Notch3 contributes to T-cell leukemia growth via regulation of the unfolded protein response.
Maria Valeria GiuliGiulia DiluvioEugenia GiulianiGiulia FranciosaLaura Di MagnoMaria Gemma PignataroLuca TottoneCarmine NicolettiZein Mersini BesharatGiovanna PeruzziMaria PelulloRocco PalermoGianluca CanettieriClaudio TaloraGiulia d'AmatiDiana BellaviaIsabella ScrepantiSaula ChecquoloPublished in: Oncogenesis (2020)
Unfolded protein response (UPR) is a conserved adaptive response that tries to restore protein homeostasis after endoplasmic reticulum (ER) stress. Recent studies highlighted the role of UPR in acute leukemias and UPR targeting has been suggested as a therapeutic approach. Aberrant Notch signaling is a common feature of T-cell acute lymphoblastic leukemia (T-ALL), as downregulation of Notch activity negatively affects T-ALL cell survival, leading to the employment of Notch inhibitors in T-ALL therapy. Here we demonstrate that Notch3 is able to sustain UPR in T-ALL cells, as Notch3 silencing favored a Bip-dependent IRE1α inactivation under ER stress conditions, leading to increased apoptosis via upregulation of the ER stress cell death mediator CHOP. By using Juglone, a naturally occurring naphthoquinone acting as an anticancer agent, to decrease Notch3 expression and induce ER stress, we observed an increased ER stress-associated apoptosis. Altogether our results suggest that Notch3 inhibition may prevent leukemia cells from engaging a functional UPR needed to compensate the Juglone-mediated ER proteotoxic stress. Notably, in vivo administration of Juglone to human T-ALL xenotransplant models significantly reduced tumor growth, finally fostering the exploitation of Juglone-dependent Notch3 inhibition to perturb the ER stress/UPR signaling in Notch3-dependent T-ALL subsets.
Keyphrases
- cell proliferation
- cell death
- endoplasmic reticulum
- endoplasmic reticulum stress
- cell cycle arrest
- acute lymphoblastic leukemia
- poor prognosis
- acute myeloid leukemia
- endothelial cells
- protein protein
- bone marrow
- binding protein
- transcription factor
- machine learning
- stem cells
- long non coding rna
- intensive care unit
- drug induced
- mental health
- heat stress
- extracorporeal membrane oxygenation
- estrogen receptor
- deep learning
- induced pluripotent stem cells