The aggressive and highly heterogeneous subtype of breast cancer, triple-negative breast cancer (TNBC), has a poor response to conventional treatments and a high propensity for metastasis, causing unfavorable clinical outcomes. In TNBC, casein kinase 2 (CK2), a constitutively active serine/threonine kinase, plays a key role in controlling several oncogenic signaling pathways. Aberrant CK2 signaling promotes increased transcription of oncogenes, proliferative signaling, DNA repair, epigenetic regulation, epithelial-to-mesenchymal transition (EMT), and cancer stem cell maintenance. Additionally, CK2 helps maintain tumor redox homeostasis by regulating the balance of zinc and copper and by stabilizing immunological checkpoint proteins such as PD-L1. Due to its pleiotropic effects, CK2 overactivation promotes treatment resistance across TNBC subtypes and accelerates tumor growth. Pharmacological inhibition of CK2 can disrupt these communication networks, making TNBC cells more susceptible to both traditional and targeted treatments. By concurrently suppressing compensatory survival mechanisms, CK2 inhibitors have demonstrated synergistic anticancer benefits when used with chemotherapy, PI3K/AKT/mTOR inhibitors, PARP inhibitors, and immunotherapies. This study highlights the complex role of aberrant CK2 signaling in TNBC progression and examines the therapeutic promise of CK2 inhibitor-based combination therapies to overcome resistance and improve treatment efficacy. Current preclinical and clinical research on next-generation CK2 inhibitors highlights their potential as a novel therapeutic approach for TNBC.
Navas Shereef Ellyan, A. T. Alex, U. Nayak et al.· Clinical and Experimental Me...· 0 citations
Pyrazoles and chalcones have been extensively studied over time due to their broad range of therapeutic potentials. In this study, a new series of pyrazole-carboxylate derivatives were synthesized, characterized, and evaluated for their antibacterial, anticancer and anti-inflammatory activities. Among the synthesized derivatives, compound 5a exhibited significant percentage inhibition in colony counting assay. Compound 5c demonstrated significant cytotoxic activity with an IC50 value of 9.91 µg mL−1, while also exhibiting lower cytotoxicity towards non-cancerous HEK-293T cells (IC50 = 36.31 µg mL−1), indicating favourable selectivity. Mechanistic studies, including DAPI staining and flow cytometric analysis, indicated that compounds 5c and 5f inhibited cancer cell growth predominantly by inducing apoptosis rather than cell cycle arrest. Anti-inflammatory activity was determined using protein denaturation assay where compound 5f demonstrated promising activity with an IC50 value of 59.37 ± 0.149 µg mL−1. Furthermore, molecular docking analysis further provided insights into the binding interactions of the derivatives and the targeted protein. In addition, drug-likeness evaluation using swissADME indicates that the compounds satisfied Lipinski's rule of five.
Rachel Alveera Menezes, Navas Shereef Ellyan, M. M. et al.· RSC Advances· 0 citations