antibody detection of transformation-associated proteins (TAP) in ts110 murine sarcoma virus-transformed normal rat kidney (6M2) cells (Chan et al., 1986). In this study, we used the same monoclonal antibody to investigate the subcellular localization, the fate and the mitogenic activity of TAP, as well as the correlationship between TAP synthesis and the expression of transformation properties of 6M2 cells. It was found that TAP were localized in the cytoplasm (probably the Golgi apparatus) of 6M2 cells. TAP were found as three intracellular polypeptides (mol wt of 66K, 63K, and 60K, respectively), and were rapidly released into extracellular medium. Upon release, TAP changed to two extracellular polypeptides (mol wt of 68K and 64K, respectively). Furthermore, the synthesis of TAP was temperature sensitive and correlated closely with the expression of transformation properties of the 6M2 cells. TAP have been purified by monoclonal antibody-affinity column chromatography and found to have a synergistic effect with insulin in stimulating the DNA synthesis of normal rat kidney cells.

Animals

Acid mucopolysaccharide metabolism in leprosy. 2. Subcellular localization of hyaluronic acid and beta-glucuronidase in leprous infiltrates suggestive of a host-Mycobacterium leprae metabolic relationship.

Electron- and light microscopic analyses were conducted on leprosy skin biopsies relative to the origin of hyaluronic acid, which has previously been observed to be distributed inversely in ratio to the degree of cell- mediated immunity. The present study investigated the subcellular localization of hyaluronic acid and its degrading enzyme in various types of leprosy. Hyaluronic acid in some lepromatous leprosy cases was shown to be accumulated in the limiting membranes of the phagosomes of lepra cells and Myco-bacteria leprae have beta-glucuronidase which plays a role in the degradation of hyaluronic acid. Contrariwise, in tuberculoid leprosy, beta-glucuronidase was detected in the lysosomes of epithelioid cells and giant cells. This result suggests that the origin of hyaluronic acid is in histiocytes and at the same time it might suggest that M. leprae is in competition with enzymes of epithelioid cells for hyaluronic acid, whereas reduced or absent beta-glucuronidase in lepra cells enable bacilli to utilize the AMPS as a nutrient.

Acetylglucosaminidase

Subcellular localization of thyroxine 5'-deiodinase activity in bovine anterior pituitary.

Bovine anterior pituitary glands were fractionated by differential centrifugation. T4 5'-monodeiodination to T3 was found predominantly in microsomal fractions (M2; 105,000 . g pellet) enriched in glucose-6-phosphatase and 5'-nucleotidase activities. T4 5'-deiodinase activity in M2 fraction was 85.2 fmol T3/min X mg protein and represented an 8.5-fold enrichment over homogenate specific activity (10.6 fmol T3/min . mg protein). Further subcellular localization of the T4 5'-deiodinase was effected by discontinuous sucrose density gradient centrifugation. Maximum T4 5'-deiodinase activity was found in fraction P5 at the interface of densities 1.18/1.20 (200 fmol T3/min . mg protein) and correlated with the profile of glucose-6-phosphatase and not with that of 5'-nucleotidase, the maximum activity of which was recovered in fraction P1 at the interface of densities 1.03/1.12. Electron microscopic examination of the fractions confirmed that P5 contained in excess of 90% rough membranes in contrast to 10% or less in P1. Characterization of T4 5'-deiodinase activity was carried out in M2 preparations. The reaction was thiol dependent, requiring the presence of 50 mM dithiothreitol or more (Km, 38 mM), with a maximum velocity of 55-150 fmol T3/min . mg protein (n = 8). Enzyme activity was substrate dependent, with a Km for T4 between 35-70 nM. 5'-Monodeiodination of T4 was abolished by heating to 70 C for 30 min and was unaffected by EDTA. Propylthiouracil and methimazole did not inhibit T3 generation. Iopanoic acid, on the other hand, was a competitive inhibitor of the 5'-monodeiodination reaction, abolishing T3 production in a dose-dependent manner with a Ki of 3 microM. These data indicate that the bovine anterior pituitary contains significant T4 5'-deiodinase activity, which shares many properties of the type II 5'-deiodinase of the rat. Bovine anterior pituitary T4 5'-deiodinase appears to be predominantly localized in the rough endoplasmic reticulum.

Animals

Biochemical investigation of the subcellular localization of the estrogen-induced pro-glandular kallikrein in the rat anterior pituitary.

Glandular kallikrein (a trypsin-like serine protease) is a major estrogen-induced and dopamine-repressed protein in the rat anterior pituitary which appears to be associated with lactotrophs. In the pituitary the enzyme predominantly exists as a latent zymogen (pro-glandular kallikrein) which can be activated by trypsin. This study reports experiments employing biochemical techniques to investigate the subcellular localization of glandular kallikrein. Anterior pituitaries from estrogen-treated rats were fractionated on a discontinuous sucrose density gradient and the distribution of various organelles in the gradient was determined by conventional enzyme or protein marker assays. Each of the 8 organelle markers exhibited a unique distribution profile within the gradient. The distribution of glandular kallikrein was closely correlated (r = 0.91) with that of nucleoside diphosphatase (a marker for trans cisterna of the Golgi apparatus). For both glandular kallikrein and nucleoside diphosphatase, 35-45% of the total activity was found in Golgi zones of the gradient, and 18-22% was in the secretory vesicle fraction. In all of the subcellular fractions, 91-97% of the glandular kallikrein existed in the zymogen form (pro-glandular kallikrein). In Golgi fractions, 38% of the glandular kallikrein remained membrane-bound following freeze-thawing and two washes in hypotonic media; 94% of the nucleoside disphosphatase remained membrane-bound following such treatment. The results indicate that glandular kallikrein is most highly concentrated in trans cisternae of the Golgi apparatus with substantial activity also present in secretory vesicles. This localization is consistent with a role for glandular kallikrein as a prohormone processing enzyme in lactotrophs.

Animals

Absence of a carbohydrate modification does not affect the level or subcellular localization of three membrane glycoproteins in modB mutants of Dictyostelium discoideum.

The accumulation and localization of four developmentally regulated membrane glycoproteins were examined in a glycosylation mutant of the cellular slime mold Dictyostelium discoideum. As judged by immunoblot procedures using antipeptide antibodies, the levels of three of the glycoproteins, WGA80B, SP29A, and SP29B, were unaffected, but their apparent molecular masses were reduced by 14,000, 3,500 and 3,500 daltons, respectively. The level of the fourth glycoprotein, gp80, was reduced to below detectable limits. The reduced molecular sizes were apparently due to the absence of certain carbohydrate structures as judged by labeling Western blots with anti-carbohydrate antibodies and a lectin. Using immunofluorescence labeling of permeabilized and intact cells, the localization of WGA80B, SP29A, and SP29B, in intracellular vesicles and on the cell surface of prespore cells, was observed to be unaffected in the mutant cells. The developmentally regulated oligosaccharide structure(s) affected by the modB locus does not influence the subcellular localization and accumulation of these three glycoproteins in the prespore cells of this phylogenetically primitive organism.

Animals