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| Ivermectin — a semisynthetic avermectin-derived macrocyclic lactone and prescription antiparasitic drug, commonly abbreviated IVM and marketed orally as Stromectol. It is formally an anthelmintic/antiparasitic agent derived from avermectins originally isolated from Streptomyces avermitilis. Its established therapeutic action is activation/modulation of invertebrate glutamate-gated chloride channels, producing paralysis and death of susceptible parasites. In oncology, ivermectin is an investigational drug-repurposing candidate rather than an approved anticancer therapy. Preclinical cancer models report multiple effects including PAK1/AKT/mTOR suppression, mitochondrial dysfunction and oxidative stress, WNT-TCF inhibition, Hippo/YAP1 suppression, chloride-dependent cytotoxicity, and immunogenic cell-death/immune modulation. Primary mechanisms (ranked):
Bioavailability / PK relevance: Oral ivermectin is highly lipophilic and poorly water-soluble. After a fasting 12-mg oral dose, reported mean peak plasma concentrations are approximately 31–47 ng/mL at about 4 hours, with a plasma half-life of approximately 18 hours. It is primarily metabolized by CYP3A4 and eliminated predominantly in feces. A high-fat meal can increase systemic bioavailability approximately 2.5-fold. P-glycoprotein-mediated efflux is important in limiting CNS exposure; disruption or inhibition of this protective transport mechanism can increase neurotoxicity risk. Drug interactions and altered hepatic metabolism become particularly important when considering nonstandard high or repeated oncology dosing. In-vitro vs systemic exposure relevance: A major translational limitation is the exposure gap. Standard antiparasitic dosing produces peak circulating concentrations in the tens of ng/mL, corresponding to only roughly 0.04–0.06 µM, whereas many direct anticancer experiments use approximately 2.5–20 µM or higher ivermectin. Thus, common in-vitro anticancer concentrations can exceed conventional human systemic exposure by tens to several hundred-fold. Some tumor-selective or immune-modulatory effects may occur at lower exposures, and oncology trials are testing repeated dosing, but direct extrapolation of micromolar cell-culture cytotoxicity to standard oral dosing is not justified. Clinical evidence status: Approved antiparasitic; oncology investigational. The anticancer evidence remains predominantly preclinical, with substantial cell-culture, organoid, xenograft and immunologic evidence but very limited human efficacy data. A Phase I/II study of ivermectin plus pembrolizumab or balstilimab in metastatic triple-negative breast cancer is recruiting, and a separate randomized Phase II ICONIC study is planned to evaluate ivermectin with standard immune-checkpoint inhibition in solid tumors. No completed large randomized controlled trial has established ivermectin as an effective cancer treatment, and it has no FDA or Health Canada oncology indication. Ivermectin Mechanistic Profile
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| TFE3 - Transcription Factor E3 Type: MiT/TFE-family transcription factor / autophagy-lysosome regulator Function: TFE3 is a transcription factor that regulates lysosomal biogenesis, autophagy, nutrient sensing, mitochondrial and metabolic adaptation, and cellular stress responses. Under nutrient-rich conditions, mTORC1-dependent phosphorylation promotes cytoplasmic retention of TFE3. During starvation or lysosomal stress, TFE3 translocates to the nucleus and activates CLEAR-network genes involved in lysosomal and autophagic function. Cancer: ↑ Frequently activated or overexpressed in selected cancers and can promote tumor-cell survival, metabolic adaptation, autophagy, lysosomal function, invasion, migration, and treatment resistance. TFE3 gene fusions are oncogenic drivers in TFE3-rearranged renal cell carcinoma. However, MiT/TFE signaling can have context-dependent tumor-suppressive effects in some tissues. Alzheimer's Disease: ↕ Context-dependent. TFE3 activation can promote autophagy and lysosomal biogenesis and enhance clearance of pathogenic proteins, which is potentially neuroprotective. However, increased TFE3/autophagy signaling can also occur as a compensatory response in Alzheimer's disease when downstream lysosomal clearance remains impaired, so TFE3 expression alone does not directly indicate effective autophagic flux. |
| 8040- | IVM, | Ivermectin, a potential anticancer drug derived from an antiparasitic drug |
| - | Review, | Var, | NA |
| 8027- | IVM, | Progress in Understanding the Molecular Mechanisms Underlying the Antitumour Effects of Ivermectin |
| - | Review, | Var, | 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#:10 Target#:1750 State#:% Dir#:2
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