View clinical trials related to Acute Myeloid Leukemia.
Filter by:This trial is a study on all-trans retinoic acid in combination with induction and consolidation therapy as well as pegfilgrastim after consolidation therapy in younger patients with newly diagnosed acute myeloid leukemia (AML).
The primary goal of the study is to show that the treatment-related mortality of allogeneic hematopoietic stem cell transplantation an be significantly reduced by using a combination of 8 Gy total-body-irradiation and fludarabine in comparison to the conventional combination of 12 Gy TBI and 120 mg/kg Cyclophosphamide.
The concept of the investigators risk-adapted multicenter treatment trial for younger adults, AML HD98A, is based on the results of the AML HD93 trial and on published data. Definition of risk groups is different compared to the AML HD93 trial; high-risk: refractory disease after first induction therapy and/or high risk karyotype [abn(3q), -5/5q-, -7/7q-, abn(12p), abn(17p), complex]; intermediate-risk: complete remission after induction therapy and intermediate risk karyotype [normal, abn(11q23), abn(16q22), other rare aberrations]; low-risk: complete remission after induction therapy and low risk karyotype [t(8;21)]. Patients exhibiting a t(15;17) were treated in a separated trial (APL HD95). Treatment consists of a first induction therapy with ICE followed by a second cycle ICE in case of response to first induction therapy. Patients with refractory disease after first induction therapy are assigned to a salvage therapy with A-HAM (all-trans retinoic acid, high-dose cytarabine and mitoxantrone) and the search for potential hematopoietic stem cell donors is extended from the family to unrelated persons. All patients achieving a CR after induction therapy with ICE are assigned to a first consolidation therapy with HAM. For intermediate-risk patients a peripheral stem cell or a bone marrow harvest are intended during the hematological recovery after the first consolidation. Second consolidation therapy was stratified according to the risk definition. For high risk patients a allogeneic transplantation is assigned from a related or unrelated donor preferentially after a dose-intensified conditioning therapy. All patients with intermediate risk and an HLA-matched family donor are assigned to allogeneic transplantation. Intermediate-risk patients without a family donor and normal karyotype at diagnosis are randomized between an autologous stem cell transplantation and a second course of HAM. The other intermediate-risk patients are assigned to autologous transplantation. For low-risk patients a second course of HAM is assigned.
Recent studies of conventional chemotherapy for infants with high-risk hematologic malignancies show that the long-term disease-free survival is low. Although blood and marrow stem cell transplantation using an HLA identical sibling has improved the outcome for these children, less than 25% have this donor source available. Another option is haploidentical transplantation using a partially matched family member donor (i.e. parental donor). Although haploidentical transplantation has proven curative for some patients, this procedure has been hindered by significant complications, primarily regimen-related toxicity including infection and graft versus host disease (GVHD). Building on prior institutional trials, this study will provide patients a haploidentical graft depleted of T lymphocytes using the investigational device, CliniMACS selection system. One week after the transplant procedure, patients will also receive an infusion of additional donor derived white blood cells called Natural Killer (NK) cells in an effort to decrease risks for rejection of the graft, disease relapse, and regimen related toxicity. The primary objective of the study is to evaluate 1 year survival in infants with high risk hematologic malignancies who receive this study treatment.
Blood and marrow stem cell transplant has improved the outcome for patients with high-risk hematologic malignancies. However, most patients do not have an appropriate HLA (immune type) matched sibling donor available and/or are unable to identify an acceptable unrelated HLA matched donor through the registries in a timely manner. Another option is haploidentical transplant using a partially matched family member donor. Although haploidentical transplant has proven curative in many patients, this procedure has been hindered by significant complications, primarily regimen-related toxicity including GVHD and infection due to delayed immune reconstitution. These can, in part, be due to certain white blood cells in the graft called T cells. GVHD happens when the donor T cells recognize the body tissues of the patient (the host) are different and attack these cells. Although too many T cells increase the possibility of GVHD, too few may cause the recipient's immune system to reconstitute slowly or the graft to fail to grow, leaving the patient at high-risk for significant infection. For these reasons, a primary focus for researchers is to engineer the graft to provide a T cell dose that will reduce the risk for GVHD, yet provide a sufficient number of cells to facilitate immune reconstitution and graft integrity. Building on prior institutional trials, this study will provide patients with a haploidentical graft engineered to specific T cell target values using the CliniMACS system. A reduced intensity, preparative regimen will be used in an effort to reduce regimen-related toxicity and mortality. Two groups of patients were enrolled on this study. One group included those with high-risk hematologic malignancies and the second group included participants with refractory hematologic malignancies or undergoing a second transplant. The primary aim of the study was to estimate the relapse rate in the one group of research participants with refractory hematologic malignancies or those undergoing second allogeneic transplant. Both groups will be followed and analyzed separately in regards to the secondary objectives. This study was closed to accrual on April 2006 as it met the specific safety stopping rules regarding occurrence of severe graft vs. host disease. Although this study is no longer open to accrual, the treated participants continue to be followed as directed by the protocol.
For patients with acute myeloid leukemia (AML), allogeneic hematopoetic stem cell transplantation (HSCT) is one of the most potent treatment options currently available. In order to overcome the high risk of fatal treatment-related complications, reduced intensity and nonmyeloablative conditioning regimens for allogeneic HSCT are currently being explored in various hematological malignancies including AML. At least for allogeneic HSCT in AML, the optimal dose-intensity of preparative regimens for disease control at an acceptable rate of treatment-related lethal complications has not been determined. The investigators, therefore, evaluated reduced intensity myeloablative conditioning with 8 Gy TBI and fludarabine in AML patients considered ineligible for conventional conditioning in a phase 2 trial (data published in BLOOD by Stelljes et al., 2005). The results suggest that with 8 Gy TBI/fludarabine, conditioning related and unrelated donor transplants can be performed in AML patients in first or second complete remission (CR) with a remarkably low 2-year non relapse mortality (NRM) and satisfactory disease control. Based on these data a randomized phase 3 trial for patients with AML in CR≥2 is currently being conducted by the Cooperative German Transplant Study Group comparing TBI 8 Gy/fludarabine to conventionally dosed conditioning with TBI 12 Gy/cyclophosphamide.
MS-275 may stop the growth of cancer cells by blocking some of the enzymes needed for cell growth. Drugs used in chemotherapy, such as azacitidine, work in different ways to stop the growth of cancer cells, either by killing the cells or by stopping them from dividing. Giving MS-275 together with azacitidine may kill more cancer cells. This phase I trial is studying the side effects and best dose of MS-275 when given together with azacitidine in treating patients with myelodysplastic syndromes, chronic myelomonocytic leukemia, or acute myeloid leukemia.
This phase II trial studies pentostatin and donor lymphocyte infusion in preventing graft rejection in patients who have undergone donor stem cell transplant. Giving pentostatin and an infusion of the donor's T cells (donor lymphocyte infusion) after a donor stem cell transplant may stop the patient's immune system from rejecting the donor's stem cells. The donated stem cells may replace the patient's immune cells and help destroy any remaining cancer cells (graft-versus-tumor effect). Sometimes the transplanted cells from a donor can also make an immune response against the body's normal cells. Giving pentostatin before donor lymphocyte infusion may stop this from happening.
The purpose of this study is to determine the effectiveness of tipifarnib in patients aged 70 or more with acute myeloid leukemia. Tipifarnib belongs to a class of drugs called Farnesyl Transferase Inhibitors (FTI). It blocks proteins that make leukemia cells grow.
This study hopes to show that specially treated umbilical cord cells, called stem cells, can be safely given to a person after they receive chemoradiation therapy or chemotherapy for their illness. During chemoradiation therapy or chemotherapy, a person loses all of the cells that are needed to make the different types of cells in their blood, including their immune system cells. These cells must be replaced in order for the blood and immune systems to work properly. Some people receive bone marrow transplants or other types of stem cell transplants to get the cells they need. CB001 is being developed as an option for people who need bone marrow transplants or other types of transplants to replace those cells. It is also being developed for people who do not have the option of other types of transplants.