View clinical trials related to Hodgkin Disease.
Filter by:Subjects have a type of lymph gland cancer called Hodgkin or non-Hodgkin Lymphoma, which has come back or not gone away after treatment, including the best treatment we know for relapsed Lymphoma. We are asking subjects to volunteer to be in a research study using Epstein Barr virus (EBV) specific cytotoxic T lymphocytes, a new experimental therapy. This therapy has never been used in patients with Hodgkin disease or this type of non-Hodgkin Lymphoma but it has been used successfully in children with other types of blood cancer caused by EBV after bone marrow transplantation. Some patients with Hodgkin disease or non-Hodgkin Lymphoma show evidence of infection with the virus that causes infectious mononucleosis Epstein Barr virus (EBV) before or at the time of their diagnosis of Lymphoma. EBV is often found in the cancer cells suggesting that it may play a role in causing Lymphoma. The cancer cells infected by EBV are very clever because they are able to hide from the body's immune system and escape destruction. We want to see if we can grow special white blood cells, called T cells, that have been trained to kill EBV infected cells and give them back to subjects.
Patients have a type of lymph gland cancer called Hodgkin or non-Hodgkin Lymphoma which has come back or not gone away after treatment, including the best treatment known for relapsed Lymphoma. Patients are being asked to volunteer to be in a research study using Epstein Barr virus specific cytotoxic T lymphocytes, a new experimental therapy. This therapy has never been used in patients with Hodgkin disease or this type of non-Hodgkin Lymphoma but it has been used successfully in children with other types of blood cancer caused by EBV after bone marrow transplantation. Some patients with Hodgkin or non-Hodgkin Lymphoma show evidence of infection with the virus that causes infectious mononucleosis Epstein Barr virus before or at the time of their diagnosis of the Lymphoma. EBV is often found in the cancer cells suggesting that it may play a role in causing Lymphoma. The cancer cells infected by EBV are very clever because they are able to hide from the body's immune system and escape destruction. Investigators want to see if it's possible to grow special white blood cells, called T cells, that have been trained to kill EBV infected cells. Purpose The purpose of this study is to find the largest safe dose of EBV specific cytotoxic T cells, to learn what the side effects are and to see whether this therapy might help patients with Hodgkin disease and non-Hodgkin Lymphoma.
RATIONALE: Photopheresis allows patient white blood cells to be treated with ultraviolet (UV) light and drugs outside the body to inactivate T cells. Pentostatin may suppress the immune system and reduce the chance of developing graft-versus-host disease (GVHD) following bone marrow transplantation. Combining photopheresis with pentostatin and total-body irradiation may be effective in killing cancer cells before bone marrow transplantation. PURPOSE: This phase II trial is studying how well giving photophoresis together with pentostatin and total-body irradiation as a reduced-intensity regimen before allogeneic bone marrow transplantation works in treating patients with relapsed non-Hodgkin's or Hodgkin's lymphoma.
The purpose of this study is to evaluate a multi-dose regimen of SGN-30, a novel chimeric monoclonal antibody (mAb), in patients with refractory or recurrent CD30+ hematologic malignancies. This is a single-arm, open-label phase I/II study designed to define the toxicity profile, pharmacokinetic (PK) profile, and anti-tumor activity of a multi-dose regimen of SGN-30 in patients with refractory or recurrent CD30+ hematologic malignancies. The phase I study will be a modified dose escalation of SGN-30. Based on preclinical pharmacology and toxicokinetics (TK) and the first use in human single-dose phase I study, SGN-30 will be administered on a weekly schedule. An initial dose of 2 mg/kg will escalate until the maximum tolerated dose (MTD) has been reached or until a weekly dose of 12 mg/kg is achieved.
RATIONALE: Drugs used in chemotherapy use different ways to stop cancer cells from dividing so they stop growing or die. Combining more than one drug may kill more cancer cells. It is not yet known which combination chemotherapy regimen is more effective in treating stage III or stage IV Hodgkin's lymphoma. PURPOSE: Randomized phase III trial to compare the effectiveness of two combination chemotherapy regimens in treating patients who have stage III or stage IV Hodgkin's lymphoma.
This phase II trial studies how well giving fludarabine phosphate, cyclophosphamide, tacrolimus, mycophenolate mofetil and total-body irradiation together with a donor bone marrow transplant works in treating patients with high-risk hematologic cancer. Giving low doses of chemotherapy, such as fludarabine phosphate and cyclophosphamide, and total-body irradiation before a donor bone marrow transplant helps stop the growth of cancer cells by stopping them from dividing or killing them. Giving cyclophosphamide after transplant may also stop the patient's immune system from rejecting the donor's bone marrow stem cells. The donated stem cells may replace the patient's immune system 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 tacrolimus and mycophenolate mofetil after the transplant may stop this from happening
RATIONALE: Drugs used in chemotherapy use different ways to stop cancer cells from dividing so they stop growing or die. Combining more than one drug may kill more cancer cells. It is not yet known which combination chemotherapy regimen is more effective in treating patients who have advanced Hodgkin's lymphoma. PURPOSE: Randomized phase III trial to compare the effectiveness of two different combination chemotherapy regimens in treating patients who have advanced Hodgkin's lymphoma.
RATIONALE: Electroacupuncture may help to reduce or prevent delayed nausea and vomiting in patients treated with chemotherapy. PURPOSE: This randomized clinical trial is studying the effectiveness of electroacupuncture in treating delayed nausea and vomiting in patients who are receiving chemotherapy for newly diagnosed childhood sarcoma, neuroblastoma, nasopharyngeal cancer, germ cell tumors, or Hodgkin lymphoma.
This phase II trial studies the side effects and the best dose of alemtuzumab when given together with fludarabine phosphate and low-dose total body irradiation (TBI) and how well it works before donor stem cell transplant in treating patients with hematological malignancies. Giving chemotherapy and low-dose TBI 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. Also, monoclonal antibodies, such as alemtuzumab, can find cancer cells and either kill them or deliver 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 also make an immune response against the body's normal cells. Giving cyclosporine (CSP) and mycophenolate mofetil (MMF) after transplant may stop this from happening.
Intensive chemotherapy is associated with significant thrombocytopenia, often requiring platelet transfusion to maintain platelet counts. This investigational drug has been demonstrated to increase platelet counts. This study will test the safety and efficacy of the investigational drug in the prevention of thrombocytopenia in patients with recurrent or refractory intermediate-grade or high-grade non-Burkitt's, non-Hodgkin's lymphoma (NHL), or Hodgkin's disease receiving DHAP (Dexamethasone, high-dose Cytarabine, and Cisplatin) chemotherapy.