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K Wonigeit

Publications and source records attributed to K Wonigeit.

At least 37 records · Page 2Linked to original sources

The fate of activated T cells migrating through the body: rescue from apoptosis in the tissue of origin.

After activation within a lymphoid tissue, T lymphocytes enter the blood, where they circulate and then re-enter many organs. However, they predominantly end up in the tissue of origin, a phenomenon so far thought to be caused by organ-specific homing. We analyzed the fate of T cells from different sources stimulated via the T cell receptor and CD28 and then injected intravenously into rats. Our results showed that preferential proliferation and reduced apoptosis, rather than preferential immigration, were responsible for the accumulation of activated T cells in the tissue of origin, explaining how immune responses can spread from site to site but still be restricted to certain regions. Manipulating the life span of such cells might be a promising approach to influencing immune responses.

Animals↗

Expression of the ectoenzyme RT6 is not restricted to resting peripheral T cells and is differently regulated in normal peripheral T cells, intestinal IEL, and NK cells.

The RT6 alloantigenic system of the rat has originally been defined on T lymphocytes of the peripheral lymphatic organs and has been considered to be selectively expressed on mature peripheral T cells. Studying NK cells and intestinal intraepithelial lymphocytes (IEL), we have now found that both cell types also express RT6 and that the expression patterns found for IEL and NK cells were markedly different from each other and also from the expression pattern previously described for T cells of the peripheral lymphatic organs. In lymph nodes, spleen, and blood both RT6- and RT6+ T cells have been found and the density of RT6 expression on the positive cells has been shown to vary over a broad range. In contrast more than 98% of intestinal IEL stained for RT6 and the RT6 density was about tenfold higher than on strongly positive T cells of the peripheral lymphatic organs. Furthermore, the same high RT6 density was also found on IEL of athymic nude rats althogh these cells, to a large extent, lacked other T cell markers. This probably indicates that RT6 expression is an early event in the maturation of intestinal IEL which can occur already before the expression of T cell-specific membrane molecules. The conclusion that the expression of RT6 may be differently regulated in IEL and other T cell populations was further substantiated by the observation that RT6 was also present on IEL of diabetes-prone BB rats which are known to lack RT6 positive T cells in peripheral lymphatic organs. For NK cells still another pattern of RT6 expression was found. Unlike peripheral T cells and IEL, only a small subset of NK cells in blood and spleen expressed RT6. The percentage of RT6 positive cells was increased by in vitro stimulation of isolated NK cells with high concentrations of recombinant rat IL-2 indicating that RT6 expression may be associated with an activated state in NK cells. Taken together, these findings demonstrate that the expression of RT6 is not restricted to T cells and is differently regulated in normal peripheral T cells, intestinal IEL, and NK cells. Since it has recently been demonstrated that the RT6 gene contains two functional promoter regions with major structural disparity it is very likely that the distinct patterns of RT6 expression in different cell types reflect the differential use of the two promoters. The development of this complex control of RT6 expression in evolution may have been driven by a beneficial effect resulting from the use of the RT6 molecular function by several different lymphocyte populations.

ADP Ribose Transferases↗

Expression of RT6 on activated rat T cells.

The gene products of the RT6 system have been demonstrated to be expressed on the majority of resting peripheral T cells but not on fully activated cytotoxic T cells and in vitro generated long term T cell lines. This has lead to the conclusion that T cell activation causes a loss of RT6 expression. In the present study this question was examined by analysing the expression of RT6 on T cell populations activated in vitro by the T cell mitogen ConA or by allogeneic stimulator cells and subsequently maintained in culture for several weeks. The results showed an initial increase in RT6 expression on most cells during the first two days of culture and a subsequent loss of RT6 expression in many activated cells. Substantial numbers of both CD4+ and CD8+ T cells, however, remained clearly RT6 positive. These cells were present during the entire observation period. The RT6 positive cells did not represent persisting unstimulated cells since they coexpressed CD25 and exhibited typical blast morphology. It is concluded that activation of T cells leads to loss of RT6 expression only in subsets of the CD4 and CD8 T cell populations. The previously reported finding that long term cultures contain only RT6 negative blast cells may indicate preferential survival of RT6 negative blasts rather than obligatory loss of RT6 expression after activation. The possibility is discussed that activated RT6-CD4+ T cells may be inflammatory Th1 cells and activated RT6+CD4+ T lymphoblasts may represent regulatory Th2 cells.

ADP Ribose Transferases↗

Positive and negative MHC class I recognition by rat NK cells.

The prompt rejection of transplanted allogeneic lymphocytes by rat NK cells in non-sensitized recipients (allogeneic lymphocyte cytotoxicity or ALC) is determined by MHC genes as well as by genes located in the NK complex. The same genetic control is found when NK alloreactivity is measured by an in vitro assay, and we have employed this assay to delineate the specificity of NK cells for the MHC. The MHC of the rat, RT1, contains class I genes situated on either side of the class II/class III region. The majority of these class I genes are located in the RT1.C region and expressed class I products usually behave as non-classical (class Ib) molecules. They do not serve as restriction elements for the vast majority of conventional alpha/beta T-cells, in contrast to those class I molecules encoded by one or more loci in the classical (class Ia) region, RT1.A. However, NK cells appear to recognize the products of either class I region. Immunogenetic studies suggest that NK cells are inhibited by RT1. A molecules, whereas RT1.C region molecules may have a dual role in regulating NK cytolytic activity, i.e. they either inhibit or activate natural killing. Based on these premises, a model is proposed in which identification of a target as self or non-self depends on different receptors for class I in single NK cells, interpreting coincident positive and negative signals from the various target class I molecules. The putative role of peptides presented by class I, the biological implications, and the evolution of the NK receptors and their ligands are discussed.

Animals↗

The lung as a source and a target organ for T- and B-lymphocytes.

In lung transplantation, a substantial number of donor leukocytes are transferred from the donor to the recipient by the graft. Using a rat model, it was analyzed in this study to what extent leukocytes leave the lung, to which phenotype they belong, and to which organs they migrate. The model used was the orthotopic transplantation of the left lung of LEW.7B(RT7b) rats into LEW(RT7a) recipients. Lung allografts are not rejected in this strain combination, which differs only in the RT7 system, a genetic polymorphism of CD45. Using the RT7b marker (monoclonal antibody His41), the distribution of donor leukocytes passively transferred with the graft was studied by immunohistology 2 wk after transplantation. At this time, 2.9 +/- 0.1% (n = 6) of the peripheral blood leukocytes in the recipients were derived from the donor lung. The donor cell population detected in the blood consisted of T cells (59 +/- 4%), B cells (5.1 +/- 0.2%) and a surprisingly high fraction of natural killer (NK) cells (36 +/- 3%). No monocytes or granulocytes were found. In lymph nodes, spleen and thymus donor-derived T- and B-cells could be shown in typical T- and B-areas, respectively. Donor-derived leukocytes were found in the liver and the skin. In the tissue and the bronchoalveolar lavage (BAL) of the host lung, predominantly T cells were found. Furthermore, in the donor tissue and BAL more than 70% of T- and B-cells were host type, demonstrating that the donor lung had been repopulated to a great extent by host lymphocytes. This supports the relevance of BAL as a diagnostic tool in lung diseases. Thus, the lung is an immunologically important site, releasing lymphocytes which migrate to other organs and also attracting many lymphocytes from the circulation.

Animals↗

Development of microchimerism in pediatric patients after living-related liver transplantation.

Microchimerism has been suggested to play an important role in the long-term acceptance of allogeneic organ grafts by transplant patients and for the maintenance of a state of donor-specific low responsiveness. In order to elucidate the kinetics of the development of chimerism we have performed a follow-up analysis in 10 pediatric patients with living-related liver transplantation (LRLTx). Blood samples obtained during the first 6 months and at 18 months post-transplant and skin biopsies taken at one month were analysed for the presence of donor cells by PCR using donor-specific HLA-DRB1 primer pairs or primers for a Y chromosome-specific sequence. Furthermore 13 long-term patients more than 2 yr after LRLTx were studied at two different time points. In the follow-up studies donor cells could be demonstrated in the blood of all patients immediately after transplantation. After a gradual decline all patients became chimerism-negative for several weeks or months. At 6 months, however, in five of eight patients tested and at 18 months in six of nine patients donor cells had reappeared. This biphasic pattern in the development of chimerism is proposed to reflect the occurrence of different donor-derived cell populations in the recipient. The population giving rise to the first wave of chimerism probably represents matured cells with a limited lifespan which are released from the graft into the circulation of the recipient during the first weeks after transplantation. The population of cells occurring with the second wave of chimerism is likely to have been generated by donor-derived cells with stem cell potential located either in the graft or in the hematopoetic organs of the recipient after emigration from the graft. This model may be able to explain fluctuations in the incidence and degree of microchimerism described in other patient populations during the first year post-transplant. Of the 13 long-term patients, chimerism could be demonstrated in 11. In seven patients it was detected in both blood and skin, in three patients the results obtained for blood and skin were discordant. In one patient only blood was analysed. It is not clear whether the negative results really reflected the absence of chimerism or whether the number of donor cells was below the level of detectability.

Adolescent↗

Immunoprophylaxis with a monoclonal anti-IL-2 receptor antibody in liver transplant patients.

The immunosuppressive effect of a monoclonal antibody (moAb), BT563, directed to the alpha-chain of the IL-2R (CD25), was analyzed in a prospective nonrandomized trial and a prospective randomized trial. Primary objectives were evaluation of the incidence of acute rejections and infections; secondary objectives were safety and tolerability of the moAb. A total of 28 patients were enrolled (phase II) to receive 10 mg/day of BT563 (12 days) as immunoprophylaxis in combination with cyclosporine, azathioprine, and low-dose steroids. Subsequently 32 patients were randomly assigned (phase III) to receive BT563 (10 mg/day) for 12 days or ATG (5 mg/kg/day) for 7 days in addition to cyclosporine and low-dose steroids. No side effects of the BT563 treatment were noted. The actuarial survival was 82% at 12 months in the phase II trial and 92% at 12 months in both arms of the phase III trial. There was one acute rejection in the phase II trial. No acute rejections were noted in the BT arm of the phase III trial and 5 acute rejections were treated in the ATG arm. In the phase II trial 7 infectious episodes were observed, while one infection was seen in the BT arm and 7 in the ATG arm of the triple immunosuppression phase III trial. In all patients circulation of coated CD25+ lymphocytes was observed during BT563 treatment; there was no evidence of depletion or modulation of CD25+ cells. Mean serum levels of BT563 ranged from 1.6 to 7.6 microgram/ml throughout the therapy. An antimurine response was seen in 82% (phase II) and 100% (phase III) of the patients. Antirabbit antibodies were found in 56% of the patients treated with ATG. Analysis of the antimurine response specificity revealed in 56% blocking anti-isotypic antibodies and only in 3% of the patients an anti-idiotypic response. The data of the study presented suggest that therapy with an anti IL-2R moAb is at least equal to ATG application according to the incidence of acute rejections and infections.

Acute Disease↗

Development, stability, and clinical correlations of allogeneic microchimerism after solid organ transplantation.

To assess the development, stability, and clinical relevance of donor-type microchimerism, skin and blood were analyzed in heart (n = 53) and liver (n = 18) transplant recipients by nested polymerase chain reaction. Microchimerism was detectable in 40 (75%) and 13 (72%) patients after heart and liver transplantation, respectively. In heart transplantation, chimerism-positive patients showed a lower frequency of acute rejection as compared with negative patients, although this was only of borderline statistical significance. Repeated intraindividual analyses demonstrated variable patterns of microchimerism over time, but changes did not correlate to the clinical state. In liver transplantation, chimeric state showed no clear correlation with the patients' immunological situation. Our results demonstrate that peripheral microchimerism frequently develops after different types of organ transplantation and represents a dynamic process but without diagnostic value to predict the immunological risk for individual patients.

Base Sequence↗

Negative regulation of rat natural killer cell activity by major histocompatibility complex class I recognition.

The cytolytic activity of human and mouse natural killer (NK) cells is negatively regulated by self major histocompatibility complex (MHC) class I molecules on potential target cells. In the rat, protection by RT1 class I gene products has so far not been formally shown although the complex effects of foreign and self RT1 genes on polyclonal NK cell activity suggest that MHC recognition can have both stimulatory and inhibitory effects. Here we report that the expression of self-MHC class I molecules on target cells strongly inhibits lysis by a long term NK cell line derived from LEW (RT1l) rats and by LEW NK cells activated by short-term culture in the presence of interleukin-2. This was demonstrated with mouse-rat hybridoma target cells expressing different rat MHC alleles and with mouse tumor target cells transfected with classical (RT1.Al) and nonclassical (RT1.Cl) rat MHC class I genes. With hybridoma target cells, the strongest reduction in lysis as compared to the parental mouse myeloma line was observed when "self" (LEW) MHC was expressed, while hybridomas expressing other MHC alleles showed less and variable reduction. Transfection of RT1.Al protected both L-929 fibroblasts and P815 mastocytoma cells from lysis by the NK cell line, while RT1.Cl only protected P815 cells, indicating that additional target cell properties regulate rat NK cell activity.

Animals↗

The role of MHC class I expression in rat NK cell-mediated lysis of syngeneic tumor cells and virus-infected cells.

In this study the role of MHC class I antigen expression in rat natural killer (NK) cell-mediated lysis was investigated. Various rat tumor cell lines and two Adenovirus (Ad)-transformed rat cell lines were tested for their expression levels of total MHC class I and two MHC class I alleles, RT1.A and RT1.C, by flow cytometry. Their susceptibility to NK cell-mediated lysis in relation to MHC class I expression was determined by 51Cr release assays. IFN-gamma is know to increase the expression of MHC class I. Therefore target cell with and without prior IFN-gamma treatment were examined for MHC class I expression and its effect on NK lysis. An significant inverse exponential relationship was found. To investigate the effect of virus infection on MHC class I expression and target cell lysis by NK cells, rat embryonal fibroblasts (REF) were infected with cytomegalovirus (CMV) and used as target cells for NK cell-mediated lysis. Results showed that these virus-infected cells were less susceptible to NK lysis than non-infected cells. Moreover, the non-infected cells expressed less MHC class I than the infected cells, indicating that also in this case, there was an inverse correlation between MHC class I expression and susceptibility to lysis by NK cells. Subsequently, we showed that sorted subsets of predominantly CD8-positive and CD8-negative NK cells lysed a MHC class I-positive tumor cell line at the same level. This suggests that CD8 is not likely to participate as a receptor for MHC class I in NK cell-mediated lysis in a syngeneic rat model.

Adenocarcinoma↗

The marginal blood pool of the rat contains not only granulocytes, but also lymphocytes, NK-cells and monocytes: a second intravascular compartment, its cellular composition, adhesion molecule expression and interaction with the peripheral blood pool.

To leave the blood, leucocytes marginate to the vessel wall. Granulocytes thereby form the so-called marginal pool. It is unclear to what extent such a second intravascular compartment also exists for lymphocytes subsets, NK-cells and monocytes. Samples of the peripheral blood and the marginal pool of the LEW rat were analysed by flow cytometry. In the marginal pool the percentage of granulocytes and monocytes was significantly higher compared to that of the peripheral blood, and the proportion of 'naive' T and B lymphocytes was decreased. The expression of LFA-1 was higher on all leucocyte subsets of the marginal pool except the granulocytes, whereas no differences were seen for the expression of other adhesion molecules (alpha 4-integrins, ICAM-1, CD2, L-selectin, and CD44). In addition, splenectomy influenced the cellular composition of peripheral blood and marginal pool differently and, after injection of blood leucocytes, these cells were found in both compartments showing its characteristic cellular composition. Thus, not only granulocytes, but also B and T lymphocyte subsets, NK-cells and monocytes form a second distinct intravascular compartment. This marginal pool probably influences the cellular composition of leucocyte subsets available for entry into the tissues.

Animals↗

Genes in two MHC class I regions control recognition of a single rat NK cell allodeterminant.

We have previously presented evidence suggesting that the non-classical class I region of the rat MHC, RT1.C, encodes polymorphic molecules which induce the cytolytic activity of alloreactive NK cells. Those studies used target cells from a panel of MHC congenic rat strains possessing recombined portions of the RT1a, RT1l and RT1u MHC haplotypes. We have now examined in addition a set of rat strains bearing MHC haplotypes recombinant between RT1av1 and RT1c, and a more complex picture of the MHC control of rat NK alloreactivity has emerged. The expression of a major NK allodeterminant [the allogeneic lymphocyte cytotoxicity (ALC) determinant 2 or ALC-2, defined operationally using cold-target inhibition assays], appears to be under the control of both the RT1.C and the classical class I RT1.A region. Similarly, the alloreactive repertoires of NK cells from these recombinant strains are influenced by elements encoded within these two MHC class I regions. We present a model in which the classical class I autoantigen RT1.Ac exhibits dominant inhibition of NK cytotoxicity specific for the stimulatory determinant ALC-2 shared by the nonclassical class I molecules RT1.Cav1, RT1.Ca and RT1.Cc, and also prevents the deletion of NK cells of this specificity during their development.

Animals↗

Evaluation of the Pro-Trac tacrolimus monoclonal whole-blood enzyme-linked immunosorbent assay for monitoring of tacrolimus levels in patients after kidney, heart, and liver transplantation.

In a prospective study, we evaluated a novel enzyme-linked immunosorbent assay (ELISA) (Pro-Trac) for determining tacrolimus (FK 506) concentrations in whole blood. Results obtained by the ELISA were compared with those obtained either by microparticle enzyme immunoassay (MEIA) or by high-performance liquid chromatography/mass spectrometry (HPLC-MS). The lower limit of quantitation of the ELISA was 0.5 microgram/L. The within-series coefficient of variation (CV) was < 11%. For spiked blood samples containing different concentrations of tacrolimus, interassay CV was 23.6% at 2.5 micrograms/L; however, at 15 and 60 micrograms/L, interassay CV was 44.9 and 50.8%, respectively. In crossover studies including blood samples from patients after liver, heart, or kidney transplantation, ELISA results correlated with those of the HPLC-MS (r = 0.73) as well as with those generated by MEIA (r = 0.82). The ELISA and MEIA showed 52.3 and 56.2% cross-reactivity with 15-O-demethyltacrolimus, respectively, but only 5.0 and 5.4% cross-reactivity with 13-O-demethyltacrolimus. We conclude that if assay precision in the upper range is improved, the Pro-Trac ELISA might be a valuable alternative to the MEIA for therapeutic drug monitoring of tacrolimus.

Chromatography, High Pressure Liquid↗

Backgrounds of early intragraft immune activation and rejection in liver transplant recipients. Impact of graft reperfusion quality.

In solid organ transplantation, acute rejections are most frequent during the first weeks. The aim of this study was to investigate the relationship between graft reperfusion injury and later immune responses against the graft. Intragraft immune activation was routinely monitored by transplant aspiration cytology in 47 recipients of hepatic allografts. As a parameter of reperfusion quality, oxygen saturation of hemoglobin (SO2) in hepatic tissue was determined intraoperatively by a near-infrared spectroscopy. Grafts that presented aspiration cytology scores of 2 or more (i.e., more than 10% of lymphocytes activated) at 1 week after operation (group I, n = 14) were associated with a higher heterogeneity of hepatic tissue SO2 at the end of operation (coefficient of variation in 12 points 18.3 +/- 18.3%, mean +/- SD) than grafts with no or very mild intragraft immune activation (group II, n = 33, 9.2 +/- 4.2%; P < 0.01). Group I was also accompanied by higher postoperative peak glutamic oxalacetic transaminase level (corrected by graft size, P < 0.05) and higher donor age (43.9 +/- 12.9 vs. 32.6 +/- 13.9 years, P < 0.02). Heterogenous reperfusion (P < 0.01), higher peak glutamic oxalacetic transaminase level (P < 0.01), and higher donor age (P < 0.05) were also associated with clinical rejection at 1 week (n = 10), but not with later-onset rejection (n = 11). These data suggest that intragraft immune activation and clinical rejection in the early phase after hepatic engraftment are strongly influenced by graft injury, which can be recognized early after reperfusion.

Adult↗