@article{GinzkeyEickerMargetetal.2013, author = {Ginzkey, Christian and Eicker, Sven and Marget, Matthias and Krause, J{\"o}rg and Brecht, Stefan and Westphal, Manfred and Hugo, Heinz-Hermann and Mehdorn, Maximilian and Steinmann, J{\"o}rg and Hamel, Wolfgang}, title = {Incomplete tumour control following DNA vaccination against rat gliomas expressing a model antigen}, series = {Acta Neurochirurgica}, volume = {155}, journal = {Acta Neurochirurgica}, number = {1}, doi = {10.1007/s00701-012-1526-7}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-126775}, pages = {51-59}, year = {2013}, abstract = {Background Vaccination against tumour-associated antigens is one approach to elicit anti-tumour responses. We investigated the effect of polynucleotide (DNA) vaccination using a model antigen (E. coli lacZ) in a syngeneic gliosarcoma model (9L). Methods Fisher 344 rats were vaccinated thrice by intramuscular injection of a lacZ-encoding or a control plasmid in weekly intervals. One week after the last vaccination, lacZ-expressing 9L cells were implanted into the striatum. Results After 3 weeks, in lacZ-vaccinated animals the tumours were significantly smaller than in control-vaccinated animals. In cytotoxic T cell assays lysis rates of >50 \% could only be observed in a few of the lacZ-vaccinated animals. This response was directed against lacZ-expressing and parental 9L cells but not against syngeneic MADB 106 adenocarcinoma cells. In Elispot assays interferon-γ production was observed upon stimulation with 9LlacZ and 9L wild-type but not MADB 106 cells. This response was higher for lacZ-immunized animals. All animals revealed dense infiltrates with CD8+ lymphocytes and, to a lesser extent, with NK cells. CD25-staining indicated cells possibly associated with the maintenance of peripheral tolerance to self-antigens. All tumours were densely infiltrated by microglia consisting mostly of ramified cells. Only focal accumulation of macrophage-like cells expressing ED1, a marker for phagocytic activity, was observed. Conclusion Prophylactic DNA vaccination resulted in effective but incomplete suppression of brain tumour formation. Mechanisms other than cytotoxic T cell responses as measured in the generally used in vitro assays appear to play a role in tumour suppression.}, language = {en} } @article{WilhelmSmetakSchaeferEckartetal.2014, author = {Wilhelm, Martin and Smetak, Manfred and Schaefer-Eckart, Kerstin and Kimmel, Brigitte and Birkmann, Josef and Einsele, Hermann and Kunzmann, Volker}, title = {Successful adoptive transfer and in vivo expansion of haploidentical γδ T cells}, series = {Journal of Translational Medicine}, volume = {12}, journal = {Journal of Translational Medicine}, number = {45}, doi = {10.1186/1479-5876-12-45}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-117290}, year = {2014}, abstract = {Background: The primary aim of this pilot study was to determine the feasibility and safety of an adoptive transfer and in vivo expansion of human haploidentical gamma delta T lymphocytes. Methods: Patients with advanced haematological malignancies who are not eligible for allogeneic transplantation received peripheral blood mononuclear cells from half-matched family donors. For that, a single unstimulated leukapheresis product was incubated with both the anti-CD4 and anti-CD8 antibodies conjugated to paramagnetic particles. The depletion procedure was performed on a fully automated CliniMACS (R) device according to the manufacturer's instructions. On average, patients received 2.17 x 10(6)/kg (range 0.9-3.48) γδ T cells with <1\% CD4-or CD8-positive cells remaining in the product. All patients received prior lymphopenia-inducing chemotherapy (fludarabine 20-25 mg/m(2) day -6 until day -2 and cyclophosphamide 30-60 mg/kg day -6 and -5) and were treated with 4 mg zoledronate on day 0 and 1.0x10(6) IU/m(2) IL-2 on day +1 until day +6 for the induction of gamma delta T cell proliferation in vivo. Results: This resulted in a marked in vivo expansion of donor γδ T cells and, to a lower extent, natural killer cells and double-negative αβ T cells (mean 68-fold, eight-fold, and eight-fold, respectively). Proliferation peaked by around day +8 and donor cells persisted up to 28 days. Although refractory to all prior therapies, three out of four patients achieved a complete remission, which lasted for 8 months in a patient with plasma cell leukaemia. One patient died from an infection 6 weeks after treatment. Conclusion: This pilot study shows that adoptive transfer and in vivo expansion of haploidentical γδ T lymphocytes is feasible and suggests a potential role of these cells in the treatment of haematological diseases.}, language = {en} } @article{EyrichRachorSchreiberetal.2013, author = {Eyrich, Matthias and Rachor, Johannes and Schreiber, Susanne C. and W{\"o}lfl, Matthias and Schlegel, Paul G.}, title = {Dendritic cell vaccination in pediatric gliomas: lessons learnt and future perspectives}, series = {Frontiers in Pediatrics}, journal = {Frontiers in Pediatrics}, doi = {10.3389/fped.2013.00012}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-96937}, year = {2013}, abstract = {Immunotherapy of malignant gliomas with autologous dendritic cells (DCs) in addition to surgery and radiochemotherapy has been a focus of intense research during the past decade. Since both children and adults are affected by this highly aggressive brain tumor, 10-15\% of the several hundred vaccinated patients represent children, making pediatric glioma patients the largest uniform pediatric vaccination cohort so far. In general, DC vaccination in malignant gliomas has been shown to be safe and several studies with a non-vaccinated control group could clearly demonstrate a survival benefit for the vaccinated patients. Interestingly, children and adolescents below 21 years of age seem to benefit even more than adult patients. This review summarizes the findings of the 25 clinical trials published so far and gives a perspective how DC vaccination could be implemented as part of multimodal therapeutic strategies in the near future.}, language = {en} }