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Myelodysplastic Syndrome clinical trials

View clinical trials related to Myelodysplastic Syndrome.

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NCT ID: NCT02123836 Recruiting - Clinical trials for Myelodysplastic Syndrome

Natural Killer Cells in Acute Leukaemia and Myelodysplastic Syndrome

Start date: April 2014
Phase: Phase 1
Study type: Interventional

A novel method has been developed to expand natural (NK) cells and enhance their cytotoxicity against cancer cells while maintaining low killing capacity against non-transformed cells. In this method, donor NK cells are expanded by co-culture with the irradiated K562 cell line modified to express membrane bound IL-15 and 41BB ligand (K562-mb15-41BBL). Expression of these proteins in conjunction with unknown stimuli provided by K562 cells promotes selective growth of NK cells. Then, the expanded NK cell population is depleted of T cells to prevent graft versus host disease (GVHD). Expanded and activated NK cells showed powerful anti-leukemic activity against acute myeloid leukemia (AML) cells in vitro and in animal models of leukemia.Unpublished laboratory results also demonstrated that T-cell acute lymphoblastic leukaemia (T-ALL) is extremely sensitive to the cytotoxicity exerted by the expanded and activated NK cells. The present study represents the translation of the laboratory findings into clinical application. The study proposes to determine the feasibility, safety and efficacy of infusing expanded NK cells into patients who have AML or T-lineage ALL which is resistant to standard therapy as demonstrated by persistent minimal residual disease (MRD). Patients with myelodysplastic syndrome (MDS), who are at high risk to develop AML will also be eligible for the study. In this patient cohort, the study will also investigate the in vivo lifespan and phenotype of the expanded NK cells. The main hypothesis to be tested in this study is that infusion of expanded activated NK cells can produce measurable clinical responses in patients with AML or T-ALL.

NCT ID: NCT02121418 Completed - Clinical trials for Myelodysplastic Syndrome

Decitabine and Cytarabine in Treating Older Patients With Newly Diagnosed Acute Myeloid Leukemia, High Risk Myelodysplastic Syndrome, or Myeloproliferative Neoplasm

Start date: June 2014
Phase: N/A
Study type: Interventional

This clinical trial studies decitabine and cytarabine in treating older patients with newly diagnosed acute myeloid leukemia, myelodysplastic syndrome that is likely to come back or spread to other places in the body, or myeloproliferative neoplasm. Drugs used in chemotherapy, such as decitabine and cytarabine, work in different ways to stop the growth of cancer cells, either by killing the cells or by stopping them from dividing. Giving decitabine and cytarabine may work better than standard therapies in treating cancers of the bone marrow and blood cells, such as acute myeloid leukemia, myelodysplastic syndrome, or myeloproliferative neoplasm.

NCT ID: NCT02117297 Completed - Clinical trials for Myelodysplastic Syndrome

SCT Plus Immune Therapy in Average Risk AML/MDS

Start date: January 12, 2012
Phase: Phase 2
Study type: Interventional

Allogeneic stem cell transplantation followed by targeted immune therapy with Gemtuzumab Ozogamicin (Mylotarg) will be given to patients with average risk AML or MDS.

NCT ID: NCT02117219 Completed - Clinical trials for Myelodysplastic Syndrome

Phase 1 Study to Evaluate MEDI4736 in Subjects With Myelodysplastic Syndrome

Start date: May 20, 2014
Phase: Phase 1
Study type: Interventional

This is a multicenter, open-label, Phase 1 study to assess the safety and antitumor activity of MEDI4736 as Monotherapy or in Combination with Tremelimumab with or without Azacitidine in Subjects with myelodysplastic syndrome after treatment with hypomethylating agents

NCT ID: NCT02115295 Recruiting - Clinical trials for Acute Myeloid Leukemia

Cladribine, Idarubicin, Cytarabine, and Venetoclax in Treating Patients With Acute Myeloid Leukemia, High-Risk Myelodysplastic Syndrome, or Blastic Phase Chronic Myeloid Leukemia

Start date: May 19, 2014
Phase: Phase 2
Study type: Interventional

This phase II trial studies how well cladribine, idarubicin, cytarabine, and venetoclax work in patients with acute myeloid leukemia, high-risk myelodysplastic syndrome, or blastic phase chronic myeloid leukemia. Drugs used in chemotherapy, such as cladribine, idarubicin, cytarabine, and venetoclax, 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.

NCT ID: NCT02103478 Completed - Clinical trials for Myelodysplastic Syndrome

Pharmacokinetic Guided Dose Escalation and Dose Confirmation With Oral Decitabine and Oral Cytidine Deaminase Inhibitor (CDAi) in Patients With Myelodysplastic Syndromes (MDS)

Start date: October 28, 2014
Phase: Phase 1/Phase 2
Study type: Interventional

This first-in-human, 3-stage, open-label study evaluated the safety and pharmacokinetics of ASTX727, as well as determined the dose for later stages.

NCT ID: NCT02085798 Completed - Clinical trials for Myelodysplastic Syndrome

Health Outcomes of Recently Diagnosed Myelodysplastic Syndrome (MDS)/Chronic Myelomonocytic Leukemia (CMML) Patients Depending on Treatment Strategy (Wait and See, Support, Active Treatment)

Start date: December 17, 2012
Phase:
Study type: Observational

Post-authorisation observational study to assess the evolution in normal clinical practice of patients recently diagnosed with myelodysplastic syndrome (MDS) or chronic myelomonocytic leukaemia (CMML), depending on the moment when active treatment is initiated. Subjects will be recruited from approximately 50 haematology sites in Spain.

NCT ID: NCT02083250 Completed - Clinical trials for Myelodysplastic Syndrome

Fludarabine Phosphate, Clofarabine, and Busulfan With Vorinostat in Treating Patients With Acute Leukemia in Remission or Relapse Undergoing Donor Stem Cell Transplant

Start date: March 6, 2014
Phase: Phase 1
Study type: Interventional

This phase I trial studies the side effects and best dose of vorinostat when given together with fludarabine phosphate, clofarabine, and busulfan in treating patients with acute leukemia that is under control (remission) or has returned (relapse) undergoing donor stem cell transplant. Vorinostat may stop the growth of cancer cells by blocking some of the enzymes needed for cell growth. Drugs used in chemotherapy, such as fludarabine phosphate, clofarabine, and busulfan, 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 vorinostat together with fludarabine phosphate, clofarabine, and busulfan before a donor stem cell transplant may be a better treatment for patients with acute leukemia.

NCT ID: NCT02075034 Withdrawn - Clinical trials for Myelodysplastic Syndrome

Three Dosing Schedules of Oral Rigosertib in MDS Patients

Start date: May 2014
Phase: Phase 1
Study type: Interventional

This study will compare the dosing regimen of oral rigosertib, which has been used in other studies of lower risk Myelodysplastic Syndrome (MDS), with 2 new dosing regimens to determine if one of the new regimens gives improved results as measured by disease status, side effects, and analyses of blood and urine samples.

NCT ID: NCT02065869 Terminated - Clinical trials for Acute Lymphoblastic Leukemia

Safety Study of Gene Modified Donor T-cells Following TCRαβ+ Depleted Stem Cell Transplant

Start date: April 2014
Phase: Phase 1/Phase 2
Study type: Interventional

This study will evaluate pediatric patients with malignant or non-malignant blood cell disorders who are having a blood stem cell transplant depleted of T cell receptor (TCR) alfa and beta cells that comes from a partially matched family donor. The study will assess whether immune cells, called T cells, from the family donor, that are specially grown in the laboratory and given back to the patient along with the stem cell transplant can help the immune system recover faster after transplant. As a safety measure these T cells have been programmed with a self-destruct switch so that they can be destroyed if they start to react against tissues (Graft versus host disease).