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Anemia, Aplastic clinical trials

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NCT ID: NCT01105273 Completed - Aplastic Anemia Clinical Trials

Human Leukocyte Antigen (HLA)-Haploidentical Hematopoietic Stem Cell Transplantation for Patients With Aplastic Anemia

Start date: July 2009
Phase: Phase 1/Phase 2
Study type: Interventional

Rationale: Chemotherapy with fludarabine, cyclophosphamide and anti-thymocyte globulin may induce the engraftment cross the immunologic barrier in the setting of HLA-haploidentical allogeneic hematopoietic cell transplantation. In addition, depletion CD3±CD19 cells may contribute to prevent developing severe acute graft versus host disease (GVHD) in haploidentical transplantation. Purpose: This phase I/II trial is to evaluate the safety and efficacy of fludarabine, cyclophosphamide and antithymocyte globulin with CD3±CD19 depleted graft from haploidentical donors in treating patients with aplastic anemia.

NCT ID: NCT00997386 Completed - Multiple Myeloma Clinical Trials

Reduced Intensity Allogeneic PBSCT to Treat Hematologic Malignancies and Hematopoietic Failure States

ALBUM
Start date: September 2009
Phase: Phase 2
Study type: Interventional

The purpose of this study is to look at whether the combination of lower-dose chemotherapy with two chemotherapy (anti-cancer) drugs, called busulfan and melphalan, and an antibody medication called alemtuzumab (Campath®), can prevent rejection of donor blood stem cells so that those cells take hold and build a healthy new blood cell factory after transplant. The study will also look at the safety of the combination of drugs and of the transplant of peripheral blood stem cells from a healthy relative or an unrelated donor.

NCT ID: NCT00993694 Completed - Lymphoma Clinical Trials

Methemoglobinemia in Young Patients With Hematologic Cancer or Aplastic Anemia Treated With Dapsone

Start date: January 2009
Phase: N/A
Study type: Observational

RATIONALE: Gathering information about how often methemoglobinemia occurs in young patients receiving dapsone for hematologic cancer or aplastic anemia may help doctors learn more about the disease and plan the best treatment. PURPOSE: This research study is looking at methemoglobinemia in young patients with hematologic cancer or aplastic anemia treated with dapsone.

NCT ID: NCT00987480 Completed - Leukemia Clinical Trials

Hematopoietic Stem Cell Transplantation for the Treatment of Patients With Fanconi Anemia Lacking a Genotypically Identical Donor, Using a Chemotherapy Only Cytoreduction With Busulfan, Cyclophosphamide and Fludarabine

Start date: September 25, 2009
Phase: Phase 2
Study type: Interventional

This is a genetic disease (transmitted through the parents' genes) called Fanconi Anemia. Because of that genetic disease, the bone marrow has changed and now has failed, or has given rise to a preleukemia called myelodysplastic syndrome (MDS) or leukemia (acute myelogenous leukemia or AML). Without treatment these complications of Fanconia anemia (FA) are fatal. The only treatment that can cure these complications is an allogeneic transplant of stem cells, meaning, giving the patient bone marrow cells from a healthy donor that can produce normal blood cells that will replace the bone marrow that is sick. What has been given for the treatment of FA in the past is to use a combination of low doses of radiation to the whole body (total body irradiation) and low doses of the chemotherapy drugs (cyclophosphamide and fludarabine) before the transplant. However, the use of radiation can, later on, increase the chances of getting a second cancer of the skin, head or the neck. These chances of a second cancer are higher than normal in patients with FA. The purpose of this study is to find out if the doctors can do the same thing with the same chemotherapy drugs used in the past. However physicians will use another chemotherapy drug called busulfan instead of the radiation. The goal of this study is to get rid of the short term and long term risks of the radiation. The first new part of this treatment will be to replace drugs for radiation with chemotherapy drugs.

NCT ID: NCT00975975 Completed - Multiple Myeloma Clinical Trials

Basiliximab #2: In-Vivo Activated T-Cell Depletion to Prevent Graft-Versus_Host Disease (GVHD) After Nonmyeloablative Allotransplantation for the Treatment of Blood Cancer

Start date: September 2009
Phase: Phase 2
Study type: Interventional

The purpose of this study is to compare the effects (good and bad) of the medication basiliximab in combination with cyclosporine (investigational therapy) for the prevention of a complication of bone marrow transplantation known as graft-versus-host disease (GVHD). GVHD is a complication in which the cells of the transplanted bone marrow react against organs and tissues.

NCT ID: NCT00944749 Completed - Anemia, Aplastic Clinical Trials

Horse ATG/CsA in Aplastic Anemia Patients Unresponsive to or With a Suboptimal Response to Rabbit ATG/CsA Treatment

Start date: August 31, 2009
Phase: Phase 2
Study type: Interventional

Background: - Severe plastic anemia can lead to problems with bone marrow platelet production and result in low blood platelet counts, which require frequent platelet transfusions to improve blood clotting. - A standard treatment for SAA involves injections of rabbit-antithymocyte globulin (r-ATG). r-ATG is developed by injecting horses with a type of human white blood cells called thymocytes. The horse's immune system reacts against these cells and makes antibodies that can destroy them. These antibodies are collected and purified to make r-ATG. Horses can also be used for this procedure to make horse-antithymocyte globulin (h-ATG). - h-ATG is approved by the Food and Drug Administration for the treatment of aplastic anemia. h-ATG is a standard first-line method to treat aplastic anemia, but researchers do not know how effective it is in patients who were first treated unsuccessfully with r-ATG. Objectives: - To evaluate the effectiveness and safety of horse-ATG (with cyclosporine) in increasing blood counts and reducing the need for transfusions in aplastic anemia patients who have failed to respond to prior immunosuppressive treatment with rabbit-ATG and cyclosporine. Eligibility: - Patients 2 years of age and older who have consistently low blood platelet counts related to aplastic anemia that has not responded to conventional treatment with rabbit-ATG. Design: - After initial screening, medical history, and blood tests, patients will be admitted to the inpatient unit at the National Institutes of Health Clinical Center. Researchers will perform a skin test with h-ATG to check for allergic or other adverse reaction. - After the skin test, h-ATG will be given into a vein continuously over 4 days. - Cyclosporine will also be given to improve the response rate of ATG treatment. Treatment with cyclosporine will start the same day as the h-ATG, either in liquid or capsule form, and continued for 6 months. The dose of cyclosporine will be monitored and adjusted based on blood levels and signs of side effects in the kidney and liver. - To prevent or treat infections that may result from cyclosporine s effect on the immune system, patients will also take inhaled or capsule doses of pentamidine. - After the study is completed, patients will have followup evaluations every 3 months, 6 months, and annually for 5 years. Evaluations will include blood samples and periodic bone marrow biopsies.

NCT ID: NCT00922883 Completed - Thrombocytopenia Clinical Trials

A Pilot Study of the Thrombopoietin-Receptor Agonist Eltrombopag in Refractory Aplastic Anemia Patients

Start date: May 29, 2009
Phase: Phase 2
Study type: Interventional

Severe aplastic anemia (SAA) is a life-threatening blood disease which can be effectively treated with immunosuppressive drug regimens or allogeneic stem cell transplantation. However, 20-40% of patients without transplant options do not respond to immunosuppressive therapies, and have persistent severe cytopenias, requiring regular platelet transfusions, which are expensive and inconvenient, and are a risk for further serious bleeding complications. Thrombopoietin (TPO) is the principal endogenous regulator of platelet production and also stimulates hematopoietic stem and progenitor cells. A small molecule oral TPO-agonist, eltrombopag has been shown to increase platelets in healthy subjects and in patients with immune thrombocytopenic purpura (ITP), and received FDA approval in 2008 for the treatment of thrombocytopenia in ITP. This Phase 2, non-randomized pilot study of eltrombopag in aplastic anemia patients with immunosuppressive therapy refractory thrombocytopenia will test the safety and potential efficacy of eltrombopag treatment patients with refractory thrombocytopenia following immunosuppression for aplastic anemia. Subjects will initiate study medication at an oral dose of 50 mg/day, which will be increased up to 150 mg/day as clinically indicated to the lowest dose that maintains a stable platelet count 20,000/(micro)L above baseline while maximizing tolerability. Response will be assessed at 3-4 months. Platelet response is defined as platelet count increases to 20,000/L above baseline at three months. or stable platelet counts with transfusion independence for a minimum of 8 weeks. Erythroid response for subjects with a pretreatment hemoglobin of less than 9 g/dL will be defined as an increase in hemoglobin by greater than or equal to 1.5g/dL without packed red blood cell (PRBC) transfusion support, or a reduction in the units of transfusions by an absolute number of at least 4 PRBC transfusions for eight consecutive weeks compared with the pretreatment transfusion number in the previous 8 weeks. Neutrophil response will be defined in those with a pretreatment absolute neutrophil count (ANC) of less than 0.5 times 10(9)/L as at least a 100 percent increase or an absolute increase greater than 0.5 times 10(9)/L. Subjects with response at 3-4 months may continue study medication (extended access) until they meet an off study criteria. The primary objective is to assess the safety and efficacy of the oral thrombopoietin receptor agonist (TPO-R agonist) eltrombopag in aplastic anemia patients with immunosuppressive-therapy refractory thrombocytopenia. Secondary objectives include the analysis of the incidence and severity of bleeding episodes, and the impact on quality of life.

NCT ID: NCT00897260 Completed - Clinical trials for Hematological Malignancy

Umbilical Cord Blood Transplantation As Treatment Of Adult Patients With Hematologic Disorders

Start date: May 2009
Phase: N/A
Study type: Interventional

To determine the time to and rate of hematologic engraftment following unrelated umbilical cord blood transplantation in adults with one or two cord blood units using total body irradiation and fludarabine as the transplant conditioning regimen and cyclosporine/MMF as graft-versus-host disease prophylaxis.

NCT ID: NCT00895739 Recruiting - Clinical trials for Nonmalignant Neoplasm

Alemtuzumab and Low-Dose Cyclosporine in Treating Patients With Severe Aplastic Anemia or Acquired Marrow Failure

Start date: June 2006
Phase: Phase 2
Study type: Interventional

RATIONALE: Immunosuppressive therapies, such as alemtuzumab and cyclosporine, may improve bone marrow function and increase blood cell counts. Giving alemtuzumab together with cyclosporine may be an effective treatment for severe aplastic anemia or acquired marrow failure. PURPOSE: This phase II trial is studying the side effects of giving alemtuzumab together with cyclosporine and to see how well it works in treating patients with severe aplastic anemia or acquired marrow failure.

NCT ID: NCT00882323 Recruiting - Aplastic Anemia Clinical Trials

Reduced Toxicity Fludarabine (Flu) + Cyclophosphamide (CPM) + Rabbit Antithymocyte Globulin (rATG) Conditioning Regimen for Unrelated Donor Transplantation in Severe Aplastic Anemia (SAA)

Start date: November 2008
Phase: Phase 2
Study type: Interventional

Anti-thymocyte globulin (ATG) has been used in severe aplastic anemia as a part of the conditioning regimen. Among the many kinds of ATG preparations, thymoglobulin had been found to be more effective in preventing graft versus host disease (GVHD) and rejection of organ transplants. As the fludarabine based conditioning regimens without total body irradiation have been reported to be promising for transplantation from alternative donors in SAA, thymoglobulin was added to fludarabine and cyclophosphamide conditioning to reduce GVHD and to allow good engraftment in unrelated donor transplantation. Our previous phase II study of fludarabine, cyclophosphamide plus thymoglobulin conditioning resulted in good engraftment (100%) and survival rate (74%). But grade III/IV toxicities occurred in 25% of patients and all events were treatment related mortalities. As cyclophosphamide is more toxic agent than fludarabine, we plan a new phase II study re; 'reduced toxicity fludarabine, cyclophosphamide plus thymoglobulin conditioning regimen for unrelated donor transplantation in severe aplastic anemia' by reducing dosage of cyclophosphamide and increasing dosage of fludarabine.