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| Hibiscus sabdariffa (commonly known as Roselle) It is rich in bioactive components such as polyphenols, anthocyanins, flavonoids, organic acids, and other antioxidants. Hibiscus sabdariffa is rich in antioxidants and bioactive compounds that show potential anti-cancer effects by reducing oxidative stress, inhibiting cell proliferation, inducing apoptosis, and modulating inflammatory pathways.
Hibiscus sabdariffa — commonly known as roselle, is an edible medicinal plant whose calyces and leaves contain anthocyanins, polyphenols, flavonoids, phenolic acids, and organic acids. It is classified as a botanical food/nutraceutical and plant-extract modality rather than a defined anticancer drug. Standard abbreviations include HS and H. sabdariffa. The calyx is the predominant food and beverage source, whereas several anticancer studies have used leaf extracts, anthocyanin-rich fractions, or polyphenol-enriched preparations that are not compositionally equivalent to ordinary hibiscus tea. Important constituents include delphinidin-3-sambubioside, cyanidin-3-sambubioside, protocatechuic acid, and other polyphenols. -Calyx — the thick, fleshy red structure surrounding the base of the flower and later the seed capsule. This is the main material used for hibiscus tea, beverages, extracts, and most commercial supplements. It is especially rich in anthocyanins, organic acids, and polyphenols. Primary mechanisms (ranked):
Bioavailability / PK relevance: Hibiscus anthocyanins are orally absorbed but have low systemic bioavailability and are rapidly metabolized and eliminated. Human pharmacokinetic studies demonstrate circulating anthocyanin-derived compounds after oral Hibiscus extract, but exposure to intact parent anthocyanins is substantially lower than concentrations commonly used in mechanistic cell-culture studies. Extract composition, plant part, cultivar, processing, and extraction method materially affect exposure. In-vitro vs systemic exposure relevance: Many anticancer experiments use approximately hundreds of µg/mL to mg/mL of crude or polyphenol-enriched extract, or high-µM to millimolar concentrations of individual phenolic compounds. These concentrations generally exceed plausible circulating concentrations following ordinary dietary Hibiscus consumption. Direct translation of in-vitro anticancer potency to oral tea or supplement use is therefore poor. Local gastrointestinal exposure may be considerably higher than systemic exposure. Clinical evidence status: Cancer evidence is predominantly preclinical, consisting of cell-culture studies and limited animal models; there is no established human anticancer efficacy and no validated Hibiscus anticancer dosing regimen. Human RCT evidence is considerably stronger for blood-pressure reduction and some cardiometabolic effects than for cancer treatment. Hibiscus should therefore be categorized as preclinical for anticancer therapy, not as an established cancer adjunct. Oral Hibiscus preparations are generally well tolerated in short-term human studies, but clinically relevant hypotensive and glucose-lowering effects can occur, creating potential additive effects with antihypertensive or antidiabetic therapy. Hibiscus sabdariffa Cancer-Relevant Mechanisms
P: 0–30 min R: 30 min–3 hr G: >3 hr |
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| Cytochrome c ** The term "release of cytochrome c" ** an increase in level for the cytosol. Small hemeprotein found loosely associated with the inner membrane of the mitochondrion where it plays a critical role in cellular respiration. Cytochrome c is highly water-soluble, unlike other cytochromes. It is capable of undergoing oxidation and reduction as its iron atom converts between the ferrous and ferric forms, but does not bind oxygen. It also plays a major role in cell apoptosis. The term "release of cytochrome c" refers to a critical step in the process of programmed cell death, also known as apoptosis. In its new location—the cytosol—cytochrome c participates in the apoptotic signaling pathway by helping to form the apoptosome, which activates caspases that execute cell death. Cytochrome c is a small protein normally located in the mitochondrial intermembrane space. Its primary role in healthy cells is to participate in the electron transport chain, a process that helps produce energy (ATP) through oxidative phosphorylation. Mitochondrial outer membrane permeability leads to the release of cytochrome c from the mitochondria into the cytosol. The release of cytochrome c is a pivotal event in apoptosis where cytochrome c moves from the mitochondria to the cytosol, initiating a chain reaction that leads to programmed cell death. On the one hand, cytochrome c can promote cancer cell survival and proliferation by regulating the activity of various signaling pathways, such as the PI3K/AKT pathway. This can lead to increased cell growth and resistance to apoptosis, which are hallmarks of cancer. On the other hand, cytochrome c can also induce apoptosis in cancer cells by interacting with other proteins, such as Apaf-1 and caspase-9. This can lead to the activation of the intrinsic apoptotic pathway, which can result in the death of cancer cells. Overexpressed in Breast, Lung, Colon, and Prostrate. Underexpressed in Ovarian, and Pancreatic. |
| 7370- | HibSad, | Hibiscus sabdariffa leaf induces apoptosis of human prostate cancer cells in vitro and in vivo |
| - | vitro+vivo, | Pca, | LNCaP | - | in-vitro, | Pca, | PC3 | - | in-vitro, | Pca, | DU145 |
| 7365- | HibSad, | Insight into the molecular evidence supporting the remarkable chemotherapeutic potential of Hibiscus sabdariffa L |
| - | Review, | Var, | NA |
| 7363- | HibSad, | Chemopreventive properties of Hibiscus sabdariffa L. on human gastric carcinoma cells through apoptosis induction and JNK/p38 MAPK signaling activation |
| 7357- | HibSad, | Hibiscus Anthocyanins Extracts Induce Apoptosis by Activating AMP-Activated Protein Kinase in Human Colorectal Cancer Cells |
| - | in-vitro, | CRC, | LoVo |
| 7350- | HibSad, | Hibiscus polyphenol-rich extract induces apoptosis in human gastric carcinoma cells via p53 phosphorylation and p38 MAPK/FasL cascade pathway |
| - | in-vitro, | GC, | AGS |
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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