Treatment Trials

21 Clinical Trials for Various Conditions

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RECRUITING
Cardiovascular Events Among Adults Patients With Relapsed or Refractory Aggressive B-Cell Lymphoma Treated With Standard of Care Chimeric Antigen Receptor T Cell Therapy
Description

This study characterizes cardiac events following standard of care chimeric antigen receptor T cell therapy in patients with aggressive B-Cell Lymphoma that has come back (relapsed) or does not respond to treatment (refractory). The results from this study may allow a description of these events, their managements and outcome.

RECRUITING
Golcadomide and Rituximab as Bridging Therapy for Relapsed or Refractory Aggressive B-cell Non-Hodgkin Lymphoma Before CAR T-cell Therapy
Description

This phase II trial tests the effectiveness of golcadomide and rituximab as bridging treatment before chimeric antigen receptor (CAR) T-cell therapy in patients with aggressive B-cell non-Hodgkin lymphoma that has come back after a period of improvement (relapsed) or that has not responded to previous treatment (refractory). Patients that are able to receive CAR T-cell therapy have a potential for cure, however, many will not be qualified to receive therapy due to relapse. Bridging therapy is therapy intended to transition a patient from one therapy or medication to another or maintain their health or status until they are a candidate for a therapy or have decided on a therapy. Golcadomide may help block the formation, growth or spread of cancer cells. Rituximab is a monoclonal antibody. It binds to a protein called CD20, which is found on B cells (a type of white blood cell) and some types of cancer cells. This may help the immune system kill cancer cells. Giving golcadomide and rituximab as bridging therapy before CAR T-cell therapy may kill more tumor cells and may improve the chance of proceeding to CAR T-cell therapy in patients with relapsed or refractory aggressive B-cell non-Hodgkin lymphoma.

Conditions
Large B-Cell Lymphoma With IRF4 RearrangementRecurrent Aggressive B-Cell Non-Hodgkin LymphomaRecurrent ALK-Positive Large B-Cell LymphomaRecurrent Diffuse Large B-Cell Lymphoma Activated B-Cell TypeRecurrent Diffuse Large B-Cell Lymphoma Associated With Chronic InflammationRecurrent Diffuse Large B-Cell Lymphoma Germinal Center B-Cell TypeRecurrent Diffuse Large B-Cell Lymphoma, Not Otherwise SpecifiedRecurrent EBV-Positive Diffuse Large B-Cell Lymphoma, Not Otherwise SpecifiedRecurrent Grade 3b Follicular LymphomaRecurrent High Grade B-Cell Lymphoma With MYC and BCL2 RearrangementsRecurrent High Grade B-Cell Lymphoma, Not Otherwise SpecifiedRecurrent Intravascular Large B-Cell LymphomaRecurrent Primary Cutaneous Diffuse Large B-Cell Lymphoma, Leg TypeRecurrent Primary Mediastinal Large B-Cell LymphomaRecurrent T-Cell/Histiocyte-Rich Large B-Cell LymphomaRecurrent Transformed Non-Hodgkin LymphomaRefractory Aggressive B-Cell Non-Hodgkin LymphomaRefractory ALK-Positive Large B-Cell LymphomaRefractory Diffuse Large B-Cell Lymphoma Activated B-Cell TypeRefractory Diffuse Large B-Cell Lymphoma Associated With Chronic InflammationRefractory Diffuse Large B-Cell Lymphoma Germinal Center B-Cell TypeRefractory Diffuse Large B-Cell Lymphoma, Not Otherwise SpecifiedRefractory EBV-Positive Diffuse Large B-Cell Lymphoma, Not Otherwise SpecifiedRefractory Grade 3b Follicular LymphomaRefractory High Grade B-Cell Lymphoma With MYC and BCL2 RearrangementsRefractory High Grade B-Cell Lymphoma, Not Otherwise SpecifiedRefractory Intravascular Large B-Cell LymphomaRefractory Primary Cutaneous Diffuse Large B-Cell Lymphoma, Leg TypeRefractory Primary Mediastinal Large B-Cell LymphomaRefractory T-Cell/Histiocyte-Rich Large B-Cell LymphomaRefractory Transformed Non-Hodgkin Lymphoma
ACTIVE_NOT_RECRUITING
Zanubrutinib and CAR T-cell Therapy for the Treatment of Recurrent or Refractory Aggressive B-cell Non-Hodgkin's Lymphoma or Transformed Indolent B-cell Lymphoma
Description

This phase II trial studies the effect of zanubrutinib and CAR T-cell therapy in treating patients with aggressive B-cell non-Hodgkin's lymphoma or transformed indolent B-cell lymphoma that has come back (recurrent) or does not respond to treatment (refractory). Zanubrutinib may stop the growth of cancer cells by blocking some of the enzymes needed for cell growth. T cells are infection fighting blood cells that can kill tumor cells. The T cells given in this study will come from the patient and will have a new gene put in them that makes them able to recognize CAR, a protein on the surface of cancer cells. These CAR-specific T cells may help the body's immune system identify and kill cancer cells. Giving zanubrutinib together with CAR T-cell therapy may kill more cancer cells.

RECRUITING
Epcoritamab Plus Ibrutinib for the Treatment of Relapsed or Refractory Aggressive B-Cell Non-Hodgkin Lymphoma
Description

This phase Ib/II trial evaluates the safety, optimal dose, and efficacy of the combination of epcoritamab and ibrutinib in treating patients with aggressive B-cell non-Hodgkin lymphoma that has come back (relapsed) or responded to previous treatment (refractory). Epcoritamab, a bispecific antibody, binds to two different types of receptors (proteins present on the cell surface) at the same time. The two receptors that epcoritamab binds to are called CD3 and CD20. CD3 is found on T cells, which are important cells of the immune system that help fight cancer and infections. CD20 is found on the surface of most types of aggressive B-cell non-Hodgkin lymphoma cells. By binding to both CD3 and CD20, epcoritamab brings the two cells close together so the T cells can fight and kill the lymphoma B cells. Ibrutinib, a Bruton's tyrosine kinase (BTK) inhibitor, binds to a protein on B cells, a type of white blood cell from which the lymphoma developed. By doing this it decreases the ability of the lymphoma B cells to survive and grow. Ibrutinib may also improve the health (or fitness) of T cells thus making epcoritamab safer and/or more effective.

ACTIVE_NOT_RECRUITING
Nivolumab With or Without Varlilumab in Treating Patients With Relapsed or Refractory Aggressive B-cell Lymphomas
Description

This phase II trial studies how well nivolumab with or without varlilumab works in treating patients with aggressive B-cell lymphomas that have come back (recurrent) or do not respond to treatment (refractory). Immunotherapy with monoclonal antibodies, such as varlilumab and nivolumab, may help the body's immune system attack the cancer, and may interfere with the ability of tumor cells to grow and spread.

Conditions
ALK-Positive Large B-Cell LymphomaDiffuse Large B-Cell Lymphoma Activated B-Cell TypeDiffuse Large B-Cell Lymphoma Associated With Chronic InflammationDiffuse Large B-Cell Lymphoma Germinal Center B-Cell TypeDiffuse Large B-Cell Lymphoma, Not Otherwise SpecifiedEBV-Positive Diffuse Large B-Cell Lymphoma, Not Otherwise SpecifiedEBV-Positive Mucocutaneous UlcerHHV8-Positive Diffuse Large B-Cell Lymphoma, Not Otherwise SpecifiedHigh Grade B-Cell Lymphoma With MYC and BCL2 and/or BCL6 RearrangementsHigh Grade B-Cell Lymphoma, Not Otherwise SpecifiedIntravascular Large B-Cell LymphomaLarge B-Cell Lymphoma With 11q AberrationLarge B-Cell Lymphoma With IRF4 RearrangementPlasmablastic LymphomaPrimary Diffuse Large B-Cell Lymphoma of the Central Nervous SystemPrimary Effusion LymphomaRecurrent B-Cell Non-Hodgkin LymphomaRecurrent Burkitt LymphomaRecurrent Diffuse Large B-Cell LymphomaRecurrent Gray-Zone LymphomaRecurrent High Grade B-Cell Lymphoma With MYC and BCL2 or BCL6 RearrangementsRecurrent High Grade B-Cell Lymphoma With MYC, BCL2, and BCL6 RearrangementsRecurrent Lymphomatoid GranulomatosisRecurrent Primary Cutaneous Diffuse Large B-Cell Lymphoma, Leg TypeRecurrent Primary Mediastinal Large B-Cell LymphomaRecurrent T-Cell/Histiocyte-Rich Large B-Cell LymphomaRefractory B-Cell Non-Hodgkin LymphomaRefractory Burkitt LymphomaRefractory Diffuse Large B-Cell LymphomaRefractory Gray-Zone LymphomaRefractory High Grade B-Cell Lymphoma With MYC and BCL2 or BCL6 RearrangementsRefractory High Grade B-Cell Lymphoma With MYC, BCL2, and BCL6 RearrangementsRefractory Primary Cutaneous Diffuse Large B-Cell Lymphoma, Leg TypeRefractory Primary Mediastinal Large B-Cell LymphomaRefractory T-Cell/Histiocyte-Rich Large B-Cell Lymphoma
COMPLETED
Nab-paclitaxel/Rituximab-coated Nanoparticle AR160 in Treating Patients With Relapsed or Refractory B-Cell Non-Hodgkin Lymphoma, LS1681 Trial
Description

This phase I trial studies the best dose and side effects of paclitaxel albumin-stabilized nanoparticle formulation (nab-paclitaxel)/rituximab-coated nanoparticle AR160 in treating patients with B-cell non-Hodgkin lymphoma that has come back (relapsed) or is not responding to treatment (refractory). Nab-paclitaxel/rituximab-coated nanoparticle AR160 is a combination of paclitaxel albumin-stabilized nanoparticle formulation and rituximab. Drugs used in chemotherapy, such as paclitaxel albumin-stabilized nanoparticle formulation, work in different ways to stop the growth of tumor cells, either by killing the cells, by stopping them from dividing, or by stopping them from spreading. Immunotherapy with rituximab, may induce changes in body's immune system and may interfere with the ability of tumor cells to grow and spread. Giving paclitaxel albumin-stabilized nanoparticle formulation and rituximab may work better in treating patients with B-cell non-Hodgkin lymphoma.

TERMINATED
High-Dose Y-90-Ibritumomab Tiuxetan Added to Reduced-Intensity Allogeneic Stem Cell Transplant Regimen for Relapsed or Refractory Aggressive B-Cell Lymphoma
Description

This phase II trial studies the side effects and how well high-dose yttrium-90 (Y-90)-ibritumomab tiuxetan (anti-cluster of differentiation \[CD\]20) followed by fludarabine phosphate, low-dose total body irradiation (TBI), and donor peripheral blood stem cell transplant (PBSCT) work in treating patients with aggressive B-cell lymphoma that has returned after a period of improvement (relapsed) or has not responded to previous treatment (refractory). Radiolabeled monoclonal antibodies, such as Y-90-ibritumomab tiuxetan, can find cancer cells and carry cancer-killing substances to them with less effect on normal cells. Giving chemotherapy, such as fludarabine phosphate, and TBI before a donor PBSCT helps stop the growth of cancer cells. It may also stop the patient's immune system from rejecting the donor's stem cells. However, high-dose radiolabeled antibodies also destroy healthy blood cells in the patient's body. When healthy stem cells from a donor are infused into the patient (stem cell transplant), they may help the patient's body replace these blood cells. Giving high-dose Y-90-ibritumomab tiuxetan followed by fludarabine phosphate, TBI, and donor PBSCT may be an effective treatment for patients with B-cell lymphoma.

COMPLETED
Vorinostat and Combination Chemotherapy With Rituximab in Treating Patients With HIV-Related Diffuse Large B-Cell Non-Hodgkin Lymphoma or Other Aggressive B-Cell Lymphomas
Description

This partially randomized phase I/II trial studies the side effects and the best dose of vorinostat when given together with combination chemotherapy and rituximab to see how well it works compared to combination chemotherapy alone in treating patients with human immunodeficiency virus-related diffuse large B-cell non-Hodgkin lymphoma or other aggressive B-cell lymphomas. Vorinostat may stop the growth of cancer cells by blocking some of the enzymes needed for cell growth. Drugs used in chemotherapy work in different ways to stop the growth of cancer cells, either by killing the cells, by stopping them from dividing, or by stopping them from spreading. Monoclonal antibodies, such as rituximab, may interfere with the ability of cancer cells to grow and spread. Giving vorinostat together with combination chemotherapy and rituximab may kill more cancer cells.

COMPLETED
PXD101 in Treating Patients With Relapsed or Refractory Aggressive B-Cell Non-Hodgkin's Lymphoma
Description

This phase II trial is studying how well PXD101 works in treating patients with relapsed or refractory aggressive B-cell non-Hodgkin's lymphoma. PXD101 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.

COMPLETED
Hypoxia-Specific Imaging to Predict Outcomes of Chimeric Antigen Receptor T-cell Therapy
Description

This study evaluates whether tumors present in patients with cancer who are planned to get CAR T-cells have low amounts of oxygen (hypoxia). PET scans may be used to check the amounts of oxygen within areas of cancer with a special radioactive tracer called FAZA that specifically looks for areas of low oxygen. This study is being done to help researchers determine how the amount of oxygen within areas of cancer affect how well CAR T-cells kill cancer cells.

ACTIVE_NOT_RECRUITING
Pembrolizumab and External Beam Radiation Therapy in Treating Patients With Relapsed or Refractory Non-Hodgkin Lymphoma
Description

This phase II trial studies how well pembrolizumab and external beam radiation therapy work in treating patients with non-Hodgkin lymphoma that has come back (relapsed) or does not respond to treatment (refractory). Immunotherapy with monoclonal antibodies, such as pembrolizumab, may help the body's immune system attack the cancer, and may interfere with the ability of tumor cells to grow and spread. Giving pembrolizumab and external beam radiation therapy may work better in treating patients with non-Hodgkin lymphoma than pembrolizumab alone.

COMPLETED
Donor Atorvastatin Treatment in Preventing Severe Acute GVHD After Nonmyeloablative Peripheral Blood Stem Cell Transplant in Patients With Hematological Malignancies
Description

This phase II trial studies how well donor atorvastatin treatment works in preventing severe graft-versus-host disease (GVHD) after nonmyeloablative peripheral blood stem cell (PBSC) transplant in patients with hematological malignancies. Giving low doses of chemotherapy, such as fludarabine phosphate, before a donor PBSC transplantation slows the growth of cancer cells and may also prevent 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 cause an immune response against the body's normal cells (GVHD). Giving atorvastatin to the donor before transplant may prevent severe GVHD.

RECRUITING
Study of LYL314 in Aggressive Large B-Cell Lymphoma
Description

This is a Phase 1/2, multi-center, open-label study evaluating the safety and efficacy of LYL314, a dual-targeting chimeric antigen receptor (CAR) targeting cluster of differentiation (CD)19 and CD20 in participants with aggressive large B-cell lymphoma.

RECRUITING
Activated T-Cells Expressing 2nd or 3rd Generation CD19-Specific CAR, Advanced B-Cell NHL, ALL, and CLL (SAGAN)
Description

Subjects on this study have a type of lymph gland cancer called Non-Hodgkin Lymphoma, acute lymphocytic leukemia, or chronic Lymphocytic Leukemia (these diseases will be referred to as "lymphoma" or "leukemia"). The lymphoma or leukemia has come back or has not gone away after treatment. The body has different ways of fighting infection and disease. No one way seems perfect for fighting cancers. This research study combines two different ways of fighting disease, antibodies and T cells, hoping that they will work together. Both antibodies and T cells have been used to treat patients with cancer. They have shown promise, but have not been strong enough to cure most patients. T cells can kill tumor cells but normally there are not enough of them to kill all the tumor cells. Some researchers have taken T cells from a person's blood, grown more of them in the laboratory and then given them back to the person. The antibody used in this study is called anti-CD19. It first came from mice that have developed immunity to human lymphoma. This antibody sticks to lymphoma cells because of a substance on the outside of these cells called CD19. CD19 antibodies have been used to treat people with lymphoma and leukemia. For this study, anti-CD19 has been changed so that instead of floating free in the blood it is now joined to the T cells. When an antibody is joined to a T cell in this way it is called a chimeric receptor. In the laboratory, the investigators found that T cells work better if they also add proteins that stimulate T cells, such as one called CD28. Adding the CD28 makes the cells last longer in the body but not long enough for them to be able to kill the lymphoma cells. The investigators believe that if they add an extra stimulating protein, called CD137, the cells will have a better chance of killing the lymphoma cells. The investigators are going to see if this is true by putting the CD19 chimeric receptor with CD28 alone into half of the cells and the CD19 chimeric receptor with CD28 and CD137 into the other half of the cells. These CD19 chimeric receptor T cells with CD28 and with or without CD137 are investigational products not approved by the FDA. The purpose of this study is to find the biggest dose of chimeric T cells that is safe, to see how long the T cell with each sort of chimeric receptor lasts, to learn what the side effects are and to see whether this therapy might help people with lymphoma or leukemia.

COMPLETED
Dendritic Cell Therapy, Cryosurgery, and Pembrolizumab in Treating Patients with Non-Hodgkin Lymphoma
Description

This phase I/II trial studies the best dose and side effects of dendritic cell therapy, cryosurgery and pembrolizumab in treating patients with non-Hodgkin lymphoma. Vaccines, such as dendritic cell therapy made from a person's tumor cells and white blood cells may help the body build an effective immune response to kill tumor cells. Cryosurgery kills cancer cells by freezing them. Immunotherapy with monoclonal antibodies, such as pembrolizumab, may help the body's immune system attack the cancer, and may interfere with the ability of tumor cells to grow and spread. Giving dendritic cell therapy, cryosurgery and pembrolizumab may work better at treating non-Hodgkin lymphoma.

TERMINATED
Comparison of Triple GVHD Prophylaxis Regimens for Nonmyeloablative or Reduced Intensity Conditioning Unrelated Mobilized Blood Cell Transplantation
Description

This randomized phase II trial includes a blood stem cell transplant from an unrelated donor to treat blood cancer. The treatment also includes chemotherapy drugs, but in lower doses than conventional (standard) stem cell transplants. The researchers will compare two different drug combinations used to reduce the risk of a common but serious complication called "graft versus host disease" (GVHD) following the transplant. Two drugs, cyclosporine (CSP) and sirolimus (SIR), will be combined with either mycophenolate mofetil (MMF) or post-transplant cyclophosphamide (PTCy). This part of the transplant procedure is the main research focus of the study.

COMPLETED
Sirolimus, Cyclosporine, and Mycophenolate Mofetil in Preventing Graft-versus-Host Disease in Treating Patients With Blood Cancer Undergoing Donor Peripheral Blood Stem Cell Transplant
Description

This phase II trial studies how well sirolimus, cyclosporine and mycophenolate mofetil works in preventing graft-vs-host disease (GVHD) in patients with blood cancer undergoing donor peripheral blood stem cell (PBSC) transplant. Giving chemotherapy and total-body irradiation before a donor peripheral blood stem cell transplant helps stop the growth of cancer 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. Sometimes the transplanted cells from a donor can make an immune response against the body's normal cells. Giving total-body irradiation together with sirolimus, cyclosporine, and mycophenolate mofetil before and after transplant may stop this from happening.

COMPLETED
Graft-Versus-Host Disease Prophylaxis in Treating Patients With Hematologic Malignancies Undergoing Unrelated Donor Peripheral Blood Stem Cell Transplant
Description

This randomized phase III trial studies how well graft-vs-host disease (GVHD) prophylaxis works in treating patients with hematologic malignancies undergoing unrelated donor peripheral blood stem cell transplant. Giving chemotherapy and total-body irradiation before a donor peripheral blood stem cell transplant (PBSCT) helps stop the growth of cancer 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. Sometimes the transplanted cells from a donor can make an immune response against the body's normal cells. Giving total-body irradiation (TBI) together with fludarabine phosphate (FLU), cyclosporine (CSP), mycophenolate mofetil (MMF), or sirolimus before transplant may stop this from happening.

COMPLETED
Sunitinib Malate in Treating HIV-Positive Patients With Cancer Receiving Antiretroviral Therapy
Description

This phase I trial studies the side effects and the best dose of sunitinib malate in treating human immunodeficiency virus (HIV)-positive patients with cancer receiving antiretroviral therapy. Sunitinib malate may stop the growth of cancer cells by blocking some of the enzymes needed for cell growth and by blocking blood flow to the tumor.

Conditions
Accelerated Phase Chronic Myelogenous LeukemiaAcute Myeloid Leukemia With Multilineage Dysplasia Following Myelodysplastic SyndromeAcute Undifferentiated LeukemiaAdult Acute Lymphoblastic 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 GranulomatosisAdult Langerhans Cell HistiocytosisAdult Nasal Type Extranodal NK/T-cell LymphomaAggressive NK-cell LeukemiaAIDS-related Diffuse Large Cell LymphomaAIDS-related Diffuse Mixed Cell LymphomaAIDS-related Diffuse Small Cleaved Cell LymphomaAIDS-related Immunoblastic Large Cell LymphomaAIDS-related Lymphoblastic LymphomaAIDS-related MalignanciesAIDS-related Small Noncleaved Cell LymphomaAnaplastic Large Cell LymphomaAngioimmunoblastic T-cell LymphomaAtypical Chronic Myeloid Leukemia, BCR-ABL1 NegativeChronic Eosinophilic LeukemiaChronic Myelomonocytic LeukemiaChronic Neutrophilic LeukemiaChronic Phase Chronic Myelogenous LeukemiaClear Cell Renal Cell CarcinomaCutaneous B-cell Non-Hodgkin Lymphomade Novo Myelodysplastic SyndromesEssential ThrombocythemiaExtramedullary PlasmacytomaExtranodal Marginal Zone B-cell Lymphoma of Mucosa-associated Lymphoid TissueHepatosplenic T-cell LymphomaHIV InfectionHIV-associated Hodgkin LymphomaIntraocular LymphomaIsolated Plasmacytoma of BoneLight Chain Deposition DiseaseMast Cell LeukemiaMyelodysplastic Syndrome With Isolated Del(5q)Myelodysplastic/Myeloproliferative Neoplasm, UnclassifiableMyeloid/NK-cell Acute LeukemiaNodal Marginal Zone B-cell LymphomaNoncutaneous Extranodal LymphomaOsteolytic Lesions of Multiple MyelomaPeripheral T-cell LymphomaPlasma Cell NeoplasmPolycythemia VeraPost-transplant Lymphoproliferative DisorderPreviously Treated Myelodysplastic SyndromesPrimary MyelofibrosisPrimary Systemic AmyloidosisProgressive Hairy Cell Leukemia, Initial TreatmentProlymphocytic LeukemiaRecurrent Adult Acute Lymphoblastic LeukemiaRecurrent 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 Adult T-cell Leukemia/LymphomaRecurrent Cutaneous T-cell Non-Hodgkin LymphomaRecurrent Grade 1 Follicular LymphomaRecurrent Grade 2 Follicular LymphomaRecurrent Grade 3 Follicular LymphomaRecurrent Mantle Cell LymphomaRecurrent Marginal Zone LymphomaRecurrent Mycosis Fungoides/Sezary SyndromeRecurrent Renal Cell CancerRecurrent Small Lymphocytic LymphomaRefractory Chronic Lymphocytic LeukemiaRefractory Hairy Cell LeukemiaRefractory Multiple MyelomaRelapsing Chronic Myelogenous LeukemiaStage IV Renal Cell CancerT-cell Large Granular Lymphocyte LeukemiaTesticular LymphomaUnspecified Adult Solid Tumor, Protocol SpecificWaldenström Macroglobulinemia
COMPLETED
Fludarabine Phosphate, Cyclophosphamide, Total-Body Irradiation, and Donor Bone Marrow Transplant Followed by Donor Natural Killer Cell Therapy, Mycophenolate Mofetil, and Tacrolimus in Treating Patients With Hematologic Cancer
Description

This phase I/II trial studies the side effects and best dose of donor natural killer (NK) cell therapy and to see how well it works when given together with fludarabine phosphate, cyclophosphamide, total-body irradiation, donor bone marrow transplant, mycophenolate mofetil, and tacrolimus in treating patients with hematologic cancer. Giving chemotherapy, such as fludarabine phosphate and cyclophosphamide, and total-body irradiation before a donor bone marrow transplant helps stop the growth of cancer 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. Giving an infusion of the donor's T cells (donor lymphocyte infusion) may help the patient's immune system see any remaining cancer cells as not belonging in the patient's body and destroy them (called graft-versus-tumor effect). Sometimes the transplanted cells from a donor can make an immune response against the body's normal cells. Giving mycophenolate mofetil and tacrolimus after the transplant may stop this from happening.

TERMINATED
Everolimus and Bortezomib in Treating Patients With Relapsed or Refractory Lymphoma
Description

RATIONALE: Everolimus and bortezomib may stop the growth of cancer cells by blocking some of the enzymes needed for cell growth. PURPOSE: This phase I trial is studying the side effects and best dose of everolimus when given together with bortezomib in treating patients with relapsed or refractory lymphoma.