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Biomedical subjects

S L Erlandsen

Publications and source records attributed to S L Erlandsen.

16 recordsLinked to original sources

Immunocytochemistry with osmium-fixed tissue. I. Light microscopic localization of growth hormone and prolactin with the unlabeled antibody-enzyme method.

Growth hormone and prolactin were localized on thin plastic sections of rat anterior pituitary gland and mammosomatotropic tumor MtTW15 that were fixed with osmium tetroxide (alone,mixed with aldehydes, or after aldehydes). Intense immunocytochemical staining for both antigens was obtained after plastic was removed from sections with an alcoholic solution of sodium hydroxide. The results indicated that antigenic determinants of rat prolactin and growth hormone were not completely destroyed or inactivated by fixation with osmium and embedment in epoxy resin, and that removal of the polymerized epoxy resin was necessary to obtain light microscopic postembedding immunocytochemical staining of these antigens. The results also demonstrated that tissues which have been conventionally processed for morphological evaluation by electron microscopy may be suitable for postembedding immunocytochemical staining of some antigens for light microscopy.

Animals

Immunocytochemical and histochemical studies on intestinal epithelial cells producing both lysozyme and mucosubstance.

The simultaneous demonstration of lysozyme using the unlabelled antibody enzyme method and mucosubstances by staining with the periodic acid-Schiff (PAS) and Alcian Blue pH 2.5 techniques has led to the identification of a new subpopulation of mucus-producing cells containing lysozyme in small intestinal specimens from normal rats and from patients with inflammatory bowel diseases. These cells, containing both mucosubstances and lysozyme, are located in the lateral walls of the crypts of Lieberkuhn, but can occasionally be found also in or near the tips of the villi. The specific staining for lysozyme was observed in the apical and/or basal cytoplasm of these mucus-producing cells and was readily detected in sections counterstained for mucosubstances with Alcian Blue. The localization of these mucus-producing cells was similar both in the normal rat and in the pathological human specimens. Absorption controls and controls where a non-immune serum was substituted for the specific antilysozyme serum confirmed the specificity of the lysozyme localization.

Animals

Heterogeneity of the MtTW15 mammosomatotropic tumor. I. Light microscopic evaluation of cell types by means of immunocytochemistry, morphometric quantitation, fluorescence cytophotometry and radioimmunoassay.

Large MtTW15 pituitary tumors produced 200- to 800-fold elevations in serum growth hormone (GH) and prolactin (PRL) levels. Female tumor hosts showed doubling in body weight, milk secretion, and a 2-fold hepatosplenomegaly. Pituitaries of host animals were reduced by about 50% in both weight and concentrations of GH and PRL. Large tumors were well-encapsulated, multinodular and showed variable amounts of necrosis and hemorrhage. Cytofluorometric analysis revealed a range of 100-fold in nuclear DNA content of tumor parenchymal cells which were chromophobic, pleomorphic and frequently mitotic. Concentrations of hormones in tumors were less than in normal pituitaries and highly variable with the ratio of GH/PRL ranging up to 30-fold within the same tumor. Immunostaining and linear scanning quantitation showed that about 50% of the tumor cells contained immunodetectable hormones. Comparison of immunostained adjacent sections showed that hormone-containing tumor cells were pleomorphic, unequally distributed within nodules, lacking in distinctive identifying morphological characteristics and that they contained GH or PRL but not both hormones simultaneously. Collectively our results show that large MtTW15 tumors are comprised of a markedly heterogeneous population of tumor cells and they suggest that the hormone-containing cells are monohormonal secreting tumor cells which can produce GH or PRL but not both hormones.

Animals

Immunoglobulins within human small-intestinal Paneth cells.

Human duodenal, jejunal, and ileal samples obtained at necropsy and by peroral and surgical biopsy, were studied by light microscopy using the unlabelled antibody enzyme method for imunocytochemical staining of lysozyme and immunoglobulins. Paneth cells contained IgA and IgG, but not IgD IgE, or IgM. Staining intensity indicated that IgA and IgG were present in amounts greater than in other epithelial cells. There was pronounced variation in the immunoglobulin content of Paneth cells. Rat Paneth cell containing IgA and lysozyme and are capable of the phagocytosis and degradation of microorganisms. These observations suggest that human Paneth cells may have similar functional capabilities.

Duodenum

Evidence for a complex life cycle and endospore formation in the attached, filamentous, segmented bacterium from murine ileum.

Light and electron microscope observations showed that the filamentous, segmented bacterium commonly found attached to the ileal epithelium of rats and mice undergoes a complex life cycle. Filaments comprising up to 90 segments were attached to the microvillous border of absorptive epithelial cells by a specialized terminal holdfast segment. Starting at the free end of the filament and progressing toward the attached end, undifferentiated segments were converted into reproductive or mother segments. Within each mother cell two new holdfast segments developed. As the holdfasts matured, their mother cells degenerated and released them into the intervillar space where they attached, grew, and divided to produce new segmented filaments. Alternately, in some filaments, newly formed but not yet released holdfasts were converted into endospores, which were released in the same manner as holdfasts, presumably to spread the bacterial colony to other members of the rodent population.

Animals

Immunocytochemical identification and localization of immunoglobulin A within Paneth cells of the rat small intestine.

Light microscopic immunocytochemistry was used to identify Paneth cells by their lysozyme content and to detect immunoglobulin antigens within a subpopulation of these cells. Antisera specific for the heavy chains of rat or human immunoglobulin A and for immunoglobulin light chain antigens produced specific staining of rat Paneth cells. The distribution of immunoglobulin staining varied between adjacent Paneth cells in the same crypt and between Paneth cells in adjacent crypts, as well as between Paneth cell populations of different animals. No staining of rat Paneth cells was detected using antisera specific for the heavy chain of immunoglobulins G or M. The specific staining of Paneth cells for immunoglobulin A and light chain antigens was blocked by absorption of each antiserum with its respective purified antigen. Absorption of these antisera with purified rat lysozyme did not affect staining and thereby eliminated the possibility of immunologic cross-reactivity between lysozyme and immunoglobulin antigens. It is suggested, in light of current concepts of Paneth cell function, that the immunoglobulin staining of Paneth cells may reflect their ability to phagocytize immunoglobulin A-coated microorganisms or immune complexes containing immunoglobulin A.

Animals

Ultrastructural localization of viral antigens using the unlabeled antibody-enzyme method.

Employing the unlabeled antibody enzyme method at the ultrastructural level, a comparison was made between preembedding staining and postembedding staining for the detection of viral antigens. The bacteriophage P1 absorbed to the surface of Shigella dysenteriae was used as a model system. Preembedding staining resulted in the specific deposition of peroxidase-antiperoxidase (PAP) complexes as an electron-dense coating around the viral heads. Disadvantages of the preembedding staining method included the agglutination of cells by the primary antiserum which produced a gradient of specific staining and the "bleeding" or migration of electron dense reaction product away from the sites of attached PAP complexes. The postembedding staining method had distinct advantages over the preembedding staining in that PAP complexes were deposited directly over exposed viral heads within the thin section. In addition, the specific immunostaining of viruses was uniform through the section and no artifactual migration of reaction product was observed.

Animals

Transplantation of islet tissue in the rat.

Long term reversal of alloxan diabetes has been accomplished by intraperitoneal isotransplantation of enzymatically dispersed neonatal pancreas. In contrast, allotransplanted recipients showed only a transient recovery from the alloxan diabetes followed by a return to the diabetic state at the time of the homograft rejection. These data strongly suggest that the reversal of the diabetic state was a consequence of the transplanted islets. This conclusion is further supported by quantitative analysis of biopsied pancreases from successfully reversed recipients which reveals only 3% of the normal beta cell mass. By comparison, recovery of transplanted islets composed primarily of aldehyde fuchsin positive beta cells was routinely accomplished in these recipients. Utilization of the more specific unlabeled immunoperoxidase method has revealed that some of the transplanted islets are composed of cells positive for glucagon and somatostatin, as well as insulin. Other recovered transplanted islets (generally smaller in size) are composed primarily of one cell type or the other. The presence of insulin, glucagon, somatostatin, and delete pancreatic polypeptide positive cells in the islets of normal rat pancreas has been confirmed. In addition, cells reacting positively for these hormones have been observed in the alloxan diabetic rat pancreatic islets and in islets from reversed recipients. The time required for the disappearance of glycosuria and hyperglycemia (usually occurring from one to eleven weeks posttransplantation) appeared to be related to the amount and age of the donor islet tissue transplanted. Fetal islet tissue was more effective on a per milligram basis in reversing the diabetic state. In addition, while reversal was obtained by transplantation of as little as 5 mg of neonatal islet tissue, relatively large amounts (20 mg) were required before successfully reversed recipients responded normally to glucose tolerance test. By comparison, a similar reversal of diabetes with normal response to glucose load was attained by transplanting only 3 mg of fetal islet tissue. Quantitative morphological evidence of large increases in absolute islet mass, obtained in fetal transplants at the renal subcapsular site suggests that the superiority of fetal islet donor tissue may by in its high growth potential. No adverse effects of an in vitro organ culture period, prior to transplantation, were observed with regard to the ability of neonatal tissue to reverse the diabetic state or for fetal islet tissue to continue to survive at the renal subcapsular site. Likewise, no advantage in regard to amelioration of the homograft rejection response was observed in cultured islet tissue; allotransplants of which were rejected at the kidney site.

Age Factors

Conditions critical for optimal visualization of bacteriophage adsorbed to bacterial surfaces by scanning electron microscopy.

The potential of scanning electron microscopy as a tool for the detection of viruses on cell surfaces has been studied using bacteriophage P1 adsorbed to Shigella dysenteriae as a model system. Viral particles were readily detectable by scanning electron microscopy on the surface of infected cells which were fixed with glutaraldehyde followed by postfixation in OsO4 and prepared by critical point drying. The virus-studded surface of the infected cells differed markedly from the relatively smooth surfaces of uninfected control cells. Examination of the same preparations with transmission electron microscopy revealed numerous viral particles adsorbed to the surfaces of infected cells, whereas the control cells were free of viruses as expected. Glutaraldehyde fixation alone did not preserve the surface detail of infected cells: cells adsorbed with viruses were not distinguishable from control cells by scanning electron microscopy although by transmission electron microscopy viruses could be visualized. Air drying from water or absolute alcohol resulted in unsatisfactory preservation as compared to the appearance of infected cells prepared by the critical point method. Thus, scanning electron microscopy is capable of resolving viral particles on cell surfaces, but detection of these particles is completely dependent both on the method of fixation and on the technique of drying used.

Adsorption