Deferasirox reduces oxidative DNA damage in bone marrow cells from myelodysplastic patients and improves their differentiation capacity.
Tamara JimenezFélix López-CadenasIrene Aires-MejíaJuan Carlos Caballero-BerrocalRebeca OrtegaAlba María RedondoFermín Sánchez-GuijoSandra MuntiónLuís García-MartínBeatriz AlbarránJosé María AlonsoConsuelo Del CañizoÁngel Hernández-HernándezMaría Díez-CampeloPublished in: British journal of haematology (2019)
Patients with low-risk myelodysplastic syndromes (MDS) usually develop iron overload. This leads to a high level of oxidative stress in the bone marrow (BM) and increases haematopoietic cell dysfunction. Our objective was to analyse whether chelation with deferasirox (DFX) alleviates the consequences of oxidative stress and improves BM cell functionality. We analysed 13 iron-overloaded MDS patients' samples before and 4-10 months after treatment with DFX. Using multiparametric flow cytometry analysis, we measured intracellular reactive oxygen species (ROS), DNA oxidation and double strand breaks. Haematopoietic differentiation capacity was analysed by colony-forming unit (CFU) assays. Compared to healthy donors, MDS showed a higher level of intracellular ROS and DNA oxidative damage in BM cells. DNA oxidative damage decreased following DFX treatment. Furthermore, the clonogenic assays carried out before treatment suggest an impaired haematopoietic differentiation. DFX seems to improve this capacity, as illustrated by a decreased cluster/CFU ratio, which reached values similar to controls. We conclude that BM cells from MDS are subject to higher oxidative stress conditions and show an impaired haematopoietic differentiation. These adverse features seem to be partially rectified after DFX treatment.
Keyphrases
- oxidative stress
- dna damage
- reactive oxygen species
- bone marrow
- end stage renal disease
- induced apoptosis
- ejection fraction
- flow cytometry
- newly diagnosed
- chronic kidney disease
- circulating tumor
- mesenchymal stem cells
- single molecule
- single cell
- peritoneal dialysis
- cell death
- ischemia reperfusion injury
- acute myeloid leukemia
- diabetic rats
- dna repair
- prognostic factors
- patient reported outcomes
- nitric oxide
- cell proliferation
- nucleic acid
- heat shock
- drug induced