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| Organic compound isolated from rhubarb, buckthorn, knotweed. It has laxative, anticancer, antibacterial, antiinflammatory, and antiviral activities, and is used in traditional Chinese medicine. Emodin, an anthraquinone derivative found in various plants (e.g., rhubarb, Polygonum cuspidatum). Pathways: - Generation of Reactive Oxygen Species (ROS) - Upregulation Bax downregulation of Bcl‑2, caspase activation and cyt_c release. - Induce cell cycle arrest at various checkpoints (commonly G0/G1 or G2/M phases. - Can inhibit NF‑κB activation – MAPK Pathways – PI3K/Akt Pathway - Metalloproteinases (MMPs) -ic50 cancer cells 10-50uM, normal cells higher(supports a therapeutic window)
In rhubarb, the medicinal material described as “root and rhizome” includes both the true roots and the thick underground stem base from which the leaf stalks emerge. Emodin — Emodin is a naturally occurring hydroxyanthraquinone and plant secondary metabolite, chemically identified as 1,3,8-trihydroxy-6-methylanthraquinone. It is a small-molecule natural product rather than an approved anticancer drug. Major sources include rhubarb species, Japanese knotweed, buckthorn, Polygonum multiflorum, Polygonum cuspidatum, Rheum palmatum, and several fungi. Emodin is pharmacologically pleiotropic, with redox-active, kinase-modulating, anti-inflammatory, cytotoxic, laxative, and antimicrobial properties. Its anticancer effects remain predominantly preclinical, and emodin should be distinguished from the related compounds aloe-emodin and rhein. Primary mechanisms (ranked):
Bioavailability / PK relevance: Native emodin has very poor oral bioavailability, estimated at approximately 3% in rat studies. It has low aqueous solubility, incomplete intestinal absorption, extensive intestinal and hepatic glucuronidation and sulfation, and rapid systemic clearance. Circulating exposure is therefore dominated by conjugated metabolites rather than sustained concentrations of free emodin. Nanoparticles, liposomes, phospholipid complexes, prodrugs, and other delivery systems are being investigated but are not established clinical formulations. In-vitro vs systemic exposure relevance: Most anticancer experiments use approximately 10–100 µM emodin, commonly 20–50 µM. These free-drug concentrations are unlikely to be maintained systemically after conventional oral administration because of poor absorption and rapid conjugation. In-vitro findings therefore substantially overstate the exposure achievable with unformulated oral emodin. Local gastrointestinal exposure may be higher, but this does not establish therapeutically useful tumor exposure. Clinical evidence status: Preclinical. Evidence consists primarily of cancer-cell studies and rodent xenograft or chemically induced tumor models. Emodin has shown experimental adjunct and chemosensitizing effects with agents including paclitaxel, sorafenib, cisplatin, gemcitabine, and other therapies, but there is no established randomized clinical evidence supporting emodin as a cancer treatment. Emodin is not an FDA-, EMA-, or Health Canada-approved anticancer agent. Safety: Emodin is not necessarily tumor-selective and can produce ROS, mitochondrial injury, apoptosis, and genotoxic signals in nonmalignant cells at sufficient concentrations. Preclinical literature reports possible hepatotoxicity, nephrotoxicity, reproductive toxicity, gastrointestinal irritation, laxative effects, and complex mutagenicity findings, particularly with high doses or prolonged exposure. It may also affect CYP enzymes, conjugating enzymes, transporters, and the pharmacokinetics of co-administered drugs. Long-term concentrated supplementation should not be considered equivalent to ordinary dietary exposure from rhubarb or other foods. Mechanistic Profile of Emodin
P: 0–30 min R: 30 min–3 hr G: >3 hr |
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| Once the cancer has begun, NO seems to play a protumoral role rather than antitumoral one as the concentration required to cause tumor cell cytotoxicity cannot be achieved by cancer cells. The mechanistic roles of nitric oxide (NO) during cancer progression have been important considerations since its discovery as an endogenously generated free radical. Nonetheless, the impacts of this signaling molecule can be seemingly contradictory, being both pro-and antitumorigenic, which complicates the development of cancer treatments based on the modulation of NO fluxes in tumors. At a fundamental level, low levels of NO drive oncogenic pathways, immunosuppression, metastasis, and angiogenesis, while higher levels lead to apoptosis and reduced hypoxia and also sensitize tumors to conventional therapies. However, clinical outcome depends on the type and stage of the tumor as well as the tumor microenvironment. Nitric oxide is generated by three main nitric oxide synthase isoforms: neuronal (nNOS), endothelial (eNOS), and inducible (iNOS). – In many cancers, especially under inflammatory conditions, iNOS expression is upregulated. In contrast, eNOS levels may also be altered in cancers such as breast or prostate cancer. • Expression Patterns in Tumors: – Elevated iNOS expression is commonly observed in various tumor types (e.g., colon, breast, lung, and melanoma) and is often associated with an inflammatory microenvironment. – Changes in eNOS and nNOS expression have also been reported and may contribute to angiogenesis and tumor blood flow regulation. |
| 6819- | EMD, | Recent advances in the therapeutic potential of emodin for human health |
| - | Review, | Nor, | NA |
| 6829- | EMD, | Molecular Mechanisms of Action of Emodin: As an Anti-Cardiovascular Disease Drug |
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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