3 resultados para Infant acute leukemia

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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Akute Leukämien treten in allen Altersstufen auf. Akute lymphatische Leukämie (ALL) ist die häufigste Leukämie bei Kindern, während akute myeloischen Leukämien (AML) mit verschiedenen Untergruppen etwa 80% aller akuten Leukämien bei Erwachsenen ausmachen. Die Translokation t(8;21) resultiert in der Entstehung des Fusionsgens AML1-ETO und zählt zu den häufigen Translokationen bei der AML. Dabei fusioniert die DNA-bindende Domäne des AML1 mit dem fast kompletten ETO-Protein. AML1-ETO wirkt als dominanter Repressor der AML1-vermittelten transkriptionellen Regula-tion wichtiger hämatopoetischer Zielgene. Klinische Daten legen nahe, dass trotz der klarer Assoziation zwischen AML und der t(8;21) Translokation bei AML Patienten zusätzliche genetische Veränderungen – so genannte ‚second hits‘ – notwendig sind, um eine Leukämie effizient zu induzieren. Klinisch relevanten Komplimentationsonkogene sind unter anderen die aktivierte Rezeptortyrosinkinase FLT3, JAK2, NRAS, KRAS, c- KIT.rnZiel der vorliegenden Arbeit war es, ein Mausmodell zu etablieren, welches humane akute myeloische Leukämie rekapituliert und bei dem die Expression der entsprechen-den Onkogene reguliert werden kann. Als erstes wurde untersucht, ob eine gemeinsame Expression von AML1-ETO mit kRASG12D zur Induktion von Leukämie führen kann. Hierfür wurden Tiere generiert die gemeinsam AML1-ETO und kRASG12D unter der regulatorischen Sequenz des Tetrazyklin-Operators exprimierten. Der große Vorteil dieser Technologie ist die regulierbare Reversibilität der Genexpression. Um die Ex-pression der Zielgene auf blutbildende Zellen zu beschränken, wurden Knochenmark-chimären hergestellt. Im Beobachtungszeitraum von 12 Monaten führte die Expression von AML1-ETO und AML1-ETO/kRASG12D nicht zur Induktion einer akuten Leukä-mie. Die normale hämatopoetische Entwicklung war jedoch in diesen Tieren gestört. Der beobachtete Phänotyp entsprach einem myelodysplastischen Syndrome (MDS).rnIm zweiten Ansatz, wurden Tiere generiert die gemeinsam AML1-ETO und FLT3-ITD exprimierten. Hierfür wurden hämatopoetische Stammzellen aus ROSA26-iM2/tetO-AML1-ETO isoliert und mit Hilfe des retroviralen Vektors mit FLT3-ITD transduziert. In diesem Modell war es möglich, in kurzer Zeit eine akute Leukämie mit zu induzieren. Einige wenige Tiere hatten zum Zeitpunkt des Todes Anzeichen einer biphänotypischen Leukämie mit lymphatischen und myeloischen Blastenpopulationen. In drei Tieren in-duzierte die alleinige Expression von FLT3-ITD eine Leukämie. Alle Leukämien wurden durch FACS, Zytologie und Histopathologie bestätigt. Knochenmark- bzw. Milzzellen aus den erkrankten Tieren waren in der Lage nach Transfer in sekundäre Rezipienten eine Leukämie auszulösen. Somit besaßen sie ein uneingeschränktes Selbsterneue-rungspotential.rnEin erster Versuch, in dem AML1-ETO Expression in leukämischen Zellen abgeschaltet und FLT3-ITD mit Tyrosinkinase-Inhibitor inhibiert wurde, zeigte keine wesentliche Veränderung in der Leukämieprogression.rnDieses Leukämiemodell erlaubt die Rolle der beteiligten Onkogene während verschie-dener Stadien der Leukämie zu erforschen und damit möglicherweise neue Ansätze für Therapiestrategien zu entwickeln.

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Donor-derived CD8+ cytotoxic T lymphocytes (CTLs) eliminating host leukemic cells mediate curative graft-versus-leukemia (GVL) reactions after allogeneic hematopoietic stem cell transplantation (HSCT). The leukemia-reactive CTLs recognize hematopoiesis-restricted or broadly expressed minor histocompatibility and leukemia-associated peptide antigens that are presented by human leukocyte antigen (HLA) class I molecules on recipient cells. The development of allogeneic CTL therapy in acute myeloid leukemia (AML) is hampered by the poor efficiency of current techniques for generating leukemia-reactive CTLs from unprimed healthy donors in vitro. In this work, a novel allogeneic mini-mixed lymphocyte/leukemia culture (mini-MLLC) approach was established by stimulating CD8+ T cells isolated from peripheral blood of healthy donors at comparably low numbers (i.e. 10e4/well) with HLA class I-matched primary AML blasts in 96-well microtiter plates. Before culture, CD8+ T cells were immunomagnetically separated into CD62L(high)+ and CD62L(low)+/neg subsets enriched for naive/central memory and effector memory cells, respectively. The application of 96-well microtiter plates aimed at creating multiple different responder-stimulator cell compositions in order to provide for the growth of leukemia-reactive CTLs optimized culture conditions by chance. The culture medium was supplemented with interleukin (IL)-7, IL-12, and IL-15. On day 14, IL-12 was replaced by IL-2. In eight different related and unrelated donor/AML pairs with complete HLA class I match, numerous CTL populations were isolated that specifically lysed myeloid leukemias in association with various HLA-A, -B, or -C alleles. These CTLs recognized neither lymphoblastoid B cell lines of donor and patient origin nor primary B cell leukemias expressing the corresponding HLA restriction element. CTLs expressed T cell receptors of single V-beta chain families, indicating their clonality. The vast majority of CTL clones were obtained from mini-MLLCs initiated with CD8+ CD62L(high)+ cells. Using antigen-specific stimulation, multiple CTL populations were amplified to 10e8-10e10 cells within six to eight weeks. The capability of mini-MLLC derived AML-reactive CTL clones to inhibit the engraftment of human primary AML blasts was investigated in the immunodeficient nonobese diabetic/severe combined immune deficient IL-2 receptor common γ-chain deficient (NOD/SCID IL2Rγnull) mouse model. The leukemic engraftment in NOD/SCID IL2Rγnull was specifically prevented if inoculated AML blasts had been pre-incubated in vitro with AML-reactive CTLs, but not with anti-melanoma control CTLs. These results demonstrate that myeloid leukemia-specific CTL clones capable of preventing AML engraftment in mice can be rapidly isolated from CD8+ CD62L(high)+ T cells of healthy donors in vitro. The efficient generation and expansion of these CTLs by the newly established mini-MLLC approach opens the door for several potential applications. First, CTLs can be used within T cell-driven antigen identification strategies to extend the panel of molecularly defined AML antigens that are recognizable by T cells of healthy donors. Second, because these CTLs can be isolated from the stem cell donor by mini-MLLC prior to transplantation, they could be infused into AML patients as a part of the stem cell allograft, or early after transplantation when the leukemia burden is low. The capability of these T cells to expand and function in vivo might require the simultaneous administration of AML-reactive CD4+ T cells generated by a similar in vitro strategy or, less complex, the co-transfer of CD8-depleted donor lymphocytes. To prepare clinical testing, the mini-MLLC approach should now be translated into a protocol that is compatible with good manufacturing practice guidelines.

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Acute myeloid leukemia (AML) is a very aggressive cancer of the hematopoietic system. Chemotherapy and immunotherapeutical approaches including hematopoietic stem cell transplantation (HSCT) and donor lymphocyte infusion (DLI) are the only curative options available. The beneficial graft-versus-leukemia (GVL) effect of cellular immunotherapy is mostly mediated by donor-derived CD8+ T lymphocytes that recognize minor histocompatibility antigens (mHags) and leukemia-associated antigens (LAAs) presented on the surface of AML blasts (Falkenburg et al. 2008; Kolb 2008). A main complication is graft-versus-host disease (GVHD) that can be induced when cytotoxic T lymphocytes (CTLs) recognize broadly expressed antigens. To reduce the risk of GVHD, specific allogeneic T-cell therapy inducing selective GVL responses could be an option (Barrett & Le Blanc 2010; Parmar et al. 2011; Smits et al. 2011). This requires efficient in vitro strategies to generate AML-reactive T cells with an early differentiation phenotype as well as vigorous effector functions and humanized mouse models to analyze the anti-leukemic potential of adoptively transferred T cells in vivo. In this study, AML-reactive CTL clones and oligoclonal T-cell lines could be reliably generated from the naive subset of healthy HLA-class I-identical donors by stimulation with primary AML blasts in mini-mixed-lymphocyte / leukemia cultures (MLLCs) in eight different patient / donor pairs. These CTLs were promising candidates for cellular immunotherapy because of their relatively early differentiation phenotype and strong proliferative and lytic capabilities. The addition of the common γ-chain cytokine IL-21 to the stimulation protocol enabled more precursors to develop into potent leukemia-reactive CTLs, presumably by its beneficial effects on cell survival and antigen-specific proliferation during the first weeks of cultures. It also strengthened the early-stage phenotype. Three long-term cultured CTLs exemplarily transferred into leukemia-engrafted immunodeficient NSG mice mediated a significant reduction of the leukemic burden after a single transfusion. These results demonstrate that CTL clones with reactivity to patient-derived AML blasts can be isolated from the naive compartment of healthy donors and show potent anti-leukemic effects in vivo. The herein described allo-MLLC approach with in vitro “programmed” naive CTL precursors independent of a HSCT setting is a valuable alternative to the conventional method of isolating in vivo primed donor CTLs out of patients after transplantation (Kloosterboer et al. 2004; Warren et al. 2010). This would make leukemia-reactive CTLs already available at the time point of HSCT, when residual leukemia disease is minimal and the chances for complete leukemia eradication are high. Furthermore, leukemia-reactive CTLs effectively expanded by this in vitro protocol can be used as screening populations to identify novel candidate LAAs and mHags for antigen-specific immunotherapy.