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Pandita, R.

Publications and source records attributed to Pandita, R..

3 recordsLinked to original sources

Targeting Vitamin-D receptor (VDR) by a small molecule antagonist MeTC7 inhibits PD-L1 but controls THMYCN neuroblastoma growth PD-L1 independently

Vitamin-D receptor (VDR) mRNA is enriched in malignant lung, ovarian and pancreatic tissues and showed poor prognoses. Calcitriol and stable or CRISPR-directed VDR upregulation increased PD-L1mRNA and protein expression in cancer cells in-vitro. A ChIP assay showed the binding of VDR with VDREPD-L1. Stattic, a STAT3 phosphorylation inhibitor blocked calcitriol or VDR overexpression induced PD-L1 upregulation. MeTC7, a VDR antagonist developed by us, reduced PD-L1 expression on macrophages, ovarian, lung, breast, and pancreatic cancer cells in-vitro. In radiotherapy inducible PD-L1 model of orthotopic MC38 murine colon cancer, MeTC7 decreased PD-L1 surface expression, suppressed inflammatory monocytes (IMs) population and increased intra-tumoral CD69+PD1+CD8+T-cells. Intriguingly, MeTC7 reduced TH-MYCN transgenic neuroblastoma tumor growth without affecting PD-L1 and tumor immune milieu. In summary, Vitamin-D/VDR drives PD-L1 expression on cancer cells via STAT-3. Inhibiting VDR exhibited anti-checkpoint effects in orthotopic colon tumors, whereas PDL1-independent and anti-VDR/MYCN effects controlled growth of transgenic neuroblastoma and xenografted tumors. SummaryVitamin-D/VDR induces PD-L1 expression on cancer cells via STAT-3; and targeting VDR by a novel small molecule antagonist MeTC7 exhibits both anti-PD-L1 and anti-VDR/MYCN effects in tumor models.

cancer biology

ZEB1 is Required for NHEJ-Mediated DSB Repair in Euchromatin

Ionizing radiation-induced DSBs are repaired primarily by the Non-Homologous End Joining (NHEJ) pathway, but the details of how this is regulated in different chromatin contexts are far from understood. We have discovered a novel response to DSBs that promotes NHEJ selectively in euchromatin, based on a novel interaction between the EMT-inducing transcriptional repressor ZEB1, and the well-studied NHEJ-promoting DNA repair factor 53BP1. Using a number of approaches, we have discovered that the ZEB1-53BP1 association is amplified following exposure of cells to IR and that they co-localize at IR-induced foci (IRIF). Depletion of ZEB1 enhances radio-sensitivity and increases IR-induced chromosomal aberrations in an ATM-independent manner. The very rapid recruitment-within 2 seconds-of ZEB1 to euchromatic DSBs is like-wise ATM-independent, but DNA-PK-dependent and is required for subsequent recruitment of 53BP1. ZEB1 promotes NHEJ and inhibits HR through its homeodomain by inducing 53BP1-permissive, pro-NHEJ/anti-HR chromatin modifications. Lastly, depletion of ZEB1 increases hyper-resection at DSBs and inhibits physiological DSB repair. These results support the argument that ZEB1 plays an essential role in DSB repair in euchromatin by establishing a 53BP1-permissive/pro-NHEJ chromatin environment.

cancer biology

Septins disruption controls tumor growth and enhances efficacy of Herceptin

Septin expressions are altered in cancer cells and exhibit poor prognoses in malignancies. As the first approach to develop a septin filament targeting agent, we optimized the structure of Forchlorfenuron (FCF), a known plant cytokinin to generate UR214-9, which contrary to FCF, causes septin-2/9 filamental structural catastrophe in cancer cells without altering cellular septin protein levels. In-silico docking using septin-2/septin-2 dimer complex showed that UR214-9 displaced the guanine carbonyl oxygen from the GDP binding domain and showed increased binding energy than FCF(-8.59vs-7.21). UR214-9 reduced cancer cell growth, downregulated HER2/STAT-3 axis and controlled growth of HER2+ pancreatic, breast and ovarian cancer xenografts in NSG mice and enhanced response of Herceptin against HER2+breast cancer xenograft. Transcriptome analysis of UR214-9 exposed cells demonstrated significant perturbation of <20 genes compared to afatinib which impacted >1200 genes in JIMT-1 breast cancer cells indicating target specificity and non-transcriptional functions of UR214-9. In summary, disrupting septins via UR214-9 is a new approach to control the growth of HER2+ malignancies.

cancer biology