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Myelodysplastic Syndromes clinical trials

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NCT ID: NCT05140811 Recruiting - Clinical trials for Acute Myeloid Leukemia

A Study of IMM01 Combined With Azacitidine in Patients With Acute Myeloid Leukemia and Myelodysplastic Syndrome

Start date: January 5, 2022
Phase: Phase 1/Phase 2
Study type: Interventional

This trial is an open-lable , multi-center, Phase 1/Phase 2 study that will evaluate the safety, tolerability, Pharmacokinetics, Pharmacodynamics and and immunogenicity of IMM01 combined with Azacitidine in patients with Acute Myeloid Leukemia (AML) and Myelodysplastic Syndrome (MDS).

NCT ID: NCT05139004 Recruiting - Clinical trials for Acute Myeloid Leukemia

90Y-DOTA-anti-CD25 Basiliximab, Fludarabine, Melphalan, and Total Marrow and Lymphoid Irradiation for the Treatment of High-Risk Acute Leukemia or Myelodysplastic Syndrome

Start date: July 19, 2022
Phase: Phase 1
Study type: Interventional

This phase I trial is to find out the best dose, possible benefits and/or side effects of 90Y-DOTA-anti-CD25 basiliximab given together with fludarabine, melphalan, and total marrow and lymphoid irradiation (TMLI) in treating patients with high-risk acute leukemia or myelodysplastic syndrome. 90Y-DOTA-anti-CD25 basiliximab is a monoclonal antibody, called basiliximab, linked to a radioactive agent called 90Y-DOTA. Basiliximab attaches to CD25 positive cancer cells in a targeted way and delivers 90Y-DOTA to kill them. Fludarabine and melphalan are common chemotherapy drugs used to prepare the bone marrow to receive transplanted cells. TMLI is a different type of targeted radiation therapy used to prepare the bone marrow to receive transplanted cells. Giving 90Y-DOTA-anti-CD25 basiliximab together with fludarabine, melphalan, and TMLI may help prepare the bone marrow to receive the transplanted cells for improved transplant outcomes in patients with acute leukemia or myelodysplastic syndrome.

NCT ID: NCT05120570 Recruiting - Lymphoma Clinical Trials

PTCy + Sirolimus/VIC-1911 as GVHD Prophylaxis in Myeloablative PBSC Transplantation

Start date: March 17, 2022
Phase: Phase 1/Phase 2
Study type: Interventional

This is a single-arm, phase I/II, study of PTCy/sirolimus plus VIC-1911 to prevent GVHD and relapse after Allogeneic Hematopoietic Cell Transplantation (alloHCT).

NCT ID: NCT05115630 Recruiting - Clinical trials for Acute Myeloid Leukemia

Off-the-shelf NK Cells + SCT for Myeloid Malignancies

Start date: April 8, 2022
Phase: Phase 1/Phase 2
Study type: Interventional

The goal of this clinical research study is to learn about the safety and effectiveness of giving KDS-1001 in combination with a standard stem cell transplant to patients with acute myeloid leukemia (AML), myelodysplastic syndrome (MDS), or chronic myeloid leukemia (CML). KDS-1001 is a study product created using certain immune cells called natural killer (NK) cells collected from a third-party donor.

NCT ID: NCT05092451 Recruiting - Clinical trials for Acute Myeloid Leukemia (AML)

Phase I/II Study of CAR.70- Engineered IL15-transduced Cord Blood-derived NK Cells in Conjunction With Lymphodepleting Chemotherapy for the Management of Relapse/Refractory Hematological Malignances

Start date: November 1, 2022
Phase: Phase 1/Phase 2
Study type: Interventional

The goal of this clinical research study is to learn about the safety of giving immune cells called natural killer (NK) cells with chemotherapy to patients with leukemia, lymphoma, or multiple myeloma. Immune system cells (such as NK cells) are made by the body to attack foreign or cancerous cells. Researchers think that NK cells you receive from a donor may react against cancer cells in your body, which may help to control the disease.

NCT ID: NCT05088356 Recruiting - Clinical trials for Myelodysplastic Syndromes

Reduced Intensity Allogeneic HCT in Advanced Hematologic Malignancies w/T-Cell Depleted Graft

Start date: September 7, 2021
Phase: Phase 1
Study type: Interventional

Reduced intensity conditioning (RIC) has emerged and been increasingly adopted as a modality to allow preparative conditioning pre transplant to be tolerated by older adults or those patients that are otherwise unfit for myeloablative conditioning. In this study, we aim to use RIC followed by matched related/unrelated donor, 7/8 matched related/unrelated donor, or haploidentical donor peripheral blood stem cell transplantation. Standard strategies to control the alloreactivity following HCT utilize immunosuppressive or cytotoxic medications. In this study, we explore donor graft engineering to enrich for immmunoregulatory populations to facilitate post transplantation immune reconstitution while minimizing graft versus host disease (GVHD) with post-transplant immunosuppressive agents.

NCT ID: NCT05086315 Recruiting - Clinical trials for Myelodysplastic Syndromes

First-in-human Study of SAR443579 Infusion in Male and Female Children and Adult Participants With Relapsed or Refractory Acute Myeloid Leukemia (R/R AML), B-cell Acute Lymphoblastic Leukemia (B-ALL), High Risk-myelodysplasia (HR-MDS), or Blastic Plasmacytoid Dendritic Cell Neoplasm (BPDCN)

Start date: December 8, 2021
Phase: Phase 1/Phase 2
Study type: Interventional

This is an open-label, multicenter, Phase 1/Phase 2, dose escalation and dose expansion study to evaluate the safety, pharmacokinetics, pharmacodynamics and anti-leukemic activity of SAR443579 in various hematological malignancies.

NCT ID: NCT05066958 Recruiting - Clinical trials for Acute Myeloid Leukemia

Ex-vivo Primed Memory Donor Lymphocyte Infusion to Boost Anti-viral Immunity After T-cell Depleted HSCT

Start date: September 16, 2021
Phase: Phase 1/Phase 2
Study type: Interventional

HSCT from an allogeneic donor is the standard therapy for high-risk hematopoietic malignancies and a wide range of severe non-malignant diseases of the blood and immune system. The possibility of performing HSCT was significantly limited by the availability of donors compatible with the MHC system. However, modern ex-vivo and in vivo technologies for depletion of T lymphocytes have made it possible to improve the outcomes of HSCT from partially compatible related (haploidentical) donors. In representative groups, it was shown that the success of HSCT from haploidentical donors is not inferior to standard procedures of HSCT from HLA-compatible unrelated donors. HSCT from haploidentical donors in children associated with the deficit of the adaptive immune response, which persists up to 6 months after HSCT and can be an increased risk of death of the patient from opportunistic infections. To solve this problem, the method of infusion of low doses of donor memory T lymphocytes was introduced. This technology is based on the possibility of adoptive transfer of memory immune response to key viral pathogens from donor to recipient. Such infusions have been shown to be safe and to accelerate the recovery of the pathogen-specific immune response. The expansion of virus-specific T lymphocytes in the recipient's body depends on exposure to the relevant antigen in vivo. Thus, in the absence of contact with the viral antigen, the adoptive transfer of memory T lymphocytes is not accompanied in vivo by the expansion of virus-specific lymphocytes and does not form a circulating pool of memory T lymphocytes, that can protect the patient from infections. Therefore the investigators assume that ex-vivo priming of donor memory lymphocytes with relevant antigens can provide optimal antigenic stimulation and may solve the problem of restoring immunological reactivity in the early stages after HSCT. Technically ex-vivo primed memory T lymphocytes will be generated by short incubation of CD45RA-depleted fraction of the graft (a product of T lymphocyte depletion) with a pool of GMP-quality peptides representing a number of key proteins of the viral pathogens. The following are proposed as targeted antigens: CMV pp65, EBV EBNA-1, EBV LMP12A, Adeno AdV5 Hexon, BKV LT, BKV VP1. An infusion of donor memory lymphocytes will be performed on the day +1 after transplantation. Parameters of the assessment will be safety and efficacy (immune response by day 60 and stability (responses by day 180).

NCT ID: NCT05061147 Recruiting - Leukemia Clinical Trials

A Study to Evaluate the Safety and Tolerability, Pharmacokinetics, Pharmacodynamics and Preliminary Efficacy of Max-40279-01 in Combination With Azacitidine (AZA) in Patients With Myelodysplastic Syndrome (MDS) or Relapsed/Refractory Acute Myeloid Leukemia (R/R AML)

Start date: September 16, 2021
Phase: Phase 1/Phase 2
Study type: Interventional

This study is a phase Ib/II study of Max-40279-01 in combination with Azacitidine (AZA) in patients with Myelodysplastic Syndrome (MDS) or Relapsed/Refractory Acute Myeloid Leukemia (R/R AML). This study include Phase Ib and Phase II study. The phase Ib study is designed to evaluate the safety and tolerability of MAX-40279-01 in combination with Azacitidine (AZA) in patients with Relapsed or Refractory AML. The phase II study is designed to preliminarily assess the efficacy and safety of Max-40279-01 in combination with Azacitidine (AZA) in patients with Myelodysplastic Syndrome (MDS) or Relapsed/Refractory Acute Myeloid Leukemia (R/R AML).

NCT ID: NCT05031897 Recruiting - Clinical trials for Acute Myeloid Leukemia

Reduced-Intensity Conditioning for the Prevention of Treatment-Related Mortality in Patients Who Undergo a Hematopoietic Stem Cell Transplant

Start date: October 25, 2021
Phase: Phase 2
Study type: Interventional

This phase II clinical trial evaluates whether a modified modality of conditioning reduces treatment-related mortality (TRM) in patients who undergo a hematopoietic stem cell transplant (HSCT) for a hematological malignancy. HSCT is a curative therapy for many hematopoietic malignancies, however this regimen results in higher rates of TRM than other forms of treatment. In recent years, less intense conditioning regimens with radiation and chemotherapy prior to HSCT have been developed. Radiation therapy uses high energy sources to kill cancer cells and shrink tumors while chemotherapy drugs like fludarabine and cyclophosphamide 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. This study evaluates whether a two-step approach with lower-intensity regimens of these treatments prior to HSCT reduces the rate of TRM.