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| Chaetocin is a fungal secondary metabolite of the epipolythiodioxopiperazine (ETP) class, originally isolated from Chaetomium species. It has potent preclinical anticancer activity through several mechanisms, including inhibition of histone H3K9 methyltransferases such as SUV39H1, reduction of H3K9me3, disruption of thioredoxin/thioredoxin-reductase redox signalling, induction of oxidative stress, inhibition of Hsp90-associated signalling and promotion of apoptosis. Chaetocin can suppress tumour-cell proliferation and stemness and has shown activity in leukemia, glioblastoma, diffuse midline glioma and several solid-tumour models. It can also sensitize cancer cells to apoptosis-inducing agents and radiation. Although frequently described as an SUV39H1 inhibitor, chaetocin is not highly target-selective and its anticancer effects should not be attributed solely to SUV39H1 inhibition. Chaetocin is an experimental fungal metabolite / epigenetic and redox-active anticancer compound, with current therapeutic evidence predominantly preclinical. Chaetocin — a sulfur-rich fungal secondary metabolite of the epipolythiodioxopiperazine (ETP) class originally isolated from Chaetomium species. It is an experimental redox-active and epigenetically active small molecule with potent preclinical anticancer activity. Chaetocin is commonly described as an SUV39H1/KMT1A inhibitor, but this classification is incomplete: it inhibits thioredoxin reductase, produces substantial oxidative stress, covalently perturbs proteins through its reactive disulfide functionality, inhibits multiple histone lysine methyltransferases, disrupts the SUV39H1–HP1 interaction, and can inhibit Hsp90-dependent signaling. It should therefore be classified as a multitarget ETP fungal metabolite / experimental epigenetic-redox anticancer compound rather than as a selective SUV39H1 inhibitor. Primary mechanisms (ranked):
Bioavailability / PK relevance: Human pharmacokinetic parameters, therapeutic plasma concentrations, bioavailability and exposure-response relationships have not been established. Preclinical work indicates unusual intracellular handling related to the intact ETP disulfide groups and cellular redox environment. The highly reactive disulfide pharmacophore, broad protein reactivity and absence of validated human PK are major translational constraints. In-vitro vs systemic exposure relevance: Anticancer potency varies substantially among models, ranging from low-nanomolar effects in some tumor screens to micromolar concentrations in other mechanistic experiments. There is no established human systemic exposure against which these concentrations can be compared. Consequently, even very potent in-vitro observations cannot currently be assumed to represent clinically achievable selective exposure. Normal-cell sparing has been observed in some hematologic and epithelial comparisons, but chaetocin also inhibits normal endothelial-cell proliferation, so tumor selectivity is not established as a general property. Clinical evidence status: Preclinical only. Evidence includes cancer-cell studies, primary patient-derived cells, xenografts and other animal tumor models, with recent work supporting activity in glioblastoma, diffuse midline glioma and cancer stem-cell models. No established human therapeutic trials, randomized clinical evidence or approved adjunct use were identified. Chaetocin remains an experimental research compound and is not an approved anticancer drug. Chaetocin Mechanistic Profile
P: 0–30 min R: 30 min–3 hr G: >3 hr |
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| Also known as CP32. Cysteinyl aspartate specific proteinase-3 (Caspase-3) is a common key protein in the apoptosis and pyroptosis pathways, and when activated, the expression level of tumor suppressor gene Gasdermin E (GSDME) determines the mechanism of tumor cell death. As a key protein of apoptosis, caspase-3 can also cleave GSDME and induce pyroptosis. Loss of caspase activity is an important cause of tumor progression. Many anticancer strategies rely on the promotion of apoptosis in cancer cells as a means to shrink tumors. Crucial for apoptotic function are executioner caspases, most notably caspase-3, that proteolyze a variety of proteins, inducing cell death. Paradoxically, overexpression of procaspase-3 (PC-3), the low-activity zymogen precursor to caspase-3, has been reported in a variety of cancer types. Until recently, this counterintuitive overexpression of a pro-apoptotic protein in cancer has been puzzling. Recent studies suggest subapoptotic caspase-3 activity may promote oncogenic transformation, a possible explanation for the enigmatic overexpression of PC-3. Herein, the overexpression of PC-3 in cancer and its mechanistic basis is reviewed; collectively, the data suggest the potential for exploitation of PC-3 overexpression with PC-3 activators as a targeted anticancer strategy. Caspase 3 is the main effector caspase and has a key role in apoptosis. In many types of cancer, including breast, lung, and colon cancer, caspase-3 expression is reduced or absent. On the other hand, some studies have shown that high levels of caspase-3 expression can be associated with a better prognosis in certain types of cancer, such as breast cancer. This suggests that caspase-3 may play a role in the elimination of cancer cells, and that therapies aimed at activating caspase-3 may be effective in treating certain types of cancer. Procaspase-3 is a apoptotic marker protein. Prognostic significance: • High Cas3 expression: Associated with good prognosis and increased sensitivity to chemotherapy in breast, gastric, lung, and pancreatic cancers. • Low Cas3 expression: Linked to poor prognosis and increased risk of recurrence in colorectal, hepatocellular carcinoma, ovarian, and prostate cancers. |
| 7173- | CHA, | Natural compound chaetocin induced DNA damage and apoptosis through reactive oxygen species-dependent pathways in A549 lung cancer cells and in vitro evaluations |
| - | in-vitro, | Lung, | A549 |
| 7185- | CHA, | Chaetocin-induced ROS-mediated apoptosis involves ATM–YAP1 axis and JNK-dependent inhibition of glucose metabolism |
| - | vitro+vivo, | GBM, | A172 | - | in-vitro, | GBM, | T98G | - | in-vitro, | GBM, | U87MG |
| 7180- | CHA, | Chaetocin: A review of its anticancer potentials and mechanisms |
| - | Review, | Var, | NA |
| 7159- | CHA, | ROS-mediated inactivation of the PI3K/AKT pathway is involved in the antigastric cancer effects of thioredoxin reductase-1 inhibitor chaetocin |
| - | vitro+vivo, | GC, | HGC27 | - | in-vitro, | GC, | AGS | - | in-vitro, | GC, | BGC-823 | - | in-vitro, | GC, | SGC-7901 | - | in-vitro, | Nor, | HEK293 |
| 7166- | CHA, | Anti-leukemia activity of chaetocin via death receptor-dependent apoptosis and dual modulation of the histone methyl-transferase SUV39H1 |
| - | vitro+vivo, | AML, | U937 |
| 7164- | CHA, | Chaetocin induces apoptosis in human melanoma cells through the generation of reactive oxygen species and the intrinsic mitochondrial pathway, and exerts its anti-tumor activity in vivo |
| - | vitro+vivo, | Melanoma, | A375 |
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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