Treatment Trials

38 Clinical Trials for Various Conditions

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COMPLETED
Reduced Intensity Chemotherapy and Radiation Therapy Before Donor Stem Cell Transplant in Treating Patients With Hematologic Malignancies
Description

This clinical trial studies the use of reduced intensity chemotherapy and radiation therapy before donor stem cell transplant in treating patients with hematologic malignancies. Giving low doses of chemotherapy, such as cyclophosphamide and fludarabine phosphate, before a donor stem cell transplant may help stop the growth of cancer cells. It may also 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). Reducing the intensity of the chemotherapy and radiation may also reduce the side effects of the donor stem cell transplant.

COMPLETED
Vorinostat, Tacrolimus, and Methotrexate in Preventing GVHD After Stem Cell Transplant in Patients With Hematological Malignancies
Description

This pilot phase II trial studies how well giving vorinostat, tacrolimus, and methotrexate works in preventing graft-versus-host disease (GVHD) after stem cell transplant in patients with hematological malignancies. Vorinostat, tacrolimus, and methotrexate may be an effective treatment for GVHD caused by a bone marrow transplant.

Conditions
Accelerated Phase Chronic Myelogenous LeukemiaAdult Acute Myeloid Leukemia in RemissionAdult Acute Myeloid Leukemia With 11q23 (MLL) AbnormalitiesAdult Acute Myeloid Leukemia With Del(5q)Adult Acute Myeloid Leukemia With Inv(16)(p13;q22)Adult Acute Myeloid Leukemia With t(15;17)(q22;q12)Adult Acute Myeloid Leukemia With t(16;16)(p13;q22)Adult Acute Myeloid Leukemia With t(8;21)(q22;q22)Adult Grade III Lymphomatoid GranulomatosisB-cell Chronic Lymphocytic LeukemiaChronic Myelogenous Leukemia, BCR-ABL1 PositiveChronic Myelomonocytic LeukemiaChronic Phase Chronic Myelogenous LeukemiaContiguous Stage II Adult Burkitt LymphomaContiguous Stage II Adult Diffuse Large Cell LymphomaContiguous Stage II Adult Diffuse Mixed Cell LymphomaContiguous Stage II Adult Diffuse Small Cleaved Cell LymphomaContiguous Stage II Adult Immunoblastic Large Cell LymphomaContiguous Stage II Adult Lymphoblastic LymphomaContiguous Stage II Grade 1 Follicular LymphomaContiguous Stage II Grade 2 Follicular LymphomaContiguous Stage II Grade 3 Follicular LymphomaContiguous Stage II Mantle Cell LymphomaContiguous Stage II Marginal Zone LymphomaContiguous Stage II Small Lymphocytic LymphomaCutaneous B-cell Non-Hodgkin LymphomaExtranodal Marginal Zone B-cell Lymphoma of Mucosa-associated Lymphoid TissueGraft Versus Host DiseaseIntraocular LymphomaMyelodysplastic Syndrome With Isolated Del(5q)Myelodysplastic/Myeloproliferative Neoplasm, UnclassifiableNodal Marginal Zone B-cell LymphomaNoncontiguous Stage II Adult Burkitt LymphomaNoncontiguous Stage II Adult Diffuse Large Cell LymphomaNoncontiguous Stage II Adult Diffuse Mixed Cell LymphomaNoncontiguous Stage II Adult Diffuse Small Cleaved Cell LymphomaNoncontiguous Stage II Adult Immunoblastic Large Cell LymphomaNoncontiguous Stage II Adult Lymphoblastic LymphomaNoncontiguous Stage II Grade 1 Follicular LymphomaNoncontiguous Stage II Grade 2 Follicular LymphomaNoncontiguous Stage II Grade 3 Follicular LymphomaNoncontiguous Stage II Mantle Cell LymphomaNoncontiguous Stage II Marginal Zone LymphomaNoncontiguous Stage II Small Lymphocytic LymphomaPost-transplant Lymphoproliferative DisorderPrimary Central Nervous System Hodgkin LymphomaPrimary Central Nervous System Non-Hodgkin LymphomaRecurrent Adult Acute Myeloid LeukemiaRecurrent Adult Burkitt LymphomaRecurrent Adult Diffuse Large Cell LymphomaRecurrent Adult Diffuse Mixed Cell LymphomaRecurrent Adult Diffuse Small Cleaved Cell LymphomaRecurrent Adult Grade III Lymphomatoid GranulomatosisRecurrent Adult Hodgkin LymphomaRecurrent Adult Immunoblastic Large Cell LymphomaRecurrent Adult Lymphoblastic LymphomaRecurrent Grade 1 Follicular LymphomaRecurrent Grade 2 Follicular LymphomaRecurrent Grade 3 Follicular LymphomaRecurrent Mantle Cell LymphomaRecurrent Marginal Zone LymphomaRecurrent Small Lymphocytic LymphomaRefractory AnemiaRefractory Anemia With Excess BlastsRefractory Anemia With Ringed SideroblastsRefractory Chronic Lymphocytic LeukemiaRefractory Cytopenia With Multilineage DysplasiaRefractory Hairy Cell LeukemiaRelapsing Chronic Myelogenous LeukemiaSecondary Central Nervous System Hodgkin LymphomaSecondary Central Nervous System Non-Hodgkin LymphomaSmall Intestine LymphomaSplenic Marginal Zone LymphomaStage I Adult Burkitt LymphomaStage I Adult Diffuse Large Cell LymphomaStage I Adult Diffuse Mixed Cell LymphomaStage I Adult Diffuse Small Cleaved Cell LymphomaStage I Adult Hodgkin LymphomaStage I Adult Immunoblastic Large Cell LymphomaStage I Adult Lymphoblastic LymphomaStage I Chronic Lymphocytic LeukemiaStage I Grade 1 Follicular LymphomaStage I Grade 2 Follicular LymphomaStage I Grade 3 Follicular LymphomaStage I Mantle Cell LymphomaStage I Marginal Zone LymphomaStage I Small Lymphocytic LymphomaStage II Adult Hodgkin LymphomaStage II Chronic Lymphocytic LeukemiaStage III Adult Burkitt LymphomaStage III Adult Diffuse Large Cell LymphomaStage III Adult Diffuse Mixed Cell LymphomaStage III Adult Diffuse Small Cleaved Cell LymphomaStage III Adult Hodgkin LymphomaStage III Adult Immunoblastic Large Cell LymphomaStage III Adult Lymphoblastic LymphomaStage III Chronic Lymphocytic LeukemiaStage III Grade 1 Follicular LymphomaStage III Grade 2 Follicular LymphomaStage III Grade 3 Follicular LymphomaStage III Mantle Cell LymphomaStage III Marginal Zone LymphomaStage IV Adult Burkitt LymphomaStage IV Adult Diffuse Large Cell LymphomaStage IV Adult Diffuse Mixed Cell LymphomaStage IV Adult Diffuse Small Cleaved Cell LymphomaStage IV Adult Hodgkin LymphomaStage IV Adult Immunoblastic Large Cell LymphomaStage IV Adult Lymphoblastic LymphomaStage IV Chronic Lymphocytic LeukemiaStage IV Grade 1 Follicular LymphomaStage IV Grade 2 Follicular LymphomaStage IV Grade 3 Follicular LymphomaStage IV Mantle Cell LymphomaStage IV Marginal Zone LymphomaStage IV Small Lymphocytic LymphomaTesticular LymphomaWaldenström Macroglobulinemia
COMPLETED
Differentiation Therapy With Decitabine in Treating Patients With Myelodysplastic Syndrome
Description

RATIONALE: Decitabine may help myelodysplastic cells become more like normal stem cells. PURPOSE: This clinical trial studies differentiation therapy with decitabine in treating patients with myelodysplastic syndrome.

COMPLETED
Pilot of Abatacept-based Immunosuppression for Prevention of Acute GvHD During Unrelated Donor HCT
Description

The primary objective of the study is to determine the safety and tolerability when adding abatacept to acute Graft versus Host Disease in transplants for malignant diseases using unrelated donor bone marrow or peripheral blood stem cell grafts.

COMPLETED
Donor Peripheral Blood Stem Cell Transplant and Pretargeted Radioimmunotherapy in Treating Patients With High-Risk Advanced Acute Myeloid Leukemia, Acute Lymphoblastic Leukemia, or Myelodysplastic Syndrome
Description

This phase I trial studies pretargeted radioimmunotherapy and donor peripheral blood stem cell transplant employing fludarabine phosphate and total-body irradiation (TBI) to treat patients with high-risk acute myeloid leukemia, acute lymphoblastic leukemia, or myelodysplastic syndrome. Giving chemotherapy drugs, such as fludarabine phosphate, and TBI before a donor peripheral blood stem cell transplant helps stop the patient's immune system from rejecting the donor's stem cells. Radiolabeled monoclonal antibodies can be combined with fludarabine phosphate and TBI to find cancer cells and kill them without harming normal cells. Pretargeted radioimmunotherapy (PRIT) allows for further improved targeting of tumor cells over standard directly labeled antibodies.

TERMINATED
Iodine I 131 Monoclonal Antibody BC8, Fludarabine Phosphate, Cyclophosphamide, Total-Body Irradiation and Donor Bone Marrow Transplant in Treating Patients With Advanced Acute Myeloid Leukemia, Acute Lymphoblastic Leukemia, or High-Risk Myelodysplastic Syndrome
Description

This phase I trial studies the side effects and best dose of iodine I 131monoclonal antibody BC8 when given together with fludarabine phosphate, cyclophosphamide, total-body irradiation, and donor bone marrow transplant, and to see how well they work in treating patients with acute myeloid leukemia or acute lymphoblastic leukemia that has spread to nearby or other places in the body (advanced), or high-risk myelodysplastic syndrome. Giving chemotherapy drugs, such as fludarabine phosphate and cyclophosphamide, and total-body irradiation before a donor bone marrow transplant helps stop the growth of cancer or abnormal cells and helps stop the patient's immune system from rejecting the donor's stem cells. Also, radiolabeled monoclonal antibodies, such as iodine I 131 monoclonal antibody BC8, can find cancer cells and carry cancer-killing substances to them without harming normal 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 cyclophosphamide together with mycophenolate mofetil and tacrolimus after the transplant may stop this from happening. Giving a radiolabeled monoclonal antibody together with donor stem cell transplant, fludarabine phosphate, cyclophosphamide, mycophenolate mofetil, and tacrolimus may be an effective treatment for advanced acute myeloid leukemia, acute lymphoblastic leukemia, or myelodysplastic syndromes.

COMPLETED
MS-275 and GM-CSF in Treating Patients With Myelodysplastic Syndrome and/or Relapsed or Refractory Acute Myeloid Leukemia or Acute Lymphocytic Leukemia
Description

This phase II trial is studying how well giving MS-275 together with GM-CSF works in treating patients with myelodysplastic syndrome and/or relapsed or refractory acute myeloid leukemia. MS-275 may stop the growth of cancer cells by blocking some of the enzymes needed for cell growth and by blocking blood flow to the cancer. Colony-stimulating factors, such as GM-CSF, may increase the number of immune cells found in bone marrow or peripheral blood. Giving MS-275 together with GM-CSF may be an effective treatment for myelodysplastic syndrome and acute myeloid leukemia

COMPLETED
Fludarabine Phosphate and Total Body Irradiation Followed by a Donor Peripheral Stem Cell Transplant in Treating Patients With Myelodysplastic Syndromes or Myeloproliferative Disorders
Description

This phase II trial studies the side effects and best dose of total-body irradiation when given together with fludarabine phosphate followed by a donor peripheral stem cell transplant in treating patients with myelodysplastic syndromes (MDS) or myeloproliferative disorders (MPD). Giving low doses of chemotherapy, such as fludarabine phosphate, and total-body irradiation before a donor peripheral blood stem cell transplant helps stop the growth of cancer cells. Giving chemotherapy or radiation therapy before or after transplant also stops 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 cyclosporine and mycophenolate mofetil after the transplant may stop this from happening.

TERMINATED
Iodine I 131 Monoclonal Antibody BC8, Fludarabine Phosphate, Total Body Irradiation, and Donor Stem Cell Transplant Followed by Cyclosporine and Mycophenolate Mofetil in Treating Patients With Advanced Acute Myeloid Leukemia or Myelodysplastic Syndrome
Description

This phase II trial studies the side effects and best dose of iodine I 131 monoclonal antibody BC8 when given together with fludarabine phosphate, total-body irradiation, and donor stem cell transplant followed by cyclosporine and mycophenolate mofetil in treating patients with acute myeloid leukemia or myelodysplastic syndrome that has spread to other places in the body and usually cannot be cured or controlled with treatment. Giving chemotherapy drugs, such as fludarabine phosphate, and total-body irradiation before a donor peripheral blood stem cell transplant helps stop the growth of cancer or abnormal cells and helps stop the patient's immune system from rejecting the donor's stem cells. Also, radiolabeled monoclonal antibodies, such as iodine I 131 monoclonal antibody BC8, can find cancer cells and carry cancer-killing substances to them without harming normal 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 fludarabine phosphate and total-body irradiation before the transplant together with cyclosporine and mycophenolate mofetil after the transplant may stop this from happening. Giving a radiolabeled monoclonal antibody together with donor stem cell transplant, cyclosporine, and mycophenolate mofetil may be an effective treatment for advanced acute myeloid leukemia or myelodysplastic syndromes.

COMPLETED
Lenalidomide in Treating Young Patients With Relapsed or Refractory Solid Tumors or Myelodysplastic Syndromes
Description

This phase I trial is studying the side effects and best dose of lenalidomide in treating young patients with relapsed or refractory solid tumors or myelodysplastic syndromes. Lenalidomide may stop the growth of solid tumors or myelodysplastic syndromes by blocking blood flow to the cancer. It may also stimulate the immune system in different ways and stop cancer cells from growing.

COMPLETED
Radiolabeled Monoclonal Antibody Therapy, Fludarabine Phosphate, and Low-Dose Total-Body Irradiation Followed by Donor Stem Cell Transplant and Immunosuppression Therapy in Treating Older Patients With Advanced Acute Myeloid Leukemia or High-Risk Myelodysplastic Syndromes
Description

This phase I trial studies the side effects and best dose of iodine I 131 monoclonal antibody BC8 when given together with fludarabine phosphate and low-dose total-body irradiation followed by donor stem cell transplant and immunosuppression therapy in treating older patients with acute myeloid leukemia or high-risk myelodysplastic syndromes that cannot be controlled with treatment. Radiolabeled monoclonal antibodies, such as iodine I 131 monoclonal antibody BC8, can find cancer cells and carry cancer-killing substances to them. Giving chemotherapy, such as fludarabine phosphate, and total-body irradiation before a donor peripheral blood stem cell transplant helps stop the growth of cancer or abnormal cells. It may also 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. The donated stem cells may also replace the patient's immune cells and help destroy any remaining cancer cells. Sometimes the transplanted cells from a donor can also make an immune response against the body's normal cells. Giving radiolabeled monoclonal antibody therapy together with fludarabine phosphate and total-body irradiation before the transplant together with cyclosporine and mycophenolate mofetil after the transplant may stop this from happening.

COMPLETED
Tipifarnib in Treating Patients With Myelodysplastic Syndromes
Description

This phase I trial studies the side effects and best dose of tipifarnib in treating patients with myelodysplastic syndromes. Tipifarnib may stop the growth of cancer cells by blocking some of the enzymes needed for cell growth.

TERMINATED
Azacitidine and Lintuzumab in Treating Patients With Previously Untreated Myelodysplastic Syndromes
Description

RATIONALE: 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. Monoclonal antibodies, such as lintuzumab, 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 chemotherapy together with monoclonal antibodies may be a better way to block cancer growth. PURPOSE: This phase II trial is studying the side effects and how well giving azacitidine together with lintuzumab works in treating patients with previously untreated myelodysplastic syndromes.

TERMINATED
Donor Umbilical Cord Blood Transplant in Treating Patients With Advanced Hematological Cancer or Other Disease
Description

RATIONALE: Giving low doses of chemotherapy and total-body irradiation before a donor umbilical cord blood transplant helps stop the growth of cancer or abnormal cells. It may also 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 cyclosporine and mycophenolate mofetil before and after transplant may stop this from happening. PURPOSE: This phase II trial is studying how well donor umbilical cord blood transplant with reduced intensity conditioning works in treating patients with advanced hematological cancer or other disease.

COMPLETED
Donor Peripheral Stem Cell Transplant, Fludarabine, and Busulfan in Treating Patients With Hematologic Cancers
Description

Giving chemotherapy drugs, such as fludarabine and busulfan, before a donor peripheral stem cell transplant helps stop the growth of cancer cells. It also stops 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 cyclosporine and mycophenolate mofetil before and after the transplant may stop this from happening. PURPOSE: This phase II trial is studying the side effects of giving donor peripheral stem cell transplant together with fludarabine and busulfan and to see how well it works in treating patients with hematologic cancers.

UNKNOWN
Vaccine Therapy and GM-CSF in Treating Patients With Low-Risk or Intermediate-Risk Myelodysplastic Syndrome
Description

RATIONALE: Vaccines made from peptides may help the body build an effective immune response to kill cancer cells. Colony-stimulating factors, such as GM-CSF, increase the number of white blood cells and platelets found in bone marrow or peripheral blood. Giving vaccine therapy together with GM-CSF may kill more cancer cells. PURPOSE: This phase II trial is studying how well giving vaccine therapy together with GM-CSF works in treating patients with low-risk or intermediate-risk myelodysplastic syndrome.

COMPLETED
Bexarotene and GM-CSF in Treating Patients With Myelodysplastic Syndrome or Acute Myeloid Leukemia
Description

RATIONALE: Bexarotene may help cancer or abnormal cells become more like normal cells, and to grow and spread more slowly. Colony-stimulating factors, such as GM-CSF, may increase the number of immune cells found in bone marrow or peripheral blood. Giving bexarotene together with GM-CSF may be an effective treatment for myelodysplastic syndrome (MDS) or acute myeloid leukemia. PURPOSE: This phase II trial is studying how well giving bexarotene together with GM-CSF works in treating patients with MDS or acute myeloid leukemia.

TERMINATED
Azacitidine, Darbepoetin Alfa, and Erythropoietin and Filgastrim (G-CSF) in Treating Patients With Myelodysplastic Syndromes
Description

RATIONALE: Drugs used in chemotherapy, such as azacitidine, work in different ways to stop the growth of abnormal cells, either by killing the cells or by stopping them from dividing. Colony-stimulating factors, such as darbepoetin alfa and G-CSF, may increase the number of red blood cells and white blood cells found in bone marrow or peripheral blood and may help the immune system recover from the side effects of chemotherapy. Giving azacitidine together with darbepoetin alfa and G-CSF may be an effective treatment for myelodysplastic syndromes. PURPOSE: This clinical trial is studying how well giving azacitidine together with darbepoetin alfa and G-CSF works in treating patients with myelodysplastic syndromes.

TERMINATED
Vaccine Therapy in Treating Patients With Myelodysplastic Syndromes
Description

RATIONALE: Vaccines made from cancer cells may help the body build an effective immune response to kill abnormal cells. PURPOSE: This clinical trial is studying how well vaccine therapy works in treating patients with myelodysplastic syndromes (MDS).

COMPLETED
Chemotherapy and Total-Body Irradiation Followed by Donor Umbilical Cord Blood Transplant, Cyclosporine, and Mycophenolate Mofetil in Treating Patients With Hematologic Cancer
Description

RATIONALE: Giving low doses of chemotherapy, such as cyclophosphamide and fludarabine, and radiation therapy before a donor umbilical cord blood stem cell transplant helps stop the growth of cancer cells. It also stops the patient's immune system from rejecting the donor's stem cells. The donated stem cells may replace the patient's immune system 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 cyclosporine and mycophenolate mofetil after the transplant may stop this from happening. PURPOSE: This clinical trial is studying how well giving chemotherapy together with total-body irradiation followed by donor umbilical cord blood transplant, cyclosporine, and mycophenolate mofetil works in treating patients with hematologic cancer.

COMPLETED
Cyclophosphamide and/or Mycophenolate Mofetil With or Without Tacrolimus in Treating Patients Who Are Undergoing a Donor Bone Marrow or Peripheral Stem Cell Transplant for Hematologic Cancer
Description

RATIONALE: Giving low doses of chemotherapy, such as fludarabine, and radiation therapy before a donor bone marrow or stem cell transplant helps stop the growth of cancer cells. It also stops the patient's immune system from rejecting the donor's stem cells. The donated stem cells may replace the patient's immune system 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 cyclophosphamide, mycophenolate mofetil, and tacrolimus after transplant may stop this from happening. PURPOSE: This phase I trial is studying cyclophosphamide and/or mycophenolate mofetil with or without tacrolimus to see which is the best regimen in treating patients who are undergoing a donor bone marrow or stem cell transplant for hematologic cancer.

TERMINATED
Arsenic Trioxide and Cholecalciferol (Vitamin D) in Treating Patients With Myelodysplastic Syndromes
Description

RATIONALE: Drugs used in chemotherapy, such as arsenic trioxide, work in different ways to stop the growth of cancer cells, either by killing the cells or by stopping them from dividing. Cholecalciferol (vitamin D) may help cancer cells become normal cells. Giving arsenic trioxide together with cholecalciferol (vitamin D) may kill more cancer cells. PURPOSE: This phase II trial is studying how well giving arsenic trioxide together with cholecalciferol (vitamin D) works in treating patients with myelodysplastic syndromes.

COMPLETED
Amifostine in Treating Young Patients With Newly Diagnosed De Novo Myelodysplastic Syndromes
Description

RATIONALE: Drugs used in chemotherapy, such as amifostine, work in different ways to stop the growth of cancer cells, either by killing the cells or by stopping them from dividing. PURPOSE: This phase II trial is studying how well amifostine works in treating young patients with newly diagnosed de novo myelodysplastic syndromes.

COMPLETED
Tacrolimus and Mycophenolate Mofetil in Preventing Acute Graft-Versus-Host Disease in Patients With Advanced Hematologic Cancer Who Are Undergoing Donor Stem Cell Transplantation
Description

RATIONALE: Tacrolimus and mycophenolate mofetil may be an effective treatment for graft-versus-host disease caused by donor stem cell transplantation. PURPOSE: This phase II trial is studying how well giving tacrolimus together with mycophenolate mofetil works in preventing acute graft-versus-host disease in patients who are undergoing donor stem cell transplantation for advanced hematologic cancer.

COMPLETED
Vatalanib in Treating Patients With Primary or Secondary Myelodysplastic Syndromes
Description

RATIONALE: Vatalanib may be effective in preventing the development of leukemia in patients who have myelodysplastic syndromes. PURPOSE: This phase II trial is studying vatalanib to see how well it works in treating patients with primary or secondary myelodysplastic syndromes.

COMPLETED
Donor Stem Cell Transplant in Treating Patients With Hematologic Cancer
Description

RATIONALE: Giving chemotherapy and total-body irradiation before a donor peripheral stem cell transplant helps stop the growth of cancer and abnormal cells and helps stop the patient's immune system from rejecting the donor's stem cells. When the stem cells from a related donor, that do not exactly match the patient's blood, are infused into the patient they may help the patient's bone marrow make stem cells, red blood cells, white blood cells, and platelets. PURPOSE: This phase II trial is studying how well giving chemotherapy with or without radiation therapy followed by donor stem cell transplant works in treating patients with hematologic cancer.

COMPLETED
VNP40101M in Treating Patients With Relapsed or Refractory Leukemia or Myelodysplastic Syndrome
Description

RATIONALE: Drugs used in chemotherapy use different ways to stop cancer cells from dividing so they stop growing or die. PURPOSE: Phase I trial to study the effectiveness of VNP40101M in treating patients who have relapsed or refractory leukemia or myelodysplastic syndrome.

COMPLETED
Combination Chemotherapy Followed by Bone Marrow Transplantation in Treating Patients With Advanced Hematologic Cancer
Description

RATIONALE: Drugs used in chemotherapy use different ways to stop cancer cells from dividing so they stop growing or die. Combining chemotherapy with bone marrow transplantation may allow the doctor to give higher doses of chemotherapy drugs and kill more cancer cells. PURPOSE: Phase II trial to study the effectiveness of busulfan and melphalan followed by donor bone marrow transplantation in treating patients who have advanced hematologic cancer.

COMPLETED
Biological Therapy in Treating Patients With Myelodysplastic Syndrome
Description

RATIONALE: Biological therapies use different ways to stimulate the immune system and stop cancer cells from growing. Combining different types of biological therapies may kill more cancer cells. PURPOSE: Phase II trial to study the effectiveness of biological therapy in treating patients who have myelodysplastic syndrome.