Rosmarinic acid (RA), a naturally occurring polyphenolic compound, has attracted increasing attention because of its potential anticancer activity and capacity to modulate oxidative stress-associated signaling pathways. In the present study, the cytotoxic, apoptotic, and antiproliferative effects of RA, alone or in combination with gemcitabine (Gem), were investigated in OVCAR3 ovarian cancer cells and HaCaT keratinocytes using integrated two-dimensional and three-dimensional (3D) experimental models. Cell viability assays demonstrated dose- and time-dependent growth inhibition following RA and Gem treatment, while combination index (CI) analysis revealed synergistic cytotoxic activity in OVCAR3 cells. Flow cytometric analyses showed that combined treatment markedly increased apoptotic cell populations and altered cell cycle progression through enhanced S-phase and G2/M accumulation. Intracellular reactive oxygen species (ROS) levels were significantly elevated following combination treatment, and N-acetyl-L-cysteine (NAC) pretreatment partially attenuated both ROS accumulation and cytotoxicity, indicating a functional contribution of oxidative stress to the observed antitumor response. RT-qPCR analyses demonstrated increased expression of proapoptotic genes (BAX, CASP3, and CASP9) together with suppression of BCL2, MKI67, and CDK4 expression, while immunocytochemical analyses supported enhanced caspase-3 activation at the protein level. In 3D OVCAR3 tumor spheroids, the RA + Gem combination significantly reduced spheroid viability, disrupted spheroid architecture, and increased dead-cell accumulation compared with single-agent treatments. Collectively, these findings suggest that RA may enhance the anticancer activity of Gem in ovarian cancer cells through mechanisms associated with oxidative stress, apoptosis, and proliferation-related signaling pathways under both monolayer and 3D culture conditions.
Coşkun Orhaner, M. Tuncer, İ. Özdemir· International Journal of Mol...· 0 citations
Background: Drug resistance and treatment-associated toxicity remain major limitations of conventional chemotherapy for triple-negative breast cancer (TNBC). Thymoquinone (TQ), a bioactive phytochemical derived from Nigella sativa, has demonstrated anticancer properties and may enhance the therapeutic efficacy of docetaxel (DTX) through complementary molecular mechanisms. Objective: To investigate whether TQ potentiates the antitumor activity of DTX in MDA-MB-231 TNBC cells by affecting apoptosis, oxidative stress, wound closure, and PI3K/AKT pathway-related gene expression. Methods: MDA-MB-231 TNBC cells and HaCaT keratinocytes were treated with TQ, DTX, or their combination. Cell viability was determined using the MTT assay, and drug interactions were evaluated by the Chou–Talalay combination index (CI) method. Apoptosis, intracellular reactive oxygen species (ROS) production, ROS rescue experiments using N-acetyl-L-cysteine (NAC), caspase-9 expression, wound closure, and gene-expression changes were assessed using Annexin V/PI flow cytometry, DCFH-DA-based flow cytometric and fluorescence analyses, immunocytochemistry, wound-healing assay, and quantitative real-time PCR (qRT-PCR), respectively. Bioinformatic analyses were performed to identify signaling pathways associated with the observed molecular alterations. Results: The TQ + DTX combination demonstrated synergistic cytotoxicity and significantly increased apoptotic cell death compared with either monotherapy. Combination treatment markedly enhanced intracellular ROS accumulation, whereas NAC pretreatment significantly attenuated ROS generation and partially reversed the cytotoxic and pro-apoptotic effects, suggesting the involvement of ROS in the observed antitumor effects. Caspase-9 immunoreactivity was markedly increased following combination treatment, suggesting the involvement of the intrinsic apoptotic pathway. Furthermore, the combination significantly suppressed wound closure and downregulated BCL2, PIK3CA, and AKT1 while upregulating BAX, CASP9, and PTEN. Bioinformatic analyses identified apoptosis, p53, PI3K/AKT, mTOR, and MAPK signaling as the principal pathways potentially associated with the observed gene expression changes. Conclusions: TQ potentiates the antitumor activity of DTX, with the involvement of oxidative stress, apoptotic signaling, suppression of wound closure, and regulation of PI3K/AKT pathway-related gene expression in TNBC cells. These findings provide evidence supporting further preclinical investigation of the TQ + DTX combination as a promising therapeutic strategy for triple-negative breast cancer.
Aylin Orhaner, M. C. Tuncer, İlhan Özdemir· Pharmaceuticals· 0 citations