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Active clinical trials for "Leukemia"

Results 3741-3750 of 5979

Safety Assessment of Two Schedules of Intravenous Infusions of SNS-595 for the Treatment of Hematologic...

LeukemiaLymphocytic8 more

This study primarily determined the safety and tolerability of escalating doses of vosaroxin (SNS-595) in 2 dose schedules, and assessed the PK profile of vosaroxin and defined a recommended dose regimen for Phase 2 studies. Secondarily the study assessed potential biomarkers and antileukemic activity.

Completed20 enrollment criteria

Acute Myeloid Leukemia T Cell Depletion to Improve Transplants in Adults With Acute Myeloid Leukemia...

LeukemiaMyelocytic1 more

This study is a single arm Phase II, multicenter trial. It is designed to determine whether the anticipated endpoints for a T cell depleted transplant arm of a planned prospective randomized trial comparing T cell depleted and unmodified hematopoietic allografts are likely to be achieved in a multicenter study conducted by the Blood and Marrow Transplant Clinical Trials Network (BMT CTN or Network). The study population is patients with acute myeloid leukemia (AML) in first or second morphologic complete remission. The enrollment is 45 patients. Based on published results of unmodified transplants from HLA-matched siblings applied to patients with AML in first or second morphologic complete remission, a significant improvement in results with a graft modified as specified in this protocol would be expected if disease-free survival (DFS) at 6 months was greater than 75%, the true incidence of transplant-related mortality at 1 year was less than 30%, and the DFS rate at 2 years was greater 70% for patients transplanted in first remission and less than 60% for patients transplanted in second remission. Additional secondary endpoints include the following: graft failure rate and incidences of acute grade II-IV and chronic graft-versus-host disease (GVHD). Additionally, the trial will have target specific doses of CD34+ progenitors and CD3+ T cells to be obtained following fractionation with the CliniMACS system. Based on the results of this trial, a Phase III trial comparing T cell depleted peripheral blood stem cell transplants (PBSCT) with unmanipulated bone marrow or unmanipulated PBSCT will be designed.

Completed26 enrollment criteria

German Multicenter Trial for Treatment of Newly Diagnosed Acute Lymphoblastic Leukemia in Adults...

Adult Acute Lymphocytic Leukemia

The study evaluates the efficacy and tolerability of a risk- and subtype-adapted chemotherapy over one year, followed by randomized either intensified or conventional maintenance therapy. It includes a distinct protocol for the subgroup 'mature B-ALL',

Completed7 enrollment criteria

Treatment of Elderly Patients (>65 Years) With Acute Lymphoblastic Leukemia

Adult Acute Lymphocytic Leukemia

The aim of this study is to test feasibility and efficacy of a dose reduced chemotherapy in elderly patients with newly diagnosed acute lymphoblastic leukemia. The regimen consists of induction phase I and II followed by cyclic consolidation cycles, reinduction and maintenance therapy

Completed9 enrollment criteria

Genetically Engineered Lymphocytes, Cyclophosphamide, and Aldesleukin in Treating Patients With...

B-cell Chronic Lymphocytic LeukemiaExtranodal Marginal Zone B-cell Lymphoma of Mucosa-associated Lymphoid Tissue9 more

This phase I trial is studying the side effects of giving genetically engineered lymphocytes together with cyclophosphamide and aldesleukin in treating patients with relapsed or refractory mantle cell lymphoma or indolent B-cell non-Hodgkin lymphoma. Placing a gene that has been created in the laboratory into white blood cells may make the body build an immune response to kill cancer cells. Drugs used in chemotherapy, such as cyclophosphamide, work in different ways to stop the growth of cancer cells, either by killing the cells or by stopping them from dividing. Aldesleukin may stimulate the white blood cells to kill lymphoma cells. Giving genetically engineered lymphocytes together with cyclophosphamide and aldesleukin may be an effective treatment for mantle cell lymphoma and B-cell non-Hodgkin lymphoma

Completed25 enrollment criteria

Donor Stem Cell Transplant in Treating Patients With Hematologic Cancer or Other Diseases

Chronic Myeloproliferative DisordersLeukemia3 more

RATIONALE: Giving chemotherapy, such as fludarabine, busulfan, and melphalan, before a donor peripheral stem cell transplant or bone marrow transplant helps stop the growth of cancer or abnormal cells. It also helps stop the patient's immune system from rejecting the donor's stem cells. When the healthy stem cells from a donor are infused into the patient they may help the patient's bone marrow make stem cells, red blood cells, white blood cells, and platelets. Sometimes the transplanted cells from a donor can make an immune response against the body's normal cells. Giving tacrolimus, methotrexate, mycophenolate mofetil, and antithymocyte globulin before and after transplant may stop this from happening. Once the donated stem cells begin working, the patient's immune system may see the remaining cancer or abnormal cells as not belonging in the patient's body and destroy them (graft-versus-tumor effect). Giving an infusion of the donor's white blood cells (donor lymphocyte infusion) may boost this effect. PURPOSE: This phase II trial is studying how well donor stem cell transplant works in treating patients with hematologic cancer or other diseases.

Completed58 enrollment criteria

Alemtuzumab and Rituximab in Treating Patients With High-Risk, Early-Stage Chronic Lymphocytic Leukemia...

Leukemia

RATIONALE: Monoclonal antibodies, such as alemtuzumab and rituximab, can block cancer growth in different ways. Some block the ability of cancer cells to grow and spread. Others find cancer cells and help kill them or carry cancer-killing substances to them. Giving alemtuzumab together with rituximab may kill more cancer cells. PURPOSE: This phase II trial is studying the side effects and how well giving alemtuzumab together with rituximab works in treating patients with high-risk, early-stage chronic lymphocytic leukemia.

Completed30 enrollment criteria

A Phase I/II Study to Assess the Safety and Tolerability of APO866 for the Treatment of Refractory...

B-cell Chronic Lymphocytic Leukemia

This phase I/II study is designed to determine the safety and tolerability of APO866 for the treatment of refractory B-CLL not amenable to aHSCT. APO866 has shown to induce growth inhibition in cultures of a wide variety of human hematological malignant cells as well as in models with subcutaneously implanted human tumors. APO866 was considered to be safe and well-tolerated in a phase I study that treated 24 patients with advanced cancer. APO866 is administered by intravenous infusion continuously for 96 hours and is repeated every 4 weeks. In this study patients will receive only one cycle of treatment and the study endpoints will be evaluated 4 weeks after the start of infusion. Patients will be followed up for 12 weeks for safety.

Completed21 enrollment criteria

Safety, Pharmacokinetics, and Pharmacodynamics of Oral Azacitidine in Subjects With Myelodysplastic...

Myelodysplastic Syndromes (MDS)Chronic Myelomonocytic Leukemia (CMML)1 more

The purpose of this study is to determine whether a tablet form of azacitidine that taken by mouth is safe. This Phase I study will also look at different doses and different treatment schedules in order to better understand the effects (positive and negative) of oral azacitidine on the body and on the disease MDS, AML and CMML.

Completed19 enrollment criteria

Reduced Intensity Stem Cell Transplantation for Chronic Lymphocytic Leukemia Followed by Vaccination...

Chronic Lymphocytic Leukemia

The purpose of this research study is to assess the safety and immune activity of a vaccine made from the participant's own cancer cells, when administered after a reduced intensity transplant. In recent years, researchers at Dana-Farber Cancer Institute have discovered that vaccines made from a patients's own cancer cells, that have been engineered in the laboratory to produce a protein called GM-CSF, can be effective in stimulating a powerful immune response specific to that cancer.

Completed11 enrollment criteria
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