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| Polyphenols are a large and structurally diverse family of plant-derived phenolic compounds characterized by multiple phenolic hydroxyl groups and encompassing major subclasses including flavonoids, phenolic acids, stilbenes, lignans, and tannins. They occur widely in fruits, vegetables, herbs, tea, coffee, cocoa, and medicinal plant extracts. Polyphenols exhibit broad biological activity involving redox regulation, inflammatory signaling, kinase pathways, apoptosis, cell-cycle control, angiogenesis, metabolism, and epigenetic regulation. In cancer models, many polyphenols inhibit proliferation, promote apoptosis or senescence, suppress invasion and angiogenesis, and can alter sensitivity to chemotherapy or radiotherapy. Effects are highly compound-, dose-, and context-dependent; antioxidant activity in normal tissues may coexist with pro-oxidant ROS induction in cancer cells. Oral bioavailability is frequently limited by poor absorption and extensive intestinal, hepatic, and microbial metabolism, making high-concentration in-vitro findings difficult to extrapolate directly to human systemic exposure. Polyphenols — broad umbrella class of plant-derived phenolic compounds.
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| The selectivity of cancer products (such as chemotherapeutic agents, targeted therapies, immunotherapies, and novel cancer drugs) refers to their ability to affect cancer cells preferentially over normal, healthy cells. High selectivity is important because it can lead to better patient outcomes by reducing side effects and minimizing damage to normal tissues. Achieving high selectivity in cancer treatment is crucial for improving patient outcomes. It relies on pinpointing molecular differences between cancerous and normal cells, designing drugs or delivery systems that exploit these differences, and overcoming intrinsic challenges like tumor heterogeneity and resistance Factors that affect selectivity: 1. Ability of Cancer cells to preferentially absorb a product/drug -EPR-enhanced permeability and retention of cancer cells -nanoparticle formations/carriers may target cancer cells over normal cells -Liposomal formations. Also negatively/positively charged affects absorbtion 2. Product/drug effect may be different for normal vs cancer cells - hypoxia - transition metal content levels (iron/copper) change probability of fenton reaction. - pH levels - antiOxidant levels and defense levels 3. Bio-availability |
| 7413- | CS, | Poly, | Anticancer effects induced by artichoke extract in oral squamous carcinoma cell lines |
| - | in-vitro, | SCC, | SCC25 |
Query results interpretion may depend on "conditions" listed in the research papers. Such Conditions may include : -low or high Dose -format for product, such as nano of lipid formations -different cell line effects -synergies with other products -if effect was for normal or cancerous cells
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