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| Galloflavin is a flavonoid compound found in certain plants, such as the Galphimia gracilis.
Studies have demonstrated that galloflavin can inhibit the growth of cancer cells and induce apoptosis (cell death) in various types of cancer, including breast, lung, and colon cancer.
Galloflavin's anti-cancer effects are thought to be due to its ability to modulate various cellular signaling pathways, including the PI3K/Akt and NF-κB pathways, which are involved in cell survival and proliferation. Additionally, galloflavin has been shown to have antioxidant and anti-inflammatory properties, which may also contribute to its anti-cancer effects. Galloflavin has been reported to be a lactate dehydrogenase (LDH) inhibitor. LDH is an enzyme that plays a crucial role in the metabolism of cancer cells, particularly in the process of glycolysis, which is the breakdown of glucose to produce energy. Galloflavin's LDH inhibitory activity has been demonstrated in various studies, which have shown that it can inhibit LDH activity in cancer cells, leading to a decrease in lactate production and an increase in the production of reactive oxygen species (ROS). The increase in ROS can lead to cell death, making galloflavin a potential therapeutic agent for the treatment of cancer. Galloflavin is unusually clean mechanistically: -LDH-A inhibition is the primary molecular target -Everything else (↓ lactate, NAD⁺ stress, ROS, mitochondrial dependence) is downstream -Apoptosis and tumor suppression are consequences, not drivers This makes galloflavin one of the best-defined Warburg-effect inhibitors. Not use if antitumor effect extends to in vivo? Galloflavin — a synthetic polyphenolic small molecule and non-substrate-competitive inhibitor of human lactate dehydrogenase A and B. It is classified as an experimental metabolic anticancer agent and Warburg-effect inhibitor; the standard abbreviation is GF. Galloflavin, CAS 568-80-9, was originally characterized as an oxidation-derived dimeric product related to gallic acid rather than as a clinically established plant flavonoid. It remains a research compound with no approved therapeutic indication. Primary mechanisms (ranked):
Bioavailability / PK relevance: No validated human pharmacokinetic, oral-bioavailability or therapeutic-exposure data are available. Galloflavin has been described as having poor physicochemical and drug-development properties, prompting development of galloflavin mimetics and alternative LDH inhibitors. Systemic exposure, metabolic stability, tissue distribution, protein binding and dose-limiting toxicity remain insufficiently characterized. In-vitro vs systemic exposure relevance: Most anticancer studies use approximately 10–100 µM galloflavin, commonly around 25–50 µM over 24–72 hours. Whether these concentrations can be safely and continuously achieved in human tumors is unknown. Consequently, direct translation of cell-culture efficacy to oral or systemic treatment is not currently justified. Clinical evidence status: Preclinical only. Evidence consists predominantly of enzyme assays and cultured cancer-cell studies, including breast, lymphoma, endometrial, pancreatic and colorectal models. Some animal or mechanistic studies may exist, but there is no established human cancer trial, approved formulation, clinical dose, demonstrated response rate or regulatory authorization for galloflavin. Safety and interpretation: Galloflavin inhibits both LDH-A and LDH-B rather than being strictly LDH-A selective. Because LDH is required in normal erythrocytes, skeletal muscle, heart and other tissues during high glycolytic demand, systemic LDH inhibition could produce on-target toxicity. Normal-cell selectivity, hemolytic risk, exercise intolerance, hepatic effects, drug interactions and chronic safety have not been adequately established. Galloflavin Mechanistic Profile
P: 0–30 min R: 30 min–3 hr G: >3 hr |
| Source: HalifaxProj(inhibit) |
| Type: |
| Interleukin-6 (IL-6) is a cytokine that plays a significant role in inflammation and the immune response. It is produced by various cell types, including T cells, B cells, macrophages, and fibroblasts. IL-6 can promote tumor cell proliferation and survival. Many cancer cells produce IL-6, which can create an autocrine loop that supports their growth. IL-6 is a high-value inflammatory biomarker in cancer, reporting cytokine burden, catabolic stress, and STAT3-linked survival signaling. While not tumor-specific, elevated and rising IL-6 strongly predicts poor prognosis and limited treatment tolerance, making it an important system-state indicator alongside CRP and ferritin. |
| 7052- | Gallo, | Galloflavin Relieves the Malignant Behavior of Colorectal Cancer Cells in the Inflammatory Tumor Microenvironment |
| - | in-vivo, | Colon, | SW48 |
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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