Identification of a Novel Curcumin Derivative Influencing Notch Pathway and DNA Damage as a Potential Therapeutic Agent in T-ALL.
Nadezda ZhdanovskayaSara LazzariDiego CaprioglioMariarosaria FirrincieliChiara MaioliEleonora PaceDaniela ImperioClaudio TaloraDiana BellaviaSaula ChecquoloMattia MoriIsabella ScrepantiAlberto MinassiRocco PalermoPublished in: Cancers (2022)
T-cell acute lymphoblastic leukemia (T-ALL) is an aggressive hematological malignancy considered curable by modern clinical management. Nevertheless, the prognosis for T-ALL high-risk cases or patients with relapsed and refractory disease is still dismal. Therefore, there is a keen interest in developing more efficient and less toxic therapeutic approaches. T-ALL pathogenesis is associated with Notch signaling alterations, making this pathway a highly promising target in the fight against T-ALL. Here, by exploring the anti-leukemic capacity of the natural polyphenol curcumin and its derivatives, we found that curcumin exposure impacts T-ALL cell line viability and decreases Notch signaling in a dose- and time-dependent fashion. However, our findings indicated that curcumin-mediated cell outcomes did not depend exclusively on Notch signaling inhibition, but might be mainly related to compound-induced DNA-damage-associated cell death. Furthermore, we identified a novel curcumin-based compound named CD2066, endowed with potentiated anti-proliferative activity in T-ALL compared to the parent molecule curcumin. At nanomolar concentrations, CD2066 antagonized Notch signaling, favored DNA damage, and acted synergistically with the CDK1 inhibitor Ro3306 in T-ALL cells, thus representing a promising novel candidate for developing therapeutic agents against Notch-dependent T-ALL.
Keyphrases
- dna damage
- acute lymphoblastic leukemia
- oxidative stress
- cell death
- dna repair
- acute myeloid leukemia
- cell proliferation
- induced apoptosis
- cell cycle arrest
- type diabetes
- diabetic rats
- cell cycle
- drug induced
- allogeneic hematopoietic stem cell transplantation
- stem cells
- cell therapy
- adipose tissue
- single cell
- signaling pathway
- diffuse large b cell lymphoma
- weight loss
- skeletal muscle