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Identifying DNA Mutations in Purified Hematopoietic Stem/Progenitor Cells
Published on: February 24, 2014
Therapy-related myelodysplastic syndromes in the genomics era
Aline Renneville1, Elsa Bernard2, Jean-Baptiste Micol3
1Gustave-Roussy, Department of Medical Biology and Pathology, Villejuif, France; Gustave-Roussy, université Paris-Saclay, Inserm U1287, Villejuif, France.
Abstract:
Therapy-related myelodysplastic syndromes (t-MDS) represent a heterogeneous group of malignancies that arise as a late complication of prior exposure to chemotherapy and/or radiotherapy administered for a primary condition. T-MDS account for approximately 20% of all MDS and are characterized by resistance to current treatment strategies and poor prognosis. Our understanding of t-MDS pathogenesis has considerably improved over the last 5 years with the availability of deep sequencing technologies. T-MDS development is now considered as a multifactorial process resulting from complex interactions between an underlying germline genetic susceptibility, the stepwise acquisition of somatic mutations in hematopoietic stem cells, the clonal selection pressure exerted by cytotoxic therapies, and alterations of the bone marrow microenvironment. The survival of patients with t-MDS is generally poor. This can be explained by both patient-related factors including poor performance status and less tolerance to treatment and disease-related factors, such as the presence of chemoresistant clones, high-risk cytogenetic alterations and molecular features (e.g. high frequency of TP53 mutations). Around 50% of t-MDS patients are classified as high/very high risk based on IPSS-R or IPSS-M scores, versus 30% in de novo MDS. Long-term survival is only achieved in a minority of t-MDS patients who receive allogeneic stem cell transplantation, but the development of novel drugs may open new therapeutic opportunities, especially in unfit patients. Further investigations are needed to improve the identification of patients at higher risk of developing t-MDS and determine whether primary disease treatment can be modified to prevent the occurrence of t-MDS.
Insights
Therapy-related myelodysplastic syndromes (t-MDS) are difficult to treat malignancies. Advances in sequencing reveal t-MDS arise from genetic factors, mutations, and therapy, leading to poor patient survival.
Area of Science:
- Hematology
- Oncology
- Genetics
Background:
- Therapy-related myelodysplastic syndromes (t-MDS) are malignancies developing after chemotherapy/radiotherapy.
- t-MDS constitute 20% of myelodysplastic syndromes (MDS) and exhibit poor prognosis.
- Understanding t-MDS pathogenesis has advanced with deep sequencing technologies.
Purpose of the Study:
- To elucidate the multifactorial pathogenesis of t-MDS.
- To identify factors contributing to the poor survival rates in t-MDS patients.
- To explore potential avenues for improved risk stratification and prevention strategies.
Main Methods:
- Review of recent advancements in understanding t-MDS pathogenesis.
- Analysis of factors influencing patient survival in t-MDS.
- Discussion of current risk stratification scores (IPSS-R, IPSS-M) and their application to t-MDS.
Main Results:
- t-MDS development involves germline susceptibility, somatic mutations, therapy pressure, and microenvironment alterations.
- Poor survival is linked to patient factors (performance status) and disease factors (chemoresistance, TP53 mutations).
- Approximately 50% of t-MDS patients are high/very high risk, compared to 30% in de novo MDS.
Conclusions:
- t-MDS pathogenesis is complex, involving genetic and environmental interactions.
- Novel therapeutic strategies and improved risk identification are crucial for t-MDS management.
- Further research is needed to prevent t-MDS and optimize primary treatment strategies.
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