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The Mutational Landscape of Myeloid Leukaemia in Down Syndrome
Carini Picardi Morais de Castro1, Maria Cadefau1,2, Sergi Cuartero1,2
1Josep Carreras Leukaemia Research Institute (IJC), Campus Can Ruti, 08916 Badalona, Spain.
Insights
Children with Down syndrome (DS) face high risks of blood disorders. Mutations in GATA1 lead to transient myeloproliferative disorder, which can progress to myeloid leukaemia of Down syndrome (ML-DS) with further genetic changes.
Area of Science:
- Genetics
- Hematology
- Pediatric Oncology
Background:
- Children with Down syndrome (DS) have a higher incidence of hematologic disorders.
- Paediatric myeloid malignancies in DS follow a distinct stepwise clinical progression.
Purpose of the Study:
- To review and discuss the current understanding of sequential genetic alterations in myeloid leukaemia of Down syndrome (ML-DS).
Main Methods:
- Review of existing literature on genetic mutations and clinical evolution in ML-DS.
- Analysis of mutation frequencies in epigenetic regulators and signaling pathways.
Main Results:
- DS newborns with GATA1 mutations develop transient myeloproliferative disorder (TMD).
- ML-DS arises from secondary mutations in epigenetic regulators (e.g., cohesin, CTCF, EZH2) and signaling pathways (JAK/STAT, RAS).
- Mutations affecting 3D genome organization are present in nearly 50% of ML-DS cases.
Conclusions:
- The stepwise acquisition of genetic mutations, initiated by GATA1, is crucial for ML-DS development.
- Understanding the cooperation between genetic mutations, trisomy 21, and mutant GATA1 is key to comprehending ML-DS pathogenesis.
Abstract:
Children with Down syndrome (DS) are particularly prone to haematopoietic disorders. Paediatric myeloid malignancies in DS occur at an unusually high frequency and generally follow a well-defined stepwise clinical evolution. First, the acquisition of mutations in the GATA1 transcription factor gives rise to a transient myeloproliferative disorder (TMD) in DS newborns. While this condition spontaneously resolves in most cases, some clones can acquire additional mutations, which trigger myeloid leukaemia of Down syndrome (ML-DS). These secondary mutations are predominantly found in chromatin and epigenetic regulators-such as cohesin, CTCF or EZH2-and in signalling mediators of the JAK/STAT and RAS pathways. Most of them are also found in non-DS myeloid malignancies, albeit at extremely different frequencies. Intriguingly, mutations in proteins involved in the three-dimensional organization of the genome are found in nearly 50% of cases. How the resulting mutant proteins cooperate with trisomy 21 and mutant GATA1 to promote ML-DS is not fully understood. In this review, we summarize and discuss current knowledge about the sequential acquisition of genomic alterations in ML-DS.
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