View clinical trials related to Myelodysplastic Syndromes.
Filter by:To date, allogeneic haematopoietic stem cell transplantation (aHSCT) is the only curative treatment for many paediatric and young adult haematological pathologies (acute leukaemia, myelodysplastic syndromes, haemoglobinopathies, bone marrow aplasia, severe combined immunodeficiency). Despite the major therapeutic progress made over the last 50 years, particularly in terms of supportive care, post-transplant morbidity and mortality remains high. Infectious complications, whose incidence varies between 30 and 60%, are the first cause of mortality in the immediate post-transplant period. In order to protect the patient from the occurrence of severe infectious episodes, aHSCTmust be performed in a highly protected environment (positive pressure chambers). This has implications for the experience and impact of hospitalization on the patient and family. This is particularly true in paediatrics, whether in children, adolescents or young adults, where it is not only the patient's quality of life that is at stake, but also their emotional and psychomotor development. In these patients, prolonged hospitalization (at least 6 weeks) in a sterile room will be responsible for physical deconditioning accompanied by a decrease in muscle mass, itself concomitant with undernutrition, and an increase in sedentary lifestyle. This prolonged hospitalisation in a sterile room, associated with myeloablative treatments, is therefore the cause of social isolation of patients, but it is also often synonymous with physical inactivity leading to a rapid decrease in physical condition, quality of life and an increase in fatigue. Today, the benefits of physical activity (PA) during and after cancer treatment have been widely demonstrated. The objective is to evaluate the feasibility of an adapted physical activity program during the isolation phase for achieving aHSCT in children, adolescents and young adults. This is a prospective, interventional, monocentric cohort study conducted at the Institute of Paediatric Haematology and Oncology in Lyon. The intervention will take place during the isolation phase and consists of an adapted physical activity (APA) program defined at inclusion, integrating supervised sessions with an APA teacher, as well as autonomous sessions. The program is individualized according to age, aerobic capacity, and PA preferences. Sessions are also tailored to the biological, psychological, and social parameters of patients. The total duration of the intervention is 3 months. To date, no PA studies have been performed in patients under 21 years of age requiring aGCSH during the sterile isolation phase. EVAADE will therefore be the first study in this population to offer an innovative procedure with a connected device.
The protocol is a phase I open label study evaluating the safety and feasibility of peri-transplant infusion of freshly expanded interferon gamma primed MSCs in adult and pediatric patients undergoing HCT for acute leukemia and myelodysplastic syndrome (MDS).
Aim of this prospective randomized trial is to compare maintenance treatment with panobinostat interspersed with donor lymphocyte infusions (DLI) versus the standard approach of pre-emptive DLI alone in patients with poor-risk AML/MDS having favorably received an allogeneic HSCT followed by engraftment, donor chimerism and hematopoietic reconstitution.
Although PARP inhibitors (PARPi) have proved effective in treating many cancers, few patients receiving PARPi may experience rare but life-threatening adverse events such as myelodysplastic syndrome (MDS) and/or acute myeloid leukaemia (AML). Today, data about MDS/AML are scarce. The objective was to investigate reports of MDS/AML adverse events related to PARPi, including olaparib, rucaparib, niraparib, talazoparib and veliparib using the World Health Organization (WHO) and the French pharmacovigilance databases.
The primary objective of this study is to evaluate the efficacy of magrolimab in combination with azacitidine compared to that of azacitidine plus placebo in previously untreated participants with intermediate/high/very high risk myelodysplastic syndrome (MDS) by Revised International Prognostic Scoring System (IPSS-R) as measured by complete remission (CR) and overall survival (OS).
The objective of this study is the description of the possible association between genetic mutation/aberration profiles, inflammatory tonus and clinical phenotype based on PROMs and HRQoL. Apart from gaining a better understanding of the causal correlation between genetics, sterile inflammatory processes and QoL (e.g. fatigue) in MDS, this study is supposed to identify potential novel biomarkers and, ultimately, therapeutic targets.
The investigators want to compare the global response rate of patients with myelodysplastic syndrome (MDS) and acute myeloid leukemia (AML) after six months of treatment with 5-azacitidine on two different doses. First group of 50 mg/m2 for 10 days each 28 days versus 75 mg/m2 for 7 days on 28 days cycles.
This phase II trial studies how well azacitidine and venetoclax with or without pembrolizumab work in treating older patients with newly diagnosed acute myeloid leukemia. Chemotherapy drugs, such as azacitidine, 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. Venetoclax is in a class of medications called B-cell lymphoma-2 (BCL-2) inhibitors. It may stop the growth of cancer cells by blocking Bcl-2, a protein needed for cancer cell survival. 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 azacitidine and venetoclax with pembrolizumab may increase the rate of deeper/better responses and reduce the chance of the leukemia coming back in patients with newly diagnosed acute myeloid leukemia compared to conventional therapy of azacitidine and venetoclax alone.
This Research study is being done to characterize the safety, tolerability, and preliminary antitumor activity of the NEXI-001 T cell product (a new experimental therapy), which contains populations of CD8+ T cells targeting multiple leukemia associated antigen peptides in patients with Acute Myeloid Leukemia (AML) or Myelodysplastic Syndrome (MDS) who have relapsed disease after an allogeneic hematopoietic cell transplant (HCT). The study will enroll AML or MDS patients who have either Minimal Residual Disease (MRD) or relapsed disease after a human leukocyte antigen (HLA)-matched allogeneic HCT. Patients who have had an HLA-mismatched or haploidentical allogeneic HCT will not be eligible to participate in this study. Eligible patients for this study must also have ≥ 50% T-cell chimerism from the original donor at the time study entry. The enrolled patients will undergo bridging therapy for the purposes of disease control while the NEXI-001 T cell product is being manufactured. Choice of bridging therapy administered will be per the Investigator's discretion, but is limited to acceptable agents as specified in the protocol. Bridging therapy will be administered prior to lymphodepleting (LD) therapy, with the last dose of the bridging therapy administered ≥ 14 days prior to initiation of LD therapy. Within 72 hours after completing LD therapy, patients will receive a single IV infusion of the NEXI-001 T cell product.
This phase II trial studies how well decitabine with ruxolitinib, fedratinib, or pacritinib works before hematopoietic stem cell transplant in treating patients with accelerated/blast phase myeloproliferative neoplasms (tumors). Drugs used in chemotherapy, such as decitabine, 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. Ruxolitinib, fedratinib, and pacritinib may stop the growth of tumor cells by blocking some of the enzymes needed for cell growth. Giving chemotherapy before a donor hematopoietic 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. The donated stem cells may also replace the patient's immune cells and help destroy any remaining cancer cells. Decitabine, with ruxolitinib, fedratinib, or pacritinib may work better than multi-agent chemotherapy or no pre-transplant therapy, in treating patients with accelerated/blast phase myeloproliferative neoplasms.