View clinical trials related to Acute Myeloid Leukemia.
Filter by:In a spanish series of AML patients it is intended to perform, at the moment of diagnosis, pyrosequencing of IDH1 and IDH2 genes. Taking into account the incidence of AML in the area, it is planed to study 100 patients per year. Among the cases with IDH1/2 mutations, targeted deep sequencing (TDS) of a panel covering coding regions of 40 myeloid related genes will be applied. With TDS, pyrosequencing results will be validated at the same time that prognosis value of co-mutated genes could be studied. Furthermore, with TDS, molecular architecture of IDH1 and IDH2 mutated cases might be better understood.
To assess the safety and efficacy of galinpepimut-S (GPS) compared with investigator's choice of best available therapy (BAT) on overall survival (OS) in subjects with acute myeloid leukemia (AML) who are in second or later complete remission (CR2) or second or later complete remission with incomplete platelet recovery (CRp2).
This trial will look at a drug called SEA-CD70 with and without azacitidine, to find out if it is safe for patients with myelodysplastic syndrome (MDS) and acute myeloid leukemia (AML). It will study SEA-CD70 to find out what its side effects are and if it works for AML and MDS. A side effect is anything the drug does besides treating cancer. This study will have six groups or "parts." - Part A will find out how much SEA-CD70 should be given to patients. - Part B will use the dose found in Part A to find out how safe SEA-CD70 is and if it works to treat patients with MDS. - Part C will use the dose found in Part A to find out how safe SEA-CD70 is and if it works to treat patients with AML. - Part D will find out how much SEA-CD70 with azacitidine should be given to patients. - Part E will use the dose found in Part D to find out how safe SEA-CD70 with azacitidine is and if it works to treat patients with MDS or MDS/AML that has not been treated. - Part F will use the dose found in Part D to find out how safe SEA-CD70 with azacitidine is and if it works to treat patients with MDS or MDS/AML.
Natural killer (NK) cells exert antitumor effects via their cytotoxic and cytokine-secreting capacity without present of clinical symptoms. In recent years, with the continuous advancement of in vitro expansion methods, the application of good quality management technology, NK cells could be clinical grade expanded without the need for pre-purification, feeder-free, and serum-free culture. In this clinical trial the investigators want to demonstrate the safety and efficacy chemotherapy combined with donor-derived in vitro activated NK cells infusion for high risk AML patients.
Patients eligible for this study have a type of blood cancer Acute Myeloid Leukemia (AML) which has come back or has not gone away after treatment. The body has different ways of fighting disease and infection, and this research study combines two different ways of fighting cancer with antibodies and T cells with the hope that they will work together. T cells (also called T lymphocytes) are special infection-fighting blood cells that can kill other cells including tumor cells. Antibodies are types of proteins that protect the body from bacterial and other infectious diseases. Both antibodies and T cells have been used to treat patients with cancers; they have shown promise, but have not been strong enough to cure most patients when used alone. T lymphocytes can kill tumor cells but there normally are not enough of them to kill all the tumor cells. Some researchers have taken T cells from a person's blood, grown more of them in the laboratory and then given them back to the person. The antibody used in this study targets CLL-1. This antibody sticks to AML cells because of a substance (protein) on the outside of these cells called CLL-1. For this study, the antibody to CLL-1 has been changed so that instead of floating free in the blood, it is now joined to the T cells. When T-cells contain an antibody that is joined to them, they are called chimeric antigen receptor T-cells or CAR-T cells. In the laboratory, the investigators have also found that T cells work better if proteins that stimulate T cells are also added, such as one called CD28. Adding the CD28 makes the cells grow better and last longer in the body, thus giving the cells a better chance of killing the leukemia or lymphoma cells. In this study we are going to attach the CLL-1 chimeric receptor that has CD28 added to it to the patient's T cells. We will then test how long the cells last. These CLL-1 chimeric antigen receptor T cells with CD28 are investigational products not approved by the Food and Drug Administration.
The study aims to detect pattern of expression of PHF19 gene and EZH2 gene deletion in acute myeloid leukemia patients and detect their prognostic role on patients outcome.
This phase II trial studies how well cytarabine and idarubicin or daunorubicin with or without pembrolizumab work in treating patients with newly-diagnosed acute myeloid leukemia. Chemotherapy drugs, such as cytarabine, idarubicin, and daunorubicin, 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. 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 induction chemotherapy with pembrolizumab may work better than induction chemotherapy alone in treating patients with acute myeloid leukemia.
This trial will evaluate the effectiveness and safety of haploid donor-derived in vitro activated natural killer(NK) cells infusion for Treating acute myeloid leukemia Patients With minimal residual disease.
This phase II trial studies how well CPX-351 or the CLAG-M regimen (consisting of the drugs cladribine, cytarabine, G-CSF, and mitoxantrone) works in treating medically less-fit patients with acute myeloid leukemia or other high-grade myeloid neoplasms. Drugs used in chemotherapy, such as CPX-351, cladribine, cytarabine, G-CSF, and mitoxantrone, 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 CPX-351 or the CLAG-M regimen at doses typically used for medically-fit patients with acute myeloid leukemia may work better than reduced doses of CPX-351 in treating medically less-fit patients with acute myeloid leukemia or other high-grade myeloid neoplasms.
This phase II trial studies how well a donor stem cell transplant, treosulfan, fludarabine, and total-body irradiation work in treating patients with blood cancers (hematological malignancies). Giving chemotherapy and total-body 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. It may also stop the patient's immune system from rejecting the donor's stem 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.