National Institutes of Health Clinical Center
Bethesda, Maryland, 20892, United States
NCT Number: NCT07102849
STUDY DESCRIPTION:
Bone marrow failure can result from immune mediated attack on stem cells or from inherited genetic defects such as telomere biology disorders or Fanconi anemia. Aplastic anemia (AA), a prototype of bone marrow failure syndromes (BMFS), can be acquired or inherited. Acquired BMFS have common immune mediated pathophysiology, and include AA, lower risk myelodysplastic syndrome (MDS, particularly hypoMDS), VEXAS, large granular lymphocytosis (LGL), paroxysmal nocturnal hemoglobinuria (PNH), pure red cell aplasia (PRCA), or cytopenia of undetermined origin. Clonality is frequent in patients with BMFS. Patients with acquired AA are known to have somatic mutations in phosphatidylinositol glycan class A (PIGA), BCL6 corepressor (BCOR) and HLA genes, which are all related to the immune mediated pathophysiology and good predictors of treatment and overall outcomes. Others such as ASXL1, RUNX1, and splicing factor mutations and/or chromosome 7 aneuploidy are associated with secondary myeloid neoplasms in these patients. Somatic mutations in STAT, DNMT3A and TET2 are prevalent in many other BMFS, such as LGL and VEXAS. Except for acquired AA, the clonal dynamics and trajectories, and cooccurrence of these aberrations in other BMFS are poorly understood. How these clonal events interact with epigenetic and proteomic changes are also unknown. In addition, the role of novel genetic defects in marrow failure is poorly characterized, such as mutations associated with inborn errors of immunity or complement pathways. Our aim is to elucidate this further using multi-omics, bulk/single cell DNA and RNA techniques as well as understand the epigenetics using ATAC-seq, and proteomics. The translation work will be correlated with clinical outcomes and laboratory parameters of patients with the particular BMFS cohort being investigated.
OBJECTIVES:
Primary Objective: To characterize the molecular aberrations in BMFS and to understand how clonality, epigenetics, and proteomics contribute to hematopoiesis over the course of disease using high resolution multi-omics characterization of hematopoietic stem and progenitor cells (HSPC), immune cells and other cellular composition in peripheral blood and bone marrow samples.
Secondary Objectives:
* To correlate the molecular findings with disease presentation and clinical outcomes (response to treatment, clonal evolution to secondary myeloid neoplasm, survival) * To correlate molecular findings with clinical laboratory data, cytokine, chemokine, soluble receptor levels and growth factors * To correlate findings with peripheral or marrow flow cytometry phenotyping * To correlate findings on this study with already performed germline or somatic mutational data * To compare the genomic, epigenomic and proteomic findings with healthy age matched controls
Interested in participating?
Request Info2 year–120 year
All sexes
Observational
Bethesda, Maryland, 20892, United States
STUDY DESCRIPTION:
Bone marrow failure can result from immune mediated attack on stem cells or from inherited genetic defects such as telomere biology disorders or Fanconi anemia. Aplastic anemia (AA), a prototype of bone marrow failure syndromes (BMFS), can be acquired or inherited. Acquired BMFS have common immune mediated pathophysiology, and include AA, lower risk myelodysplastic syndrome (MDS, particularly hypoMDS), VEXAS, large granular lymphocytosis (LGL), paroxysmal nocturnal hemoglobinuria (PNH), pure red cell aplasia (PRCA), or cytopenia of undetermined origin. Clonality is frequent in patients with BMFS. Patients with acquired AA are known to have somatic mutations in phosphatidylinositol glycan class A (PIGA), BCL6 corepressor (BCOR) and HLA genes, which are all related to the immune mediated pathophysiology and good predictors of treatment and overall outcomes. Others such as ASXL1, RUNX1, and splicing factor mutations and/or chromosome 7 aneuploidy are associated with secondary myeloid neoplasms in these patients. Somatic mutations in STAT, DNMT3A and TET2 are prevalent in many other BMFS, such as LGL and VEXAS. Except for acquired AA, the clonal dynamics and trajectories, and cooccurrence of these aberrations in other BMFS are poorly understood. How these clonal events interact with epigenetic and proteomic changes are also unknown. In addition, the role of novel genetic defects in marrow failure is poorly characterized, such as mutations associated with inborn errors of immunity or complement pathways. Our aim is to elucidate this further using multi-omics, bulk/single cell DNA and RNA techniques as well as understand the epigenetics using ATAC-seq, and proteomics. The translation work will be correlated with clinical outcomes and laboratory parameters of patients with the particular BMFS cohort being investigated.
OBJECTIVES:
Primary Objective: To characterize the molecular aberrations in BMFS and to understand how clonality, epigenetics, and proteomics contribute to hematopoiesis over the course of disease using high resolution multi-omics characterization of hematopoietic stem and progenitor cells (HSPC), immune cells and other cellular composition in peripheral blood and bone marrow samples.
Secondary Objectives:
Healthy volunteers accepted: No
Only the study team can determine whether someone qualifies for participation.
Time frame: baseline
To characterize the molecular aberrations in marrow failure and to understand how clonality, epigenetics, and proteomics contribute to hematopoiesis over the course of disease using high resolution multi-omics characterization of HSPC, immune cells and other cellular composition in peripheral blood and bone marrow samples.
National Heart, Lung, and Blood Institute (NHLBI)
Nih
In-Depth Molecular Characterization in Marrow Failure Syndromes to Understand Clonal Dynamics and Expansion
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View the official ClinicalTrials.gov record (opens in a new tab)This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.
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