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| Hops (Humulus lupulus) – Hops (known for beer brewing) contain compounds like xanthohumol that have demonstrated anticancer activity, particularly in breast and prostate cancer. -Phytochemicals, including flavonoids and polyphenols, which have antioxidant properties. -8-prenylnaringenin, may have estrogenic effects. (Hormone related cancers) -Anti-inflammatory properties Dose: Tea 1-3g/d, 1-3x/d. Extract 300-500mg/d Hops (Humulus lupulus) — the dried female inflorescences or hop cones of Humulus lupulus L., a perennial plant in the Cannabaceae family, are a complex botanical mixture containing prenylated flavonoids, polyphenols, α- and β-bitter acids, proanthocyanidins and volatile terpenes. Hops are classified as a botanical/natural-product mixture; the recommended abbreviation is Hops or HL. This entry represents whole hops and hop extracts rather than purified xanthohumol, which has substantially stronger and more specific anticancer evidence and is appropriately maintained as a separate product. Extract composition varies markedly with cultivar, processing and extraction method, so biological effects cannot be assumed to be uniform across commercial hop preparations. Primary mechanisms (ranked):
Bioavailability / PK relevance: Whole-hop extracts do not have a single definable pharmacokinetic profile because their constituent concentrations and extraction ratios vary substantially. Human studies with standardized hop preparations demonstrate systemic absorption of prenylated hop phenols, including 8-prenylnaringenin and isoxanthohumol-derived metabolites, with considerable inter-individual variability. Gut microbial conversion of isoxanthohumol to 8-prenylnaringenin can materially influence estrogenic exposure. Pharmacokinetic results from one standardized extract should therefore not be generalized to teas, beer, spent-hop extracts or unrelated commercial hop supplements. In-vitro vs systemic exposure relevance: The strongest whole-extract cancer studies are concentration-driven in-vitro experiments. For example, spent-hop extract produced pronounced inhibition of colorectal-cancer invasion and migration at approximately 200 µg/mL, whereas estrogen-metabolism effects have been reported at lower extract concentrations such as 5 µg/mL. Whether these concentrations and phytochemical ratios are achieved in human tumors after conventional oral hop supplementation is unknown. Direct systemic anticancer exposure from ordinary dietary hops or beer should not be assumed equivalent to experimental extracts. Clinical evidence status: Preclinical for cancer. Whole-hop and spent-hop extracts have demonstrated chemopreventive, anti-invasive, antiangiogenic and estrogen-metabolism effects in cell and animal models, but there is no established randomized clinical evidence that whole hops treat human cancer. Human hop-extract trials have primarily evaluated menopausal symptoms, sleep, metabolic effects, joint health, safety and pharmacokinetics rather than oncology efficacy. Hops are used as traditional herbal products for mild stress and sleep-related indications in European regulatory monographs, not for cancer treatment. Hops Cancer-Relevant Mechanisms
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. |
| 7471- | Hops, | Spent hops (Humulus Lupulus L.) extract as modulator of the inflammatory response in lipopolysaccharide stimulated RAW 264.7 macrophages |
| - | in-vitro, | Nor, | RAW264.7 |
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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