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Biomedical subjects

G Rowden

Publications and source records attributed to G Rowden.

At least 55 records · Page 3Linked to original sources

Deficiency of myeloperoxidase and abnormal chromosome 1 occurs in variant (HL60) promyelocytes.

Maturation of normal polymorphonuclear neutrophils is characterized by successive periods of granule synthesis, a process which frequently is abnormal in leukemia. Recently, the human leukemic cell line HL60, displaying a promyelocytic phenotype, has been used to study granulocyte maturation. We describe a variant line of HL60, called HL60-A7, resulting from growth in actinomycin D, which contains atypical large azurophilic granules deficient in myeloperoxidase. The products of in-vitro translation of A7 RNA contained less than 5% of the immunoreactive MPO found in the parent line. Electrophoresis of plasma membrane polypeptides radioiodinated by the lactoperoxidase technique revealed several differences. Karyotypic analysis identified a consistent chromosome 1q+ abnormality which was not found in any of the parental cells examined. This constellation of differences between HL60 and HL60-A7, i.e. MPO deficiency, abnormal granule morphology, cell surface changes, and further cytogenetic abnormalities, may point to a common site sensitive to altered regulation in some leukemic promyelocytes.

Cells, Cultured↗

Quantitative studies on nonlymphoid mononuclear cell subpopulations in cutaneous infiltrates. I. Stage-related changes of dendritic nonlymphoid mononuclear cells, Langerhans' cells, and macrophages in lichen planus lesions.

In previous investigations on lichen planus, we suggested that in early lesions T4-positive cells might be antigen-specifically driven, whereas in late lesions T8-positive cells may be cytotoxic to keratinocytes. To verify this hypothesis, we investigated the following nonlymphoid mononuclear cell subpopulations in early versus late lichen planus lesions: interdigitating cells (phenotype: S100-positive, lysozyme-negative, T6-negative, M3-negative), Langerhans cells (phenotype: S100-positive, lysozyme-negative, T6-positive, M3-negative), macrophages (phenotype: S100-negative, lysozyme-positive, T6-negative, M3-positive). Interdigitating cells were moreover identified in semithin and ultrathin sections by distinctive morphological characteristics. The S100-positive/lysozyme-positive cell ratio was higher (p less than 0.01) in early lesions than late lesions. In dermis but not in epidermis (NS), of early lesions, T6-positive cells were less represented than S100 positive cells (p less than 0.025). Thus, Langerhans' cells largely predominated over interdigitating cells in epidermis, but the two populations were both represented in dermis. Lysozyme-positive and M3-positive cells, more abundant in late lesions than in early lesions (p less than 0.001), were often filled with pigment granules.

Antibodies, Monoclonal↗

S-100 protein content of dermal and oral mucosal blue nevi.

Three common blue nevi from skin of the trunk and upper extremities, and 5 from oral mucosae were studied using an immunoperoxidase stain for S-100 protein. The skin lesions were uniformly negative whereas all of the oral mucosal lesions contained numerous positively stained dendritic cells. This difference may, in part, be explained by the different embryologic origins of the connective tissue stromas; the connective tissues of the head and neck are thought to be of neural crest origin whereas the connective tissues in the rest of the body are of mesodermal origin. These findings strengthen and refine the association between S-100 protein content and neural crest derivation.

Humans↗

Quantitative assessment of Langerhans cells in actinic keratosis, Bowen's disease, keratoacanthoma, squamous cell carcinoma and basal cell carcinoma.

The quantitative distribution of Langerhans cells (LC) was studied in a range of pre-neoplastic, in-situ and invasive neoplastic skin lesions using an antibody to S100 protein and the indirect immunoperoxidase technique. LC numbers were increased within the lesions of actinic keratosis, Bowen's disease, keratoacanthoma, squamous cell carcinoma and basal cell carcinoma. In all lesions except actinic keratosis the LC density was also significantly increased in the adjacent non-neoplastic epithelium. The increased LC density in neoplastic epithelium suggests either that LC are being retained within the abnormal epithelium for longer periods of time than normal or that increased numbers of LC are being actively attracted by factors produced by the neoplastic epithelium. While reduction of intraepithelial LC density may allow the initiation of neoplasia the increased density observed in this study suggests that at later stages of tumour growth LC may have a functional role in the host response to cutaneous neoplasia.

Bowen's Disease↗

Tissue distribution of cyclosporine A in the mouse: a clue to toxicity?

Four groups of three C57/BL6J mice were each given a single i.p. injection of Cyclosporine A (CYA) 3 mg/kg, containing 3H-CYA with 10 microCi activity. The groups were sacrificed after 5 minutes and at 6, 12 and 24 hours after dosing, respectively. They were immediately flushed with PBS to clear the organs of blood, and the CYA content of blood, kidney, liver, brain, thymus, spleen, heart, lung, muscle and femur were measured by scintillation counting. Hemoglobin concentration in each tissue was negligible. Tissue uptake was expressed as the ratio of activity per gm tissue/activity per ml blood. Organs susceptible to CYA toxicity, e.g., brain, kidney and liver demonstrated retention of CYA relative to blood, as did thymus and spleen. Resistant organs, i.e., heart, lung and muscle did not. The pattern of CYA distribution and clearance corresponded with the known susceptibility of organs to CYA toxicity. CYA kinetics could therefore contribute to its toxicity by means of increased retention and/or accumulation in susceptible organs.

Animals↗

Langerhans cells and extra-epidermal dendritic cells. An investigation in laboratory animals and man with immunomorphological methods.

S-100 protein was demonstrated in the cytoplasm of dendritic cells (DCs) in normal and pathologic lymphoid tissues and epidermis in man and several other species. The presence of S-100 protein served to distinguish these cells from other mononuclear cells, most importantly from those of macrophage/histiocyte lineage. Fractionation procedures to isolate and enrich suspensions of DCs were coupled with immunocytochemical techniques to identify S-100-positive cells. Langerhans cells in the epidermis and in aural cholesteatomata and nodal, splenic, and thymic interdigitating cells were S-100-positive. Lymph node and splenic follicular dendritic cells (except in rats) were negative, indicating that this DC may be a separate cell type.

Animals↗

The possibility of distinguishing a subset of antigen-presenting cells from macrophages by means of anti S-100 protein sera. Dermal infiltrate of lichen planus as a model.

Macrophages may be distinguished from interdigitating cells and from Langerhans cells in paraffin sections, the latter cells being positive when an antiserum against brain S-100 protein is used. This antiserum was utilized to conduct a retrospective analysis of 10 cases of lichen planus, including both early and late lesions. In addition, staining of macrophages was carried out by means of anti-lysozyme, anti-alpha-1-antitrypsin and anti-alpha-1-antichymotrypsin. The anti-S-100 protein staining by immunoperoxidase methods showed large numbers of positive cells. Few macrophages were noted in the early lesions, but the ratios were reversed in the older lesions, in which macrophages predominated over dermal S-100-positive cells. Both Langerhans cells-interdigitating cells and macrophages could play important roles in various cutaneous disorders. The involvement of Langerhans cells-interdigitating cells or, on the other hand, of macrophages could distinguish among different pathological processes. Even in different evolutionary stages of the same lesion, as lichen planus, a different Langerhans cells-interdigitating cells/macrophages ratio could be important in explaining the pathogenetic development of the disease.

Antibodies↗

Identification of Langerhans cells in human gingival epithelium.

The purpose of this study was to qualitatively compare three recent techniques of Langerhans cells detection in oral epithelium and to quantitatively compare Langerhans cells in clinically normal and clinically inflamed human gingival biopsies. Eleven subjects were selected who displayed chronic periodontitis and moderate gingival inflammation. A quadrant associated with clinically inflamed tissues was not treated, while the remaining teeth were scaled and root-planed. Two gingival biopsies were taken: clinically normal, treated tissue; and clinically inflamed, untreated tissue. Langerhans cells were stained using HLD-DR, S-100 and OKT6. They were quantitated using a standard grid for OKT6-stained sections only. Approximately 5 times as many Langerhans cells were identified in the biopsy specimens of clinically inflamed human gingiva as in clinically normal gingiva of the same patient. Of the methods studied, OKT6 was qualitatively determined to be the best for visualization of these cells. An immunologic role in the host response to chronic periodontal disease is postulated for Langerhans cells.

Adult↗

Glial fibrillary acidic protein and S-100 protein in pineal supportive cells: an electron microscopic study.

Pineal supportive cells in a teleost were shown to contain the glial fibrillary acidic (GFA) and S-100 proteins by electron microscopic immunocytochemistry. Both proteins are known to exhibit a high degree of evolutionary conservation. The pineal photoreceptor cells did not stain for these marker proteins. A relationship between supportive cells and macroglial elements is therefore implied.

Animals↗

An experimental histopathologic study of surgical glove powders.

Tissue reactions to surgical glove powders, ie, talc (magnesium silicate) and Keoflo (low cross-linked cornstarch) were studied histologically from day 1 to 16 weeks. These materials were tested as a contaminant on the surface of surgical suture or in a pellet form implanted in abdominal muscle of rat. Use of Keoflo resulted in an intense acute inflammatory response, with a progressive decrease in the amount of starch with time after implant. By the fourth week, most of the starch had disappeared with minimal tissue damage and scar formation. Rats implanted with talc showed an initial mild to moderate acute inflammation followed by chronic inflammatory response and granuloma formation by the third day. From the fourth week on, granulomas showed talc crystals within the giant cells surrounded by histiocytes, lymphocytes, some collagen, and fibroblasts. This study indicates that talc molecules are not absorbed, whereas low cross-linked cornstarch is an absorbable substance; therefore the latter is a safe material for use as surgical glove powder.

Drug Implants↗

Immunohistochemical demonstration of S-100 protein antigen-containing cells in beryllium-induced, zirconium-induced and sarcoidosis granulomas.

S-100 protein has been detected in epidermal Langerhans cells, interdigitating reticulum cells, and large mononuclear cells of cutaneous T-cell lymphomas. Experimental data imply these cells are involved in the presentation of antigens and/or maturation of T-lymphocytes. The authors studied the morphology and distribution of S-100 protein antigen-containing cells in cutaneous sarcoidosis and metal-induced granulomas, both immunogenic and foreign-body types, with light and electron microscopic immunoperoxidase technics. Immunological reaction was seen in Langerhans cells, peripheral nerves, and granulomatous lesion dendritic cells. The latter showed a large, irregular nucleus and branching cytoplasm. They intermingled with other mononuclear cells in the granulomas but not with organized epithelioid cells. Morphometric quantification of dendritic cells in the three types of granulomas revealed statistically significant differences (P less than 0.005) and electron microscopy demonstrated their typical cytoplasmic appearance, without Birbeck granules. The increased number of dendritic cells in immunogenic granulomas, and their shared antigenic components with Langerhans cells suggest they act as accessory cells in eliciting the granulomatous response.

Beryllium↗

Comparison of S-100 and OKT6 antisera in human skin.

The monoclonal antibody OKT6 and antisera against S-100 protein have both been advocated as immunologic markers of Langerhans cells in the skin. S-100 antiserum has an advantage in its ability to stain Langerhans cells in paraffin tissues. In order to evaluate whether these antibodies stain equivalent numbers of Langerhans cells in skin, we compared the staining patterns of S-100 antiserum and OKT6 antibody on biopsy specimens from 40 patients with leprosy using immunoperoxidase techniques. Utilizing OKT6 antibody, greater numbers of positive Langerhans cells were found in the epidermis in tuberculoid leprosy, reversal reaction, and erythema nodosum leprosum than in lepromatous leprosy. However, these differences were not observed with the S-100 antiserum and, overall, fewer cells were found as compared with the OKT6 antibody. In the dermis both antibodies stained "dendritic cells" that were found encircling granulomas in tuberculoid leprosy and reversal reaction. Staining in lepromatous leprosy granulomas, in contrast to the epidermal staining pattern, revealed rare OKT6-positive cells, while S-100 cells were numerous and were more diffusely distributed throughout the granuloma. Our results indicate that antiserum to S-100 protein and OKT6 antibody stain morphologically similar cells (dendritic cells), but do not provide comparable results concerning distribution and frequency of these cells.

Antibodies, Monoclonal↗

Thymic interdigitating reticulum cells demonstrated by immunocytochemistry.

The lymphoid interdigitating cell (IDC) was investigated in human and rat thymus. A glial protein, S-100, was demonstrated in IDCs found in the human and rat thymic medulla by light microscopic immunocytochemistry. This marker served to distinguish IDCs from conventional macrophages of the thymic cortex. IDCs were S-100+, lysozyme-. Cortical macrophages were S-100-, lysozyme+. Thymic epithelial cells and lymphocytes possessed none of these markers. Examination of human fetal thymic tissue revealed that the IDC is present within the thymus very early in embryogenesis. Ultrastructural analysis of a developmental series of the rat thymus identified IDCs and macrophages. Medullary IDCs possessed many of the morphologic features of the epidermal Langerhans cell including the Birbeck granule. Cortical macrophages contained many inclusion bodies and lysosomes indicative of active phagocytosis. Some changes in IDC shape and structure were noted during maturation in the rat that may reflect the migration of this cell into the thymic parenchyma.

Animals↗

Cutaneous histiocytosis X. The presence of S-100 protein and its use in diagnosis.

The cellular localization of glial S-100 protein was investigated in paraffin-embedded sections of cutaneous histiocytosis X and in a variety of cutaneous infiltrative disorders, including juvenile xanthogranuloma, necrobiotic xanthogranuloma, papular xanthoma, eruptive histiocytoma, and reticulohistiocytosis. Immunoperoxidase staining with a rabbit anti-calf brain-S-100 antibody demonstrated strong and consistent activity in atypical histiocytes in all histiocytosis X specimens. No detectable S-100 protein was demonstrated in either histiocytes or giant cells in the non-X histiocytic disorders investigated. Positive controls were included within both groups of disorders in respect to melanocyte, epidermal Langerhans' cell, and dermal Schwann's cell staining. These findings are interpreted as evidence for diversity in the mononuclear phagocyte system and demonstrate the practicality of such a simple test in diagnostic problems involving infiltrative histiocytic disorders of the skin.

Histiocytosis, Langerhans-Cell↗

An immunoperoxidase investigation of S-100 protein in granular cell myoblastomas: evidence for Schwann cell derivation.

Five cases of granular cell myoblastoma have been studied for detection of the neuroectodermal protein S-100. Immunoperoxidase staining on paraffin sections, using an antibody raised against calf brain S-100 protein, was utilized to demonstrate positive cytoplasmic and nuclear reactivity in all cases. Negative staining in adjacent muscle and connective tissue elements was contrasted to in situ control staining of Schwann cells in peripheral nerves and staining of Langerhans cells and melanocytes in overlying stratified epithelia. These observations are interpreted as support for possible Schwann cell origin of granular cell myoblastomas.

Adult↗

Antigens specified by the Tla locus are expressed on the surface of murine Langerhans cells.

A monoclonal antibody against the murine thymus leukemia antigen TL, was employed to demonstrate the presence of the antigen on the surface of dendritic cells in murine epidermis of Tla-positive strains, B.10A and A.TH. Immunofluorescence and immunoperoxidase staining of EDTA-separated epidermal sheets demonstrated dendritic cells with a distribution pattern and density comparable to that noted for anti-IAk staining. Tla-negative mouse strains such as A.TL, C3H/HeJ, and C57BL/6 did not show any staining of dendritic epidermal cells. Epidermal cell suspensions similarly contained 2-4% cells with discrete surface staining with anti-TL antibody. Capping was noted in these cells. Once again positive results were noted only in appropriate Tla-positive strains. Control staining was carried out in all cases on frozen sections of thymii from mice. Thymocytes in the cortical zones and some dendritic cells at the corticomedullary junction were stained. TL antigen in mouse appears to be analogous to T-6 antigen previously detected on human Langerhans cells.

Animals↗

Acute lymphoblastic leukemia--hand mirror variant--viral immune interrelationship as demonstrated by ultrastructural studies.

Acute lymphoblastic leukemia--hand mirror variant--was extensively restudied in a 22-year-old white female who survived for 22 months without therapy. Immune complexes to the baboon endogenous virus (BaEV) were found in the bone marrow plasma of the relapse specimen in 1977, but not in the bone marrow plasma from the terminal state in 1979. Immunoperoxidase-tagged IgM antibody prepared from the patient's bone marrow plasma revealed BaEV antigen on the tip of the uropod of the HMC at the time immune complexes were found in the marrow. Absence of immune complexes in the marrow. Absence of immune complexes in the bone marrow in the terminal state suggested a failure of the patient's immune surveillance system and/or possible immune suppression by chemotherapy.

Adult↗