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J Wormmeester

Publications and source records attributed to J Wormmeester.

6 recordsLinked to original sources

Human epidermal Langerhans cells undergo profound morphologic and phenotypical changes during in vitro culture.

Morphology, phenotype, and enzyme activity of highly enriched (80%) unlabeled human epidermal Langerhans cells (LC) have been studied, with emphasis on changes during a short-term culture of three days in vitro. All freshly isolated LC contained Birbeck granules and expressed high levels of CD1a, CD1c, and MHC class II molecules HLA-DR, -DP, and -DQ. They have a weak to moderate expression of RFD1, C3biR, Fc gamma R, p 150/95, MHC class I molecules HLA-ABC, and of the adhesion molecules LFA-3 and ICAM-1, whereas no expression of LFA-1 and several monocyte/macrophage markers were detected. Human LC undergo profound changes during in vitro culture. Birbeck granules, C3biR, Fc gamma R, and p 150/95 were completely lost and the expression of CD1a and CD1c was markedly decreased or lost. Expression of molecules that have essential functions in antigen presentation remained present at the same level (MHC class II molecules and ICAM-1) or was markedly enhanced (LFA-3 and MHC class I). Highly remarkable was the dramatically enhanced expression of interdigitating cell marker RFD1. The monocyte/macrophage markers initially absent remained absent and the enzyme activity initially present (including ATPase and nonspecific esterase) remained present. In conclusion, the results in this report stress rapid alterations of human LC during in vitro culture, resulting in transformation into cells that have phenotypical characteristics of potent antigen presenting cells that resemble interdigitating cells.

Animals

Contrasting effects of interleukin 4 (IL-4) on the in vitro proliferation of human B cells is due to the presence of B cell subsets in different activation states.

Human tonsillar B lymphocytes proliferate in vitro after activation with immobilized anti-IgM antibodies in combination with interleukin 2 (IL-2) or interleukin 4 (IL-4). In addition to its proliferative effects, IL-4 is also able to inhibit B cell proliferation. An explanation for these different actions of the same protein is not as yet available. The susceptibility to the inhibitory action of IL-4 emerges at late time points after in vitro activation of the B cells, whereas IL-4 shows its growth promoting action during early stages of culture, indicating that activated IL-2 responsive B cells are the targets for IL-4 dependent inhibition. Freshly isolated tonsillar B lymphocytes also appear to be susceptible to IL-4 dependent suppression. Isotonic Percoll gradient centrifugation, that has been used by several groups as a standard procedure to isolate high density, resting used by several groups as a standard procedure to isolate high density, resting cells from tonsil B lymphocytes, does not result in separation of B cells with different in vitro proliferative response to IL-2 and IL-4. However, partial separation of cells with "resting" and "activated" phenotypes can be achieved by centrifugation in slightly hypotonic Percoll gradients. High-density fractions contain cells with a "resting" phenotype which after in vitro activation proliferate with IL-4 but not with IL-2. "Activated" B cells accumulate in the low-density fractions as concluded from the increased expression of transferrin receptors and HLA-DR molecules on these cells. However, these cells no longer proliferate in vitro with immobilized anti-IgM antibodies, possibly due to damage caused by the hypotonic treatment during centrifugation. Our data indicate that resting B cells when activated in vitro with immobilized anti-IgM antibodies proliferate primarily with IL-4 but not with IL-2. In contrast, about 15 hours after activation the cells become responsive to IL-2. At that stage, IL-4 becomes an inhibitory factor.

B-Lymphocytes

Enrichment of unlabeled human Langerhans cells from epidermal cell suspensions by discontinuous density gradient centrifugation.

In this report we introduce an alternative procedure for enrichment of human epidermal Langerhans cells (LC) from epidermal cell suspensions of normal skin. By means of discontinuous Ficoll-Metrizoate density gradient centrifugation, a fraction containing high numbers of viable, more than 80% pure LC was recovered, as judged by CD1a expression. The purity of the LC-enriched fraction appeared to be dependent on the percentage LC in the crude epidermal cell suspension. LC enriched by this method retained their accessory and antigen-presenting capacities, as determined in the Concanavalin-A induced T-cell response, in the allogeneic mixed leukocyte reaction and in the antigen-specific T-cell proliferation assay in vitro. The great advantage of this method is that it is simple and rapid and that the isolated LC are unlabeled.

Antigen-Presenting Cells

T cell differentiation within thymic nurse cells.

Thymic nurse cells (TNC), defined as in vitro isolation products of thymic tissue, are epithelial cells harboring in their cytoplasm up to 200 intact, actively dividing thymocytes which are completely surrounded by vacuolar membranes. The TNC plasma membrane expresses major histocompatibility complex class I (H-2 K/D) and class II (I-A) antigens. The expression of MHC class I and class II antigens on the TNC vacuolar membranes was investigated with an improved in situ labeling technique. The major histocompatibility complex phenotype of the vacuolar membranes is H-2 K/D+, I-A2+ and thus identical to the TNC plasma membrane phenotype. By using the labeling technique, the TNC thymocyte population was examined for expression of the T cell differentiation antigens Thy-1, peanut agglutinin, Lyt-1, and Lyt-2, and the antigen expression was related to resistance of this population to cortisone. The majority of TNC thymocytes in individual TNC were cortisone-sensitive and expressed the immature phenotype of cortical thymocytes (Thy-1hi, PNAhi, Lyt-1lo, Lyt-2). A minority of the TNC thymocytes were cortisone-resistant and expressed a mature phenotype (Thy-1lo, peanut agglutininlo, Lyt-1hi). The existence of this minor mature population was confirmed in vivo: cortisone-resistant thymocytes were associated with cortical epithelial cells scattered throughout the thymic cortex of mice treated with dexamethasone. The major histocompatibility complex positive microenvironment of TNC and the heterogeneity in phenotype and resistance to cortisone of the TNC thymocytes, which is related to the state of maturation, indicate that TNC play an important role in the selection and differentiation of T cells.

Animals