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Chougoni, K. K.

Publications and source records attributed to Chougoni, K. K..

2 recordsLinked to original sources

Combined inhibition of NAD synthesis and C-terminal binding protein cooperatively induce cell death and inhibit growth of High Grade Serous Ovarian Carcinoma

The transcriptional scaffolds C-terminal Binding Proteins (CtBP) 1 and 2 are overexpressed and act as oncogenic dependencies in multiple cancers but importantly encode a chemically targetable dehydrogenase domain. CtBP promotes survival of high grade serous ovarian carcinoma (HGSOC) cells by repressing expression of Death Receptors (DR) 4 and 5, which activate caspase 8-dependent apoptosis. We have previously developed a series of substrate competitive CtBP dehydrogenase inhibitors active in multiple cell and preclinical solid tumor models. In the current study, we validated CtBP 1 and 2 overexpression in a longitudinal series of primary and metastatic/recurrent HGSOC cases. Furthermore, our lead CtBP dehydrogenase inhibitor, JW-98 induced apoptosis and exhibited variable single agent IC50 values in HGSOC cell lines, but depletion of nicotinamide adenine dinucleotide (NAD) using the NAD synthesis inhibitor GMX1778 strikingly sensitized tumor cells to JW-98 treatment. Mechanistically, the JW-98/GMX-1778 combination effectively disrupted CtBP dimerization that requires stoichiometric levels of intracellular NAD and is required for oncogenic transcriptional activities. Highlighting the translational potential of this combination, combined JW-98/GMX1778 treatment of OVCAR3 HGSOC xenografts in immunodeficient mice abrogated tumor growth without observable toxicity. CtBP/NAD combined inhibition represents a novel therapeutic strategy that could improve outcomes in chemoresistant HGSOC.

cancer biology↗

Oncogenic Mutant p53 Sensitizes Non-Small Cell Lung Cancer Cells to Proteasome Inhibition via Oxidative Stress-Dependent Induction of Mitochondrial Apoptosis

Non-small cell lung cancer (NSCLC) cells with oncogenic mutant p53 alleles (Onc-p53) exhibit significantly higher levels of proteasome activity, indicating that Onc-p53 induces proteotoxic stress which may be leveraged as a therapeutic vulnerability. Proteasome inhibitors (PIs), such as bortezomib (BTZ), can induce toxic levels of oxidative stress in cancer cells and thus we investigated whether PIs exhibit preferential cytotoxicity in Onc-p53 NSCLC cells. Indeed, BTZ and other PIs exhibited the IC50 6-7-fold lower in Onc-p53 cells vs. wild-type (WT) p53 cells. BTZ cytotoxic effects in Onc-p53 cells were nearly completely rescued by antioxidants such as N-acetyl cysteine, indicating that oxidative stress is the critical driver of BTZ-dependent cytotoxic effects in Onc-p53 cells. Importantly, we observed oxidative stress-dependent transcriptional induction of the pro-apoptotic NOXA with downstream cleaved caspase-3, consistent with apoptotic cell death in Onc-p53 but not in WT p53 cells treated with BTZ, and BTZ-generated oxidative stress was linked to nuclear translocation of NRF2 and transcriptional activation of ATF3, which in turn was required for NOXA induction. Validating BTZs translational potential in Onc-p53 NSCLC, BTZ and carboplatin or the BH3-mimetic navitoclax were synergistically cytotoxic in Onc-p53 but not WT p53 cells in vitro, and BTZ effectively limited growth of Onc-p53 NSCLC xenografts when combined with either carboplatin or navitoclax in vivo. Our data therefore support further investigation of the therapeutic utility of PIs combined with carboplatin or BH3-mimetics in Onc-p53 human NSCLC as novel therapeutic strategies. SignificanceNon-small cell lung cancer (NSCLC) is the leading cause of cancer death due, in part, to a lack of active therapies in advanced disease. We demonstrate that proteasome inhibitor/BH3-mimetic combination therapy is an active precision therapy in NSCLC cells and tumors expressing oncogenic mutant p53 alleles (Onc-p53).

cancer biology↗