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E W Kamperdijk

Publications and source records attributed to E W Kamperdijk.

At least 19 recordsLinked to original sources

An improved and rapid method for the isolation of rat lymph node or spleen T lymphocytes for T cell proliferation assays.

To detect and compare the capacity of antigen presenting cells to present antigen in a T cell proliferation assay, it is necessary to obtain a pure population of antigen-primed T cells that gives low background proliferative responses. Therefore in this paper we present a newly developed isolation method of antigen-primed T lymphocytes from rat spleen or lymph nodes. This method uses a nylon wool column to deplete most of the adherent cells and B cells, followed by an indirect elimination method with magnetic beads to remove contaminating Ia-positive cells. We compared this method with two commonly used isolation methods, namely a 1.5 h adherence step, followed by a nylon wool column and a Sephadex G-10 column and a 1.5 h adherence step followed by a passage through two consecutive columns of Sephadex G-10. The best T cell enrichment (98% OX-19/52-positive cells) was achieved with the newly developed method, in which the contamination of Ia-positive cells, predominantly B cells and dendritic cells (DC), was diminished to less than 2%. The background response of this population was low and differed significantly with the common methods. Antigen-specific T cell responses induced by splenic DC, expressed as stimulation index, gave very specific responses and showed a steep rise with increasing DC concentrations compared to the common methods. Therefore we conclude that we developed an improved, rapid and reproducible method for the isolation of rat spleen or lymph node T lymphocytes suitable for T cell proliferation assays.

Animals

Differential effect of cyclosporin application on epithelial cells of the rat thymus. Immunohistochemical study.

Young adult male Wistar rats were given 30 mg per kg of cyclosporin (CS) for 21 consecutive days. A panel of monoclonal antibodies was used to study the phenotype of thymic epithelial cells. After treatment with CS, subcapsular epithelial cells, although phenotypically similar to medullary epithelial cells, were changed in a similar manner to phenotypically distinct epithelial cells of the deep cortex. These cells became enlarged, stockier and their cytoplasmic prolongations were thicker and coarser compared with control cells and their number was not decreased. In contrast, the number of medullary epithelial cells was markedly reduced, whereby the cells with the most mature phenotype (CK8+10-19- and CK8+10+19-) were the most prominently depleted. No proliferation of thymic epithelial cells was detected as monitored by incorporation of 5-bromodeoxyuridine.

Animals

Induction of an increased number of dendritic cells in the peritoneal cavity of rats by intraperitoneal administration of Bacillus Calmette-Guérin.

Recently we described the presence of a small number of DC among the peritoneal cells of steady state rats. These DC had the same morphological characteristics and a similar antigen-presenting capacity as DC isolated from the spleen. This study shows that in the peritoneal cavity, which is a non-lymphoid microenvironment, the number of DC increases after i.p. administration of BCG. Next to this relatively small influx of DC, the approximately three-fold increase of the total number of cells is predominantly caused by an enormous influx of neutrophilic granulocytes, and to a lesser extent by an influx of macrophages. The phenotype and the antigen-presenting capacity of peritoneal DC has not changed, while the number of Ia-positive M phi has increased. Nevertheless, due to a suppressive effect of the peritoneal M phi, the total peritoneal cell suspension is no longer capable of presenting antigen.

Animals

Isolation and characterization of dendritic cells from adenoids of children with otitis media with effusion.

Dendritic cells were enriched from adenoids of children with otitis media with effusion (OME) by density gradient centrifugation and culture techniques. An enrichment of 40-140-fold was obtained for dendritic cells. These cells were identified using morphology, enzyme cytochemistry, immunocytochemistry and functional criteria. Dendritic cells could be easily distinguished from macrophages. It appeared that the MoAb EBM11 (CD68) discriminated between dendritic cells and macrophages; in dendritic cells this activity was localized in a spot, whereas in macrophages it was found throughout the whole cytoplasm. The fractions enriched with dendritic cells showed a strong stimulatory effect on allogeneic T cells. These responses were MHC class II dependent since they could be blocked by anti-HLA-DR/DQ MoAbs. The data clearly show that dendritic cells from adenoids of children with OME still have functional capacities.

Adenoids

Morphological and functional characteristics of rat steady state peritoneal dendritic cells.

Dendritic cells (DC) are present in lymphoid organs and also in many non-lymphoid tissues. In this study, DC in the steady state peritoneal cavity of rats were identified morphologically and functionally. Approximately 1% of the peritoneal cells are DC. On cytocentrifuge preparations these cells had the same characteristics as lymph node and spleen DC: they had an irregular outline, all were strongly MHC class II positive and had acid phosphatase activity in a spot in a juxtanuclear position. Also ultrastructurally, peritoneal DC were similar to DC isolated from lymph node and spleen. Enrichment of peritoneal DC, using overnight culture and a Nycodenz gradient, resulted in a highly purified DC fraction. Functionally, peritoneal DC appeared to be very potent antigen-presenting cells, far more potent than peritoneal macrophages, which had an inhibitory rather than an accessory function.

Acid Phosphatase

Lymphoid and non-lymphoid cells in the adenoid of children with otitis media with effusion: a comparative study.

We characterized on immuno- and enzymecytochemical level the lymphoid and non-lymphoid cells in the adenoid of children with upper respiratory tract infections (URI) and otitis media with effusion (OME) and compared these with the adenoid of children with URI without OME and with the adenoid of 'healthy' children and adults. Besides macrophages and dendritic cells we also showed the presence of MHC class II positive, ciliated, epithelial cells. These non-lymphoid cells were present in all adenoids. However, their number was less than 1% of all cells. We found no difference in lymphocyte subsets from children with URI + OME compared with those from children with URI alone. These two groups showed a significant decrease of CD8-positive (suppressor/cytotoxic) cells and a slight increase in CD22-positive B cells in comparison to 'healthy' children. No difference was found in percentages of CD4-positive (helper/inducer) cells. The localization of the lymphoid subsets in adenoids of children with URI and/or OME did not differ from those of 'healthy' children and adults.

Adenoids

Transport of immune complexes from the subcapsular sinus into the lymph node follicles of the rat.

To study the mode of transport of immune complexes from the subcapsular sinus into the follicles of draining popliteal lymph nodes, horse radish peroxidase (HRP)-anti HRP was injected in rat footpads. Within six minutes, complexes were already present in the subcapsular sinus freely or attached to the plasma membrane of different types of cell including cells forming the stroma. A few minutes later, complexes were also seen in the deeper part of the outer cortex, and after two hours they had reached the periphery of the follicles. They were always seen scattered between lymphoid and non-lymphoid cells. After one day, complexes were present on well-developed follicular dendritic cells. After injection of HRP, no localization of this antigen was observed in the deeper part of the outer cortex including the follicles. These results strongly suggest that HRP-anti HRP complexes are passively transported through the outer cortex into the follicles where they are trapped and retained by follicular dendritic cells.

Animals

Characterization of dendritic cells, isolated from normal and stimulated lymph nodes of the rat.

Non-lymphoid dendritic cells were isolated from normal and paratyphoid vaccine-stimulated lymph nodes draining the rat skin. They were studied using enzymecytochemical, immunocytochemical and electron-microscopical methods. These cells had an irregular outline and an eccentrically situated nucleus. All showed acid phosphatase activity in a central area and expressed Ia antigen on the plasma membrane. Birbeck granules were exclusively present in dendritic cells isolated from lymph nodes in the induction phase of the immune response. This observation concurs with the presence of Birbeck granules in interdigitating cells in situ during the same period of the immune response. It is concluded that the dendritic cells are the in-vitro equivalents of the non-actively phagocytizing population of interdigitating cells.

Acid Phosphatase

Elimination of phagocytic cells in the spleen after intravenous injection of liposome-encapsulated dichloromethylene diphosphonate. Ultrastructural aspects of elimination of marginal zone macrophages.

It is shown ultrastructurally that intravenously injected and liposome-entrapped dichloromethylene diphosphonate (DMDP) causes marked damage to marginal zone macrophages in the mouse spleen which finally results in the elimination of these cells. Marginal zone lymphocytes are also affected by this treatment, probably as a result of action of the enzymes released by dying macrophages. Marginal zone macrophages largely disappear, 24 h after i.v. injection, leaving an open-meshed reticulum in which a few viable and necrotic lymphocytes are present. The proposed method to eliminate macrophages for some time may be used to study functional aspects of these cells in vivo.

Animals

The ontogenetic development of the follicular dendritic cell. An ultrastructural study by means of intravenously injected horseradish peroxidase (HRP)-anti-HRP complexes as marker.

After intravenous injection of horseradish peroxidase (HRP)-anti-HRP complexes in 21-day-old rats, complex trapping occurs on reticulum cells, forming the stroma of primary follicles of spleens. After intravenous injection of the same complexes in young adult rats (48 days old), trapping occurs on characteristic follicular dendritic cells (FDCs) located in well-developed germinal centers. These results strongly suggest that the follicular dendritic cell originates from a reticulum cell.

Aging