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Use of Hematopoietic Stem Cell Transplantation to Assess the Origin of Myelodysplastic Syndrome
Published on: October 3, 2018
Dyserythropoiesis of myelodysplastic syndromes
Carine Lefèvre1, Sabrina Bondu, Salomé Le Goff
1aInstitut Cochin, Inserm U1016, CNRS UMR8104, Université Paris Descartes bLaboratory of Excellence LabEx GR-Ex cAssistance Publique-Hôpitaux de Paris, Hôpitaux Universitaires Paris Centre, Hôpital Cochin, Service d'hématologie biologique, Paris, France.
Purpose Of Review:
Myelodysplastic syndromes (MDS) are heterogeneous diseases of the hematopoietic stem cell in the elderly. Anemia is the main symptom that mostly correlates with dysplastic erythropoiesis in the bone marrow. We will review the recent advances in understanding the diverse mechanisms of dyserythropoiesis.
Recent Findings:
Dyserythropoiesis defined as 10% dysplastic erythroid cells in the bone marrow is found in more than 80% of early MDS. Immature erythroblasts accumulate at the expense of mature erythroblasts due to differentiation arrest and apoptosis. In early MDS with dyserythropoiesis, caspase-dependent cleavage of the erythroid transcription factor GATA-1 occurring in basophilic erythroblasts accounts for impairment of final maturation. Depending on initiating genetic alteration, specific mechanisms contribute to erythroid defect. In MDS with 5q deletion, the haploinsufficiency of ribosomal protein gene, RPS14, opposes the transition of immature to mature erythroblasts by inducing a p53-dependent ribosome stress, cell cycle arrest and apoptosis. Recent work identifies the activation of a p53-S100A8/9 innate immune pathway that both intrinsically and extrinsically contributes to defective erythropoiesis. In MDS with ring sideroblasts, a paradigm of dyserythropoiesis, a unique mutation in SF3B1 splicing factor gene induces a multiplicity of alterations at RNA level that deeply modifies the patterns of gene expression.
Summary:
Insights in the pathophysiology of MDS with dyserythropoiesis may guide the choice of the appropriate therapy, for instance lenalidomide in MDS with del(5q). A better understanding of the mechanisms of dyserthropoiesis is required to treat anemia in non-del(5q) MDS, especially in case of resistance to first-line therapy by erythropoiesis-stimulating agents.
Insights
Myelodysplastic syndromes (MDS) involve defective red blood cell production (dyserythropoiesis). Recent studies reveal specific molecular mechanisms, like GATA-1 cleavage and p53 pathway activation, contributing to anemia in MDS patients.
Area of Science:
- Hematology
- Molecular Biology
- Oncology
Background:
- Myelodysplastic syndromes (MDS) are clonal hematopoietic stem cell disorders common in the elderly.
- Anemia, a primary symptom of MDS, is largely attributed to ineffective red blood cell production (dyserythropoiesis).
- Understanding the molecular underpinnings of dyserythropoiesis is crucial for developing targeted therapies.
Purpose of the Study:
- To review recent advancements in the understanding of dyserythropoiesis mechanisms in MDS.
- To highlight the diverse molecular pathways contributing to ineffective erythropoiesis.
Main Methods:
- Literature review of recent research on MDS pathophysiology.
- Analysis of molecular mechanisms involved in erythroid differentiation arrest and apoptosis.
Main Results:
- Dyserythropoiesis, defined by >10% dysplastic erythroid cells, is prevalent in early MDS.
- Key mechanisms include GATA-1 cleavage, p53-dependent ribosome stress in del(5q) MDS, and SF3B1 mutations in ring sideroblast MDS.
- Activation of the p53-S100A8/9 innate immune pathway contributes to defective erythropoiesis.
Conclusions:
- Insights into MDS pathophysiology can inform therapeutic strategies, such as lenalidomide for del(5q) MDS.
- Further research is needed to address anemia in non-del(5q) MDS, particularly in cases resistant to erythropoiesis-stimulating agents.
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