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Biomedical subjects

H Flad

Publications and source records attributed to H Flad.

6 recordsLinked to original sources

Identification of a novel dendritic cell-like subset of CD64(+) / CD16(+) blood monocytes.

Human monocytes (Mo) consist of a major subset of Fcgamma-receptor I (CD64)-positive typical low accessory phagocytes, and a minor CD64(-) DC-like subset with high T cell-accessory and IFN-alpha-releasing activity. Both populations also differentially express CD16 (Fcgamma-receptor III). Double labeling with anti-CD64 and anti-CD16 mAb, as performed here, identified four different subsets. The CD64(-) subset consists of CD64(-) / 16(+) cells with high antigen-presenting cell (APC) function and macrophage-like phenotype, and a CD64(-) / 16(-) subset of less active APC but which exhibits a higher mixed lymphocyte reaction (MLR) stimulating and IFN-alpha-producing capacity, possibly resembling plasmacytoid dendritic cell type II (DC2) blood precursors. As well as the majority of CD64(+) cells that appeared CD64(+) / 16(-) and represent typical low-accessory, CD14(high) Mo, we could identify and describe a novel minor subset of CD64(+) / 16(+) cells which is unique in combining typical DC and Mo characteristics in the same cell. These are high IL-12 production, high accessory capacity for antigen- or allogen-activated lymphocytes, and high expression of HLA-DR, CD86, and CD11c.

Antigen-Presenting Cells↗

Induction of proliferation and cytokine production in human T lymphocytes by lipopolysaccharide (LPS).

Lipopolysaccharide (LPS), also known as endotoxin, is a compound of the cell wall of Gram-negative bacteria, which has been demonstrated to induce inflammatory reactions in vitro as well as in vivo, including lethal shock. A great number of different cells have been documented to be reactive to LPS, e.g. monocytes/macrophages, vascular cells, polymorphonuclear cells, and even B lymphocytes. We have now established that T lymphocytes could also contribute to an inflammatory reaction to LPS. LPS is a potent inducer of human T-lymphocyte proliferation and cytokine production. The activation of T lymphocytes by LPS requires direct cell-to-cell contact with viable accessory monocytes. This interaction was found to be MHC-unrestricted, but strongly dependent on costimulatory signals provided by B7/CD28 interactions. The frequency of responding T lymphocytes is less than 1:1000. A very exciting finding was that not only monocytes, but also CD34+ hematopoietic stem cells, which circulate in peripheral blood in very low frequency, exert essential accessory cell activity during stimulation of T lymphocytes by LPS. In contrast, the response of T lymphocytes to conventional recall antigens is not controlled by blood stem cells. These conclusions are based on the observation that depletion of CD34-positive blood stem cells resulted in a complete loss of LPS-induced T-lymphocyte stimulation. Addition of CD34-enriched blood stem cells led to a recovery of reactivity of T lymphocyte to LPS. The characteristics of T-lymphocyte activation indicate that LPS is neither active as a mitogen, or as a superantigen, or as a classical antigen, but may activate T lymphocyte through a new, so far undescribed, mechanism. Furthermore, the involvement of hematopoietic blood stem cells in the activation of T lymphocytes by LPS demonstrates a role of these cells in inflammatory and immunological events.

Animals↗

The internalization time course of a given lipopolysaccharide chemotype does not correspond to its activation kinetics in monocytes.

The prerequisites for the initiation of pathophysiological effects of endotoxin (lipopolysaccharide [LPS]) include binding to and possibly internalization by target cells. Monocytes/macrophages are prominent target cells which are activated by LPS to release various pro- and anti-inflammatory mediators. The aim of the present study was to establish a new method to determine the binding and internalization rate of different LPS chemotypes by human monocytes and to correlate these phenomena with biological activity. It was found that membrane-bound LPS disappears within hours from the surface being internalized into the cell. Further, a correlation between the kinetics of internalization and the length of the sugar chain as well as an inverse correlation between the time course of internalization and LPS hydrophobicity was revealed. Comparison of the internalization kinetics of different LPS chemotypes with kinetics of tumor necrosis factor alpha release and kinetics of oxidative burst did not reveal any correlation of these parameters. These findings suggest that cellular internalization of and activation by LPS are mechanisms which are independently regulated.

Biological Transport, Active↗

TNF-alpha and HLA-DR genotyping as potential prognostic markers in pulmonary sarcoidosis.

We have analyzed the HLA-DRB1 alleles and -308 TNF-alpha gene polymorphism in 78 sarcoidosis patients and 50 controls. The sarcoidosis group as a whole did not show any significant correlation with the TNF-A or the HLA-DR alleles compared to the control group. However, the patient subgroups of Löfgren and non-Löfgren sarcoidosis exhibited significant allele associations. In the Löfgren patient group, the TNF-A2 and the HLA-DR3 alleles were represented significantly higher, with a highly significant relative risk resulting from the presence of the TNF-A2 or the HLA-DR3 allele or both. In the non-Löfgren patient group, the phenotype expressing HLA-DR2 and lacking TNF-A2 was significantly higher than in the Löfgren patient group. Due to these significant genetic differences in the subgroups of Löfgren and non-Löfgren sarcoidosis patients, we conclude that the genotyping of these two loci (-308 TNF-alpha promoter polymorphism and HLA-DR) may be of prognostic value for the course of disease in sarcoidosis.

Acute Disease↗

[The effect of parenteral nutrition on cellular immune status in patients with gastrointestinal cancer].

In a pilot study, the distribution of lymphocyte subpopulations in the peripheral blood and skin tests with recall antigens have been examined in 42 patients with gastrointestinal cancer before and during a perioperative parenteral hyperalimentation. Concerning the calories and the concentrations of amino acids and carbohydrates, two different solution regimens were applied. During parenteral nutrition with 2400 and 2200 kcal especially the absolute numbers of lymphocyte subpopulations increase reflecting the changes of total lymphocyte count. There was no marked difference between the 2 groups. Both solutions are qualified to balance the preoperative catabolic situation indicated by preoperative lymphopenia. This kind of parenteral nutrition did not influence the patient's cellular immunological status which was tested by 3 recall antigens. It must, however, be considered that the physical i.e. nutritional situation of the patients was not reduced to an extent where the immunological status was impaired. Our results suggest that in the perioperative period cancer patients should be supported by hypercaloric parenteral nutrition. On the other hand more sensitive immunological tests such as DNCB for skin testing and functional assays for in vitro tests are necessary to assess the effects of this kind of therapy.

B-Lymphocytes↗