Researchers are looking for new ways to treat people with a type of blood cancer called precursor B-cell Acute Lymphoblastic Leukemia (B-ALL) that is relapsed- the cancer has come back after treatment, or refractory - the current treatment has stopped working to slow or stop cancer growth. This study will have two parts. In the first part (dose escalation phase) the goal is to learn about the safety of a study treatment, MK-1045, and to find the best dose level of MK-1045 that is tolerated and may work to treat B-ALL. In the second part (Phase II) researchers want to learn how well MK-1045 works to treat B-ALL.
Clinical Trials Radar
Below you will find currently recruiting clinical trials for cancer patients - one click lets you show only trials conducted in Poland. The list is automatically updated from the ClinicalTrials.gov database, and we translate descriptions into Polish.
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Descriptions are automatically translated with AI assistance. Always verify details in the original on ClinicalTrials.gov and consult your treating physician.
Found 375 of 3445 trials— page 12 of 15
Registry Platform Hematologic Malignancies (RUBIN) - Extension of Tumor Registry Lymphatic Neoplasms
The purpose of the project is to set up a national, prospective, longitudinal, multicenter registry platform to document uniform data on characteristics, molecular diagnostics, treatment and course of disease, to collect patient-reported outcomes and to establish a decentralized biobank for patients with hematological malignancies in Germany.
The purpose of the study is to evaluate if firefighter exposure to hazardous compounds will increase the incidence of premalignant hematological states which subsequently increases the risk of the development of hematologic malignancies, and potentially other pathophysiological consequences.
This Phase 3 study in adult participants with newly diagnosed low-risk APL will evaluate the efficacy, safety, and PK of an oral capsule formulation of ATO, in combination with ATRA.
Evaluation of the Efficacy and Safety of Romiplostim N01 for the Treatment of Cancer Treatment-Induced Thrombocytopenia (CTIT) in Patients with Leukemia
A treatment cycle is 28 days. Tagraxofusp will be administered at 9 mcg/kg IV over 15 minutes (-5 or +15 minutes) daily for 3 consecutive days (or 3 doses over a period not to exceed 10 days if postponement is required to allow for toxicity resolution), followed by azacitidine administered at 75 mg/m2 SQ or IV daily on Day 4 through Day 10. Venetoclax will begin on Day 4 and continue through Day 24 (21 consecutive days). A bone marrow biopsy (BM Bx) will be performed on Day 24 (+3 days) of Cycle 1. Subjects who do not achieve a CRm will proceed with the next cycle of Induction Phase study treatment, irrespective of hematologic laboratory values. Cycle 2+ will consist of tagraxofusp 9 mcg/kg IV over 15 minutes daily for 3 consecutive days (Day 1-3 or 3 doses over a period not to exceed 10 days if postponement is required to allow for toxicity resolution), azacitidine 75 mg/m2 SQ or IV on Day 1 through Day 7 or Days 1-7 or 1-5, 8-9 and venetoclax 400 mg daily Day 1 through Day 21. A bone marrow biopsy (BM Bx) will be performed on Day 21 (+3 days) of Cycle 2. If a CRm is obtained or maintained, the subject will move to or remain on the Continuation Phase. Subjects who do not achieve a marrow CR (CRm) after Cycle 2 will proceed with the next cycle of Induction Phase study treatment as described above, irrespective of hematologic laboratory values. If a CRm is obtained after Cycle 3 or 4, the subject will move to the Continuation Phase . If a CRm is not obtained after Cycle 4, study treatment will be discontinued and the subject will move to follow up. If per the investigator, the subject is receiving clinical benefit, study treatment may continue until toxicity or completion of 12 total cycles. A BM Bx will be performed at least every 3 cycles for these subjects.
This phase II trial studies the safety and how well of loncastuximab tesirine when given together with mosunetuzumab works in treating patients with diffuse large B-cell lymphoma that has come back (relapsed) or does not respond to treatment (refractory). Loncastuximab tesirine is a monoclonal antibody, loncastuximab, linked to a toxic agent called tesirine. Loncastuximab attaches to anti-CD19 cancer cells in a targeted way and delivers tesirine to kill them. Mosunetuzumab is a monoclonal antibody that may interfere with the ability of cancer cells to grow and spread. Giving loncastuximab tesirine with mosunetuzumab may help treat patients with relapsed or refractory diffuse large B-cell lymphoma.
Acute lymphoblastic leukemia (ALL) is the most common malignancy in children and the second most frequent acute leukemia in adults. B-cell ALL constitutes approximately 85% of all ALL diagnoses. In Pakistan, ALL represents the most prevalent haematological malignancy presenting to tertiary centres, with AFBMTC receiving the largest national referral volume for haematological malignancies and transplantation. First-line combination chemotherapy achieves complete remission (CR) in \>95% of paediatric patients; however, 15-20% relapse. Outcomes following first relapse are substantially inferior: second-line salvage chemotherapy achieves CR2 in 30-50% of patients, and long-term event-free survival (EFS) after conventional chemotherapy alone is \<10%. Outcomes in adult ALL are even more dismal, with OS at 5 years below 40% even in first CR without allogeneic transplant. Patients with primary refractory ALL or multiply relapsed ALL have an unmet medical need for novel therapeutic approaches. The classical paradigm of chemotherapy followed by allogeneic haematopoietic stem cell transplantation (allo-HSCT) is limited by donor availability, conditioning-related mortality, and inability to achieve remission before transplant.
This phase II trial studies how well the addition of nemtabrutinib to lisocabtagene maraleucel in treating patients with chronic lymphocytic leukemia/small lymphocytic lymphoma (CLL/SLL) that has come back after a period of improvement (relapsed) or that does not respond to treatment (refractory). Nemtabrutinib may stop the growth of cancer cells by blocking some of the enzymes needed for cell growth. Lisocabtagene maraleucel is a type of treatment called chimeric antigen receptor (CAR) T-cell therapy, in which a patient's T-cells (a type of immune system cell) are changed in the laboratory so they will attack cancer cells. T-cells are taken from a patient's blood. Then the gene for a special receptor that binds to a certain protein on the patient's cancer cells is added to the T-cells in the laboratory. The special receptor is called a chimeric antigen receptor (CAR). Large numbers of the CAR T-cells are grown in the laboratory and given to the patient by infusion for treatment. Adding nemtabrutinib to lisocabtagene maraleucel may be an effective treatment for relapsed/refractory CLL/SLL.
This study is a treatment protocol with blinatumomab for infants under 1 year old who are diagnosed with acute lymphoblastic leukemia with a specific unfavorable genetic alteration. The purpose of the study is to improve the outcome of this disease in infants.
This is a single center 2-phase study to assess effects of using text messages on adherence to oral chemotherapy for patients with acute lymphoblastic leukemia (ALL) or T-cell lymphoblastic lymphoma.
The purpose of this study is to provide a new type of treatment for AML. This treatment combines a new type of stem cell transplant along with treatment using chimeric antigen receptor (CAR) T cells that have been engineered to recognize and attack your AML cells. The first treatment is a modified stem cell transplant, using blood-forming stem cells donated from a healthy donor. From the same donor, we will also make CAR T-cells, which are leukemia fighting cells, which will be given to the patient via an infusion into the vein after the transplanted stem cells have started to grow healthy blood cells. The modification of the stem cell transplant means that the healthy bone marrow cells will be "invisible" to the CAR T-cells that are trying to kill the leukemia cells.
This clinical trial is designed to assess the safety, preliminary efficacy, and pharmacokinetics (PK) of DS3790a monotherapy and combination regimens in participants with hematological malignancies.
The purpose of this study is to evaluate the therapeutic benefit and safety of subcutaneous (SC) Surovatamig monotherapy as consolidation therapy in patients with Chronic Lymphocytic Leukaemia (CLL)/ Small Lymphocytic Lymphoma (SLL) with unmutated IGHV (uIGHV).
Background: \- Lab studies help researchers better understand cancer biology. This information may lead to new methods for diagnosing or treating cancer. To develop these studies, researchers want to collect samples from people with cancer or precancer conditions of the lymph system. These conditions include multiple myeloma, different types of lymphoma, and adult leukemia/lymphoma. The samples collected will include blood, urine, bone marrow, and tumor and skin tissue. Objectives: \- To collect tissue samples to study different types of lymph cancer. Eligibility: \- Individuals at least 18 years of age who have a lymphoid cancer or precancer condition. Design: * Participants will be screened with a physical exam and medical history. * Different samples will be collected for study. Blood samples will be collected at the initial testing. More blood samples will be collected at different treatment points. Other liquid samples include urine, bone marrow, and any abnormal fluid. Tumor tissue and skin tissue biopsies will also be collected for study. * Treatment will not be provided as part of this study.
Background: A prospective cohort of Inherited Bone Marrow Failure Syndrome (IBMFS) will provide new information regarding cancer rates and types in these disorders. Pathogenic variant(s) in IBMFS genes are relevant to carcinogenesis in sporadic cancers. Patients with IBMFS who develop cancer differ in their genetic and/or environmental features from patients with IBMFS who do not develop cancer. These cancer-prone families are well suited for cancer screening and prevention trials targeting those at increased genetic risk of cancer. Carriers of IBMFS pathogenic variant(s) are at increased risk of cancer. The prototype disorder is Fanconi's Anemia (FA); other IBMFS will also be studied. Objectives: To determine the types and incidence of specific cancers in patients with an IBMFS. To investigate the relevance of IBMFS pathogenic variant(s) in the carcinogenesis pathway of the sporadic counterparts of IBMFS-associated cancers. To identify risk factors for IBMFS-related cancers in addition to the primary germline pathogenic variant(s). To determine the risk of cancer in IBMFS carriers. Eligibility: North American families with a proband with an IBMFS. IBMFS suspected by phenotype, confirmed by pathogenic variant(s) in an IBMFS gene, or by clinical diagnostic test. Fanconi's anemia: birth defects, marrow failure, early onset malignancy; positive chromosome breakage result. Diamond-Blackfan anemia: pure red cell aplasia; elevated red cell adenosine deaminase. Dyskeratosis congenita: dysplastic nails, lacey pigmentation, leukoplakia; marrow failure. Shwachman-Diamond Syndrome: malabsorption; neutropenia. Amegakaryocytic thrombocytopenia: early onset thrombocytopenia. Thrombocytopenia absent radii: absent radii; early onset thrombocytopenia. Severe Congenital Neutropenia: neutropenia, pyogenic infections, bone marrow maturation arrest. Pearson's Syndrome: malabsorption, neutropenia, marrow failure, metabolic acidosis; ringed sideroblasts. Other bone marrow failure syndromes: e.g. Revesz Syndrome, WT, IVIC, radio-ulnar synostosis, ataxia-pancytopenia. First degree relatives of IBMFS-affected subjects as defined here, i.e. siblings (half or full), biologic parents, and children. Grandparents of IBMFS-affected subjects. Patients in the general population with sporadic tumors of the types seen in the IBMFS (head and neck, gastrointestinal, and anogenital cancer), with none of the usual risk factors (e.g. smoking, drinking, HPV). Design: Natural history study, with questionnaires, clinical evaluations, clinical and research laboratory test, review of medical records, cancer surveillance. Primary endpoints are all cancers, solid tumors, and cancers specific to each type of IBMFS. Secondary endpoints are markers of pre-malignant conditions, such as leukoplakia, serum or tissue evidence of carcinogenic viruses, and bone marrow morphologic myelodyplastic syndrome or cytogenetic clones.
The goal of this clinical research study is to learn if azacitidine combined with Chidamide will help to control the disease in patients with high-risk AML after an allogeneic stem cell transplant. The safety of this combination will also be studied.
The drug that will be investigated in the trial is an antibody, GEN3018. Since this is the first trial of GEN3018 in humans, the main purpose is to evaluate safety. In addition to safety, the trial will determine the recommended GEN3018 dose(s) to be tested in a larger group of participants and assess preliminary anti-tumor activity of GEN3018. GEN3018 will be studied in refractory (resistant to treatment) or relapsed (disease has returned) acute myeloid leukemia (also known as R/R AML) and refractory or relapsed higher-risk myelodysplastic syndrome (also known as R/R HR-MDS). The trial consists of 2 parts: 1. Part 1 Dose Escalation will test increasing doses of GEN3018 to identify a safe dose level to be tested in the next part 2. Part 2 Dose Refinement will further test the GEN3018 dose(s) determined from the Dose Escalation. Up to 78 participants may be treated in this trial (up to 60 participants in Part 1; up to 18 participants in Part 2). For an individual participant in the trial, the estimated treatment duration will be up to 1 year. Participation in the trial will require regular scheduled visits to the site. At site visits, there will be various tests (such as blood draws) to monitor whether the treatment is safe and effective. Participants will also be contacted every 3 months after treatment ends to monitor how they are doing. All participants in the trial will receive active drug (ie, GEN3018); no one will be given placebo.
This study is designed to evaluate the safety and effectiveness of CART123 cells either alone or when combined with ruxolitinib in pediatric and young adult subjects with relapsed or refractory AML. Subjects will be enrolled into one of two treatment cohorts: subjects who will receive CART123 alone (Cohort A) or subjects who will receive CART123 in combination with ruxolitinib (Cohort B).
This study will evaluate the safety, tolerability, and efficacy of Orca-T in participants undergoing reduced intensity or non-myeloablative allogeneic hematopoietic cell transplantation (alloHCT) for hematologic malignancies. Orca-T is an allogeneic stem cell and T-cell immunotherapy biologic manufactured for each patient (transplant recipient) from the mobilized peripheral blood of a specific, unique donor. It is composed of purified hematopoietic stem and progenitor cells (HSPCs), purified regulatory T cells (Tregs), and conventional T cells (Tcons).
This phase I trial tests the safety, side effects, and best dose of ASTX727 and filgrastim for the treatment of children with high risk acute myeloid leukemia that has come back after a period of improvement (recurrent) or that does not respond to treatment (refractory) who have undergone allogenic hematopoietic stem cell transplantation. ASTX727 is a combination of cedazuridine and decitabine. Cedazuridine is in a class of medications called cytidine deaminase inhibitors. It prevents the breakdown of decitabine, making it more available in the body so that decitabine will have a greater effect. Decitabine is in a class of medications called hypomethylation agents. It works by helping the bone marrow produce normal blood cells and by killing abnormal cells in the bone marrow. Filgrastim stimulates the production of neutrophils (a type of white blood cell) which can help to prevent infection. Giving ATSX727 and filgrastim may be safe and tolerable in treating children with high risk, recurrent or refractory acute myeloid leukemia who have undergone allogenic hematopoietic stem cell transplantation.
The aim of this study is to assess the real-world effectiveness of asciminib in Philadelphia chromosome-positive chronic myeloid leukemia in chronic phase (Ph+ CML-CP) patients who were either newly diagnosed or previously treated with one ATP-competitive tyrosine kinase inhibitor (TKI).
This will be a Phase 1, open-label study to evaluate the safety and efficacy of BEAM-201 in patients with R/R T-ALL or T-LLy. BEAM-201 is an allogeneic anti-CD7 CART therapy.
Single-center study, prospective, phase II trial. The study objectives are : * To assess safety and pharmacokinetics of the combination of PIO and TKI in CML subjects who experience a loss of MMR following a first TKI discontinuation. * To assess survival without loss of MMR over a 12 months period following a second TKI discontinuation in subjects who achieve or maintain \< MR4.5 with the combination PIO and TKI administered for at least 6 months.
The purpose of this study is to see how well Ibrutinib and Venetoclax (I+V) treatment works (effectiveness) for participants with chronic lymphocytic leukemia (CLL)/small lymphocytic lymphoma (SLL) when it is used in routine, everyday medical care.
Frequently asked questions
What is a clinical trial?
It is a study of a new therapy or drug involving patients, conducted according to a strict protocol and under medical supervision. For many cancer patients, it provides access to therapies that are not yet standardly available. Read also: Clinical trial phases - what they mean →
Is participation in a clinical trial paid?
Participation is free for the patient - the costs of the tested treatment are covered by the trial sponsor. Some trials also reimburse travel and accommodation costs.
How to apply for a clinical trial abroad?
Start with the trial card in our Radar - you will find eligibility criteria and contact details of the center from ClinicalTrials.gov there. Contact is usually in English; if you need support, write to us.
Data from ClinicalTrials.gov (NIH, USA). AI translations may contain errors - always check the original. The foundation is not responsible for medical decisions made based on this information.
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