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| 2,2-Dichloroacetophenone (DAP) is an acetophenone derivative characterized by the presence of two chlorine atoms on the aromatic ring, typically at the 2‑position relative to the carbonyl group. Its structure and properties differ significantly from compounds like dichloroacetate (DCA). -DAP may trigger the production of reactive oxygen species (ROS) in cells. -Increased ROS can lead to cellular damage, which may trigger apoptosis (programmed cell death) in cancer cells that are already under metabolic and oxidative stress. -Cytotoxic effects via DNA damage. *** Importantly, 2,2-dichloroacetophenone (DAP) is a much more potent inhibitor of PDK1(Than DCA). It is effective at concentrations in the micromolar (μM) range. - poor aqueous solubility and lower stability of DAP limits its therapeutic application 2,2-Dichloroacetophenone — also called α,α-dichloroacetophenone, is a chlorinated aromatic ketone and experimental small-molecule inhibitor of pyruvate dehydrogenase kinase 1. It is classified as a preclinical metabolic anticancer agent and chemical research compound. DAP is structurally and pharmacologically distinct from dichloroacetate and should also be distinguished from α-chloroacetophenone, the riot-control agent commonly abbreviated CN. DAP has shown activity against acute myeloid leukemia, EGFR-mutant non-small-cell lung cancer, and prostate-cancer models, but poor aqueous solubility, limited stability, weak selectivity, and insufficient pharmacokinetic characterization restrict its translational potential. Primary mechanisms (ranked):
Bioavailability / PK relevance: Human pharmacokinetic data are unavailable. Free DAP has poor aqueous solubility and limited physicochemical stability, and later medicinal-chemistry studies describe weak anticancer potency and poor selectivity relative to optimized derivatives. Lactoferrin nanoparticle encapsulation improved dispersion, stability, tumor-cell targeting, and experimental antitumor efficacy, but this remains a preclinical delivery strategy. In-vitro vs systemic exposure relevance: Most free-DAP experiments used approximately 5–100 µM, commonly around 20–40 µM. No validated human plasma concentration or clinically achievable exposure has been established. Nanoparticle-formulated DAP showed activity at lower in-vitro concentrations, including approximately 1 µM, and at 20 mg/kg in a mouse xenograft model, but these results cannot be extrapolated to human systemic exposure. Clinical evidence status: Preclinical only. Evidence consists of cancer-cell studies and mouse xenograft experiments in acute myeloid leukemia, non-small-cell lung cancer, and prostate cancer. No completed human anticancer trial, approved therapeutic formulation, established clinical dose, or regulatory approval was identified. Mechanistic Effects of 2,2-Dichloroacetophenone
P: 0–30 min R: 30 min–3 hr G: >3 hr |
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| Glycolysis is a metabolic pathway that converts glucose into pyruvate, producing a small amount of ATP (energy) in the process. It is a fundamental process for cellular energy production and occurs in the cytoplasm of cells. In normal cells, glycolysis is tightly regulated and is followed by aerobic respiration in the presence of oxygen, which allows for the efficient production of ATP. In cancer cells, however, glycolysis is often upregulated, even in the presence of oxygen. This phenomenon is known as the Warburg Mutations in oncogenes (like MYC) and tumor suppressor genes (like TP53) can alter metabolic pathways, promoting glycolysis and other anabolic processes that support cell growth.effect. Acidosis: The increased production of lactate from glycolysis can lead to an acidic microenvironment, which may promote tumor invasion and suppress immune responses. Glycolysis is a hallmark of malignancy transformation in solid tumor, and LDH is the key enzyme involved in glycolysis. Pathways: -GLUTs, HK2, PFK, PK, PKM2, LDH, LDHA, PI3K/AKT/mTOR, AMPK, HIF-1a, c-MYC, p53, SIRT6, HSP90α, GAPDH, HBT, PPP, Lactate Metabolism, ALDO Natural products targeting glycolytic signaling pathways https://pmc.ncbi.nlm.nih.gov/articles/PMC9631946/ Alkaloids: -Berberine, Worenine, Sinomenine, NK007, Tetrandrine, N-methylhermeanthidine chloride, Dauricine, Oxymatrine, Matrine, Cryptolepine Flavonoids: -Oroxyline A, Apigenin, Kaempferol, Quercetin, Wogonin, Baicalein, Chrysin, Genistein, Cardamonin, Phloretin, Morusin, Bavachinin, 4-O-methylalpinumisofavone, Glabridin, Icaritin, LicA, Naringin, IVT, Proanthocyanidin B2, Scutellarin, Hesperidin, Silibinin, Catechin, EGCG, EGC, Xanthohumol. Non-flavonoid phenolic compounds: Curcumin, Resveratrol, Gossypol, Tannic acid. Terpenoids: -Cantharidin, Dihydroartemisinin, Oleanolic acid, Jolkinolide B, Cynaropicrin, Ursolic Acid, Triptolie, Oridonin, Micheliolide, Betulinic Acid, Beta-escin, Limonin, Bruceine D, Prosapogenin A (PSA), Oleuropein, Dioscin. Quinones: -Thymoquinone, Lapachoi, Tan IIA, Emodine, Rhein, Shikonin, Hypericin Others: -Perillyl alcohol, HCA, Melatonin, Sulforaphane, Vitamin D3, Mycoepoxydiene, Methyl jasmonate, CK, Phsyciosporin, Gliotoxin, Graviola, Ginsenoside, Beta-Carotene. |
| 6686- | DAP, | Lactoferrin-encapsulated dichloroacetophenone (DAP) nanoparticles enhance drug delivery and anti-tumor efficacy in prostate cancer |
| - | in-vivo, | Pca, | 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
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