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| Bullatacin - Annonaceous Acetogenin Type: Annonaceous acetogenin / bioactive natural compound Sources: Bullatacin occurs in plants of the Annonaceae family and has been isolated from Annona atemoya. Function: Bullatacin is a highly cytotoxic annonaceous acetogenin that interferes with cellular energy metabolism and mitochondrial electron transport. It has also been reported to inhibit NADH oxidase activity and alter intracellular signaling associated with tumor-cell survival. Cancer: Preclinical studies demonstrate potent antiproliferative and pro-apoptotic activity. Bullatacin inhibits hepatoma-cell proliferation, induces apoptosis, and has shown antitumor activity in experimental tumor models. Reported mechanisms include inhibition of mitochondrial energy metabolism, NADH oxidase activity, and reductions in intracellular cAMP and cGMP signaling. Clinical anticancer efficacy has not been established. Bullatacin — a highly lipophilic Annonaceous acetogenin and potent mitochondrial poison isolated from plants of the Annonaceae family, including Annona atemoya and Annona bullata. It is formally classified as a natural-product acetogenin and experimental cytotoxic/antitumor agent. Bullatacin is best characterized as a mitochondrial complex I inhibitor that suppresses oxidative phosphorylation and cellular ATP production. It has unusually high cytotoxic potency in several cancer-cell models, including multidrug-resistant cells, but has no established therapeutic use in humans. Its mechanism overlaps substantially with that of other neurotoxic Annonaceous acetogenins. Primary mechanisms (ranked):
Bioavailability / PK relevance: Human pharmacokinetics have not been established. Bullatacin is highly lipophilic, but there is insufficient validated systemic PK information to define clinically achievable plasma or tumor concentrations. Effective experimental concentrations can be in the low-nanomolar range, and antitumor activity has been demonstrated in some mouse models after parenteral dosing. However, efficacy and toxicity appear to have a narrow and model-dependent relationship. There is no established oral dose, therapeutic window, formulation, or human exposure target. In-vitro vs systemic exposure relevance: Bullatacin frequently produces cellular effects at nanomolar concentrations, including approximately 10 nM in colon-cancer immunogenic-cell-death studies and an approximately 7.8 nM one-day ED50 in hepatoma cells. These concentrations cannot presently be compared reliably with achievable human systemic exposure because human PK data are lacking. The mitochondrial complex-I mechanism is concentration-driven and is not cancer-specific; systemic exposure therefore raises substantial normal-tissue and neurological safety concerns. Clinical evidence status: Preclinical only. Evidence consists predominantly of biochemical studies, cancer-cell experiments, and animal tumor models. Some murine models have demonstrated tumor-growth inhibition, while at least one ovarian tumor model found no survival benefit within nonlethal dosing ranges. No established human anticancer trials, approved indication, or regulatory therapeutic use for bullatacin was identified. The Annonaceous acetogenin class has an important neurotoxicity signal, including experimental mitochondrial complex-I-mediated neurodegeneration and epidemiologic associations between chronic Annonaceae exposure and atypical parkinsonism. Bullatacin Mechanistic Profile
P: 0–30 min R: 30 min–3 hr G: >3 hr |
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| Mitochondrial complex I (NADH:ubiquinone oxidoreductase) is the largest enzyme of the oxidative phosphorylation system. Its function is essential for bioenergetics and redox balance. Altered expression of its subunits can lead to changes in tumor metabolism, reactive oxygen species (ROS) generation, and apoptotic sensitivity—all of which may impact tumor growth and patient outcomes. Commonly Reported Complex I Subunit: -Increased expression of NDUFA4L2 has been associated with poor prognosis -Reduced expression of core complex I subunits (such as NDUFS1 and NDUFS3) may correlate with a poorer overall survival in some cancers -NDUFV1 have been linked to adverse clinical outcomes -Dysregulation of complex I may alter ROS production. In some cancers, controlled ROS production can aid in signaling that promotes cell proliferation or survival, while excessive ROS can trigger cell death. Genes like NDUFA4L2 are also linked with hypoxia, a common feature in the tumor microenvironment. |
| 7967- | BUL, | Mode of action of bullatacin: a potent antitumor and pesticidal annonaceous acetogenin |
| - | in-vivo, | Ovarian, | A2780S | - | in-vivo, | AML, | L1210 |
| 7974- | BUL, | Selective action of acetogenin mitochondrial complex I inhibitors |
| - | in-vitro, | Colon, | SW480 |
| 7977- | BUL, | Mitochondria-mediated apoptosis induced by acetogenins from Porcelia macrocarpa (Annonaceae) in K562 chronic myeloid leukemia cells |
| - | in-vitro, | AML, | K562 |
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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