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Updated: Dec 13, 2025

Pan-myeloid Differentiation of Human Cord Blood Derived CD34+ Hematopoietic Stem and Progenitor Cells
Published on: August 9, 2019
Mutation accumulation and developmental lineages in normal and Down syndrome human fetal haematopoiesis
Karlijn A L Hasaart1, Freek Manders1, Marie-Louise van der Hoorn2
1Princess Máxima Center for Pediatric Oncology and Oncode Institute, Heidelberglaan 25, 3584CS, Utrecht, The Netherlands.
Insights
Somatic mutations accumulate faster in fetal development, especially in Down syndrome (trisomy 21) cells. This early mutation increase may explain the higher leukemia risk in infants and children with Down syndrome.
Area of Science:
- Developmental biology
- Cancer genomics
- Hematopoiesis
Background:
- Children have a higher leukemia incidence than adolescents despite fewer age-related mutations.
- Down syndrome (trisomy 21) newborns face an elevated leukemia risk, potentially due to fetal mutation accumulation.
Purpose of the Study:
- To investigate somatic mutation accumulation in fetal stem and progenitor cells.
- To compare mutation patterns in Down syndrome (trisomy 21) and normal fetal cells.
Main Methods:
- Clonal expansion of single fetal stem and progenitor cells.
- Whole-genome sequencing of expanded cells.
- Analysis of mutation rates and types.
Main Results:
- Hematopoietic stem and progenitor cells exhibit higher mutation rates during fetal development than post-infancy.
- Fetal trisomy 21 cells show significantly increased somatic mutations, detectable early in embryogenesis.
- Mutation profiles in fetal trisomy 21 cells resemble those in Down syndrome-associated myeloid preleukemia.
Conclusions:
- Elevated mutation rates during fetal development, particularly in trisomy 21, may drive early-life leukemia risk.
- Mutational processes active in normal fetal hematopoiesis contribute to observed patterns.
- Individual variation in early embryonic cell contribution to fetal tissues exists.
Abstract:
Children show a higher incidence of leukemia compared to young adolescents, yet their cells have less age-related (oncogenic) somatic mutations. Newborns with Down syndrome have an even higher risk of developing leukemia, which is thought to be driven by mutations that accumulate during fetal development. To characterize mutation accumulation in individual stem and progenitor cells of Down syndrome and karyotypically normal fetuses, we clonally expanded single cells and performed whole-genome sequencing. We found a higher mutation rate in haematopoietic stem and progenitor cells during fetal development compared to the post-infant rate. In fetal trisomy 21 cells the number of somatic mutations is even further increased, which was already apparent during the first cell divisions of embryogenesis before gastrulation. The number and types of mutations in fetal trisomy 21 haematopoietic stem and progenitor cells were similar to those in Down syndrome-associated myeloid preleukemia and could be attributed to mutational processes that were active during normal fetal haematopoiesis. Finally, we found that the contribution of early embryonic cells to human fetal tissues can vary considerably between individuals. The increased mutation rates found in this study, may contribute to the increased risk of leukemia early during life and the higher incidence of leukemia in Down syndrome.
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