N6-isopentenyladenosine induces cell death through necroptosis in human glioblastoma cells

Cristina Pagano(University of Naples Federico II), Giovanna Navarra(University of Naples Federico II), Laura Coppola(University of Naples Federico II), Giorgio Avilia(University of Naples Federico II), Olga Pastorino(University of Naples Federico II), Rosa Della Monica(Ceinge Biotecnologie Avanzate (Italy)), Michela Buonaiuto(Ceinge Biotecnologie Avanzate (Italy)), Giovanni Torelli(Ospedale Antonio Cardarelli), Pasquale Caiazzo(Ospedale Antonio Cardarelli), Maurizio Bifulco(University of Naples Federico II), Chiara Laezza(Institute for Experimental Endocrinology and Oncology)
Cell Death Discovery
April 7, 2022
Cited by 21Open Access
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Abstract

Targeting necroptosis is considered a promising therapeutic strategy in cancer, including Glioblastoma Multiforme (GBM), one of the most lethal brain tumors. Necroptosis is a mechanism of programmed cell death overcoming the apoptosis resistance mechanism underlying GBM tumorigenesis and malignant progression. N6-isopentenyladenosine (iPA), adenosine modified with isoprenoid derivative, displays antitumor activity in different cancer models. In previous studies, we demonstrated that iPA interferes with EGFR signaling reducing glioma cell viability. Here, we show that iPA induces necroptosis in glioblastoma cell lines and in primary cells established from tumor explants, without affecting the viability of non-cancerous brain cell lines, (Normal Human Astrocyte). The activation of RIP1, RIP3, and MLKL and the upregulation of necrosome formation were increased upon iPA treatment while caspase-3, caspase-8, and PARP were not activated in GBM cells. Co-treatment with specific necroptosis inhibitor necrostatin-1 (Nec-1) or Necrosulfonamide (NSA) prevented cell death caused by iPA treatment while the general caspase inhibitor Z-VAD-fluoromethylketone (z-VAD-fmk) did not elicit any effect, suggesting that this molecule induces caspase-independent necroptosis. These results suggest that iPA treatment can be able to bypass the apoptosis resistance mechanism in glioblastoma thereby offering higher therapeutic efficacy.


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