View clinical trials related to Myelodysplastic Syndromes.
Filter by:Infections are a major life-threatening complication in patients with myelodysplastic syndrome (MDS) or acute myeloid leukaemia (AML). Currently there is no guidelines about antibacterial prophylaxis to prevent infections in patients with myelodysplastic syndrome or acute myeloid leukaemia. The investigators will conduct a randomized prospective study to evaluate the benefit of prophylactic antibacterial by levofloxacin on febrile episode in Azacytidine treated patients (MDS and AML).
This phase II trial studies how well dexrazoxane hydrochloride works in preventing heart-related side effects of chemotherapy in participants with blood cancers, such as acute myeloid leukemia, myelodysplastic syndrome, chronic myeloid leukemia, and myeloproliferative neoplasms. Chemoprotective drugs, such as dexrazoxane hydrochloride, may protect the heart from the side effects of drugs used in chemotherapy, such as cladribine, idarubicin, cytarabine, and gemtuzumab ozogamicin, in participants with blood cancers.
This is a phase II trial of T cell receptor alpha/beta depletion (α/β TCD) peripheral blood stem cell (PBSC) transplantation in patients with inherited bone marrow failure (BMF) disorders to eliminate the need for routine graft-versus-host disease (GVHD) immune suppression leading to earlier immune recovery and potentially a reduction in the risk of severe infections after transplantation.
Gamma delta T-cells are part of the innate immune system with the ability to recognize malignant cells and kill them. This study uses gamma delta T-cells to maximize the anti-tumor response and minimize graft versus host disease (GVHD) in leukemic and myelodysplastic patients who have had a partially mismatched bone marrow transplant (haploidentical).
Background: Severe aplastic anemia (SAA), and myelodysplastic syndrome (MDS), and paroxysmal nocturnal hemoglobinuria (PNH) cause serious blood problems. Stem cell transplants using bone marrow or blood plus chemotherapy can help. Researchers want to see if using peripheral blood stem cells (PBSCs) rather than bone marrow cells works too. PBSCs are easier to collect and have more cells that help transplants. Objectives: To see how safely and effectively SAA, MDS and PNH are treated using peripheral blood hematopoietic stem cells from a family member plus chemotherapy. Eligibility: Recipients ages 4-60 with SAA, MDS or PNH and their relative donors ages 4-75 Design: Recipients will have: - Blood, urine, heart, and lung tests - Scans - Bone marrow sample Recipients will need a caregiver for several months. They may make fertility plans and a power of attorney. Donors will have blood and tissue tests, then injections to boost stem cells for 5-7 days. Donors will have blood collected from a tube in an arm or leg vein. A machine will separate stem cells and maybe white blood cells. The rest of the blood will be returned into the other arm or leg. In the hospital for about 1 month, recipients will have: - Central line inserted in the neck or chest - Medicines for side effects - Chemotherapy over 8 days and radiation 1 time - Stem cell transplant over 4 hours Up to 6 months after transplant, recipients will stay near NIH for weekly physical exams and blood tests. At day 180, recipients will go home. They will have tests at their doctor s office and NIH several times over 5 years.
This phase I studies the side effects and best dose of total marrow and lymphoid irradiation when given together with fludarabine and melphalan before donor stem cell transplant in treating participants with high-risk acute leukemia or myelodysplastic syndrome. Giving chemotherapy, such as fludarabine and melphalan, and total marrow and lymphoid irradiation before a donor stem cell transplant helps stop the growth of cells in the bone marrow, including normal blood-forming cells (stem cells) and cancer 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.
This phase Ib/II trial studies the side effects and best dose of venetoclax and how well it works when given together with ivosidenib with or without azacitidine, in treating patients with IDH1-mutated hematologic malignancies. Venetoclax and ivosidenib may stop the growth of cancer cells by blocking some of the enzymes needed for cell growth. Drugs used in chemotherapy, such as azacitidine, 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. Giving ivosidenib and venetoclax with azacitidine may work better in treating patients with hematologic malignancies compared to ivosidenib and venetoclax alone.
International registry for cancer patients evaluating the feasibility and clinical utility of an Artificial Intelligence-based precision oncology clinical trial matching tool, powered by a virtual tumor boards (VTB) program, and its clinical impact on pts with advanced cancer to facilitate clinical trial enrollment (CTE), as well as the financial impact, and potential outcomes of the intervention.
This study aimed to evaluate the efficacy of reduced intensity conditioning (RIC) regimen in elderly or high comorbidity burden patients who receive haploidentical hematopoietic stem cell transplantation (haplo-HSCT). Haplo-HSCT is an effective treatment option for patients who did not have identical sibling donor (ISD) or unrelated donor (URD). However, post-transplant transplant-related mortality (TRM) is one of the major causes for transplant failure, and the risk of TRM for old patients or those with high comorbidity burden was higher. RIC regimen may decrease the risk of TRM for haplo-HSCT recipients. The study hypothesis: Using RIC haplo-HSCT regimen in elderly patients or those with high comorbidity burden can reduce TRM and improve survival.
This study aimed to evaluate the efficacy of reduced intensity conditioning (RIC) regimen in low- and intermediate-risk myelodysplastic syndrome (MDS) patients who receive haploidentical hematopoietic stem cell transplantation (haplo-HSCT). Haplo-HSCT is an effective treatment option for MDS patients who did not have identical sibling donor (ISD) or unrelated donor (URD). However, post-transplant transplant-related mortality (TRM) is one of the major causes for transplant failure in MDS patients, and the risk of TRM for haplo-HSCT recipients was higher than that of ISD recipients. RIC regimen can decrease the risk of TRM for haplo-HSCT recipients; however, the risk for relapse may increase in these patients. Thus, RIC regimen may be more appropriate for low- and intermediate-risk MDS patients receiving haplo-HSCT. The study hypothesis: Using RIC haplo-HSCT regimen in patients with low- and risk MDS can reduce TRM and improve survival.