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| Cucurbitacin, produced by some plants, especially Cucurbitaceae, as a defense against herbivores. Toxic compound that can form in plants in the gourd family (Zucchini, Squash). Cucurbitacins have been shown to inhibit the growth of various cancer cell lines by interfering with cell cycle progression. Cucurbitacins can affect various signaling pathways involved in cancer progression, such as the NF-κB and STAT3 pathways, which are often dysregulated in cancer. Cucurbitacin — Cucurbitacins are a family of highly oxygenated tetracyclic triterpenoids produced mainly by Cucurbitaceae plants as bitter defensive metabolites. They are best treated as a compound class rather than a single molecule; common research abbreviations include CuB, CuD, CuE, CuI, CuQ, and Cuc IIa. Their formal classification is plant-derived triterpenoid natural products with experimental cytotoxic, cytostatic, anti-inflammatory, and pathway-modulating activity. In oncology, cucurbitacin B, E, I, Q, and IIa are the most commonly studied members. Mechanistic profile dominated by ACLY↓, STAT3/JAK signaling, cytoskeletal disruption, cell-cycle arrest, apoptosis, and context-dependent chemosensitization. Primary mechanisms (ranked):
Bioavailability / PK relevance: Oral systemic translation is constrained by low solubility, low oral bioavailability, tissue distribution, narrow therapeutic window, and nonspecific toxicity. Cucurbitacin B has reported absolute oral bioavailability of approximately 10% in rat PK work, so in-vitro potency should not be assumed to translate directly to safe systemic exposure. Although CuB displays potent activity against tumor cells, its non-selective toxicity has limited its clinical applications. In-vitro vs systemic exposure relevance: Most anticancer studies use purified cucurbitacins at nanomolar to micromolar concentrations in cell lines and xenografts. Common in-vitro exposure levels may exceed reliably achievable and tolerable human systemic exposure from oral ingestion. This is a concentration-driven small-molecule class, not a field-based or device-based modality. Clinical evidence status: Preclinical. Evidence is substantial across cell-line and animal oncology models, but there is no established FDA, EMA, or Health Canada approved cucurbitacin anticancer drug. Human use is limited by toxicity concerns, lack of standardized clinical oncology dosing, and absence of robust cancer RCT evidence. Cucurbitacin Cancer Mechanism Table
TSF legend: P: 0–30 min R: 30 min–3 hr G: >3 hr |
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| – Some studies have reported upregulated expression of certain GABA receptor subunits (e.g., GABA_A receptor subunits) in breast tumors. – Increased expression has been associated with enhanced cell proliferation and migration, with some reports linking this to a poorer prognosis. -GABAergic transmission is deficient in anxiety. -Neurons expressing GABAA α1 receptors can mediate sedation, -while those expressing GABAA α2 receptors mediate anxiolytic. -In addition, extra-synaptic GABAA α5 receptors can also regulate the activity of hippocampal pyramidal cells, thereby affecting associative temporal and spatial memory Gamma-aminobutyric acid — Gamma-aminobutyric acid is an endogenous non-protein amino acid, inhibitory neurotransmitter, metabolic intermediate, and signaling ligand commonly abbreviated GABA. As a database target, it represents changes in GABA concentration, synthesis, secretion, uptake, extracellular accumulation, or GABA-shunt utilization rather than modulation of a specific GABA receptor. GABA is synthesized from glutamate by GAD1/GAD67 and GAD2/GAD65, transported by GABA transporters, and metabolized primarily by ABAT/GABA transaminase. In cancer, GABA may be produced by tumor, neural, stromal, or immune cells and can influence proliferation, invasion, mitochondrial metabolism, β-catenin signaling, and antitumor immunity. Its biological direction is strongly tumor-, receptor-, concentration-, and compartment-dependent. Typical cancer modulation: Variable/context-dependent. GABA production, secretion, extracellular accumulation, uptake, or GABA-shunt utilization may be ↑ in tumors that exploit GABA for metabolic adaptation, β-catenin activation, growth, invasion, or immune evasion. GABA signaling may instead suppress proliferation or migration in tumors expressing inhibitory GABA receptor configurations. Normal-cell relevance: GABA generally reduces neuronal excitability through GABA receptor signaling and also regulates pancreatic, immune, gastrointestinal, vascular, and endocrine functions. In Alzheimer’s disease, reduced phasic inhibition and excessive astrocyte-derived tonic GABA may coexist in different circuits; therefore total GABA direction alone may not indicate whether GABAergic function is beneficial or pathological. Target classification: Neurotransmitter; amino-acid metabolite; signaling ligand; tumor-microenvironment mediator; metabolic substrate. |
| 6201- | Cuc, | Cucurbitacin B and Its Derivatives: A Review of Progress in Biological Activities |
| - | Review, | Var, | NA | - | Review, | 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#:195 Target#:1205 State#:% Dir#:2
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