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| Turmerones — Turmerones are lipophilic volatile sesquiterpenes from turmeric rhizome oil, mainly ar-turmerone, α-turmerone, and β-turmerone. They are distinct from curcuminoids and should not be treated as curcumin synonyms. Formal classification: plant-derived volatile oil constituents / sesquiterpene ketones. Standard abbreviations include ATM or ar-T for aromatic turmerone, and α-TUR / β-TUR for α- and β-turmerone. Separate database product from whole turmeric or curcumin, because turmerones have different PK, BBB penetration, P-gp modulation, and apoptosis mechanisms from curcumin. Primary mechanisms (ranked):
Bioavailability / PK relevance: Turmerones are more lipophilic than curcumin and are relevant as turmeric-oil constituents and as curcumin bioavailability modifiers. Reported animal PK suggests measurable systemic exposure, moderate oral bioavailability for major turmeric-oil constituents, and meaningful brain distribution. Human therapeutic PK for isolated turmerones remains insufficient. In-vitro vs systemic exposure relevance: Many anticancer experiments use tens of μg/mL concentrations, which may exceed typical achievable free systemic exposure after ordinary turmeric intake. Turmeric oil or enriched turmerone formulations may increase exposure, but cancer-cell IC50 values should be treated as preclinical screening concentrations rather than clinically validated dosing targets. Clinical evidence status: Preclinical. There is no strong cancer clinical-trial evidence for isolated turmerones. Human turmeric oil safety data and curcumin/turmeric-formulation trials do not establish turmerone-specific oncology efficacy. Recommended database status: add as a separate mechanistic/preclinical product, linked to turmeric oil and curcumin as related entries. Turmerones Cancer Mechanism Table
P:0–30 min R:30 min–3 hr G:>3 hr |
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| Lipid peroxidation is a chain reaction process in which free radicals (often reactive oxygen species, or ROS) attack lipids containing carbon-carbon double bonds, especially polyunsaturated fatty acids. This attack results in the formation of lipid radicals, peroxides, and subsequent breakdown products. Lipid peroxidation can cause damage to cell membranes, leading to increased permeability and disruption of cellular functions. This damage can initiate a cascade of events that may contribute to carcinogenesis. The byproducts of lipid peroxidation, such as malondialdehyde (MDA) and 4-hydroxynonenal (4-HNE), can form adducts with DNA, leading to mutations. These mutations can disrupt normal cellular processes and contribute to the development of cancer. Lipid peroxidation damages cell membranes, disrupts cellular functions, and can trigger inflammatory responses. It is a marker of oxidative stress and is implicated in many chronic diseases. Negative Prognostic Indicator: In many cancers, high levels of lipid phosphates, particularly S1P, are associated with poor prognosis, indicating a more aggressive tumor phenotype and potential resistance to therapy. Mixed Evidence: The prognostic significance of lipid phosphates can vary by cancer type, with some studies showing that their expression may not always correlate with adverse outcomes. |
| 6460- | TUR, | CUR, | Neuroprotective Effect of Turmeric Extract in Combination with Its Essential Oil and Enhanced Brain Bioavailability in an Animal Model |
| - | in-vivo, | AD, | NA |
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
Filter Conditions: Pro/AntiFlg:% IllCat:% CanType:% Cells:% prod#:408 Target#:453 State#:% Dir#:%
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