ArticleArchiv der Pharmazie2026
Metabolic Activation-Dependent Anti-Liver Cancer Activity and Organ-Specific Toxicity of Retrorsine From Fanhuncao (Jacobaea cannabifolia and J. litvinovii).
Article in Archiv der Pharmazie, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
Fanhuncao (Jacobaea cannabifolia and J. litvinovii) is a traditional Chinese herb with reported antitumor potential. Retrorsine, a pyrrolizidine alkaloid from Fanhuncao, requires CYP3A4‑mediated metabolic activation, but its dual outcomes (anti‑liver cancer efficacy vs. organ‑specific toxicity) remain unclear. To elucidate how CYP3A4-dependent activation of retrorsine drives both anti-liver cancer activity and organ-specific toxicity, and to identify differential cell death pathways in target organs. UPLC-HRMS profiled pyrrolizidine alkaloids in Fanhuncao. Cytotoxicity screening, molecular docking, and molecular dynamics identified retrorsine as the lead compound. Network pharmacology/toxicology predicted targets of dehydro-retrorsine. In vitro assays and Western blotting were performed on hepatoma cells. In vivo efficacy and toxicity were evaluated in H22 tumor-bearing mice. Retrorsine achieved significant tumor growth inhibition at high dose. Mechanistically, it simultaneously inhibited EGFR/PI3K/AKT/mTOR and NF-κB pathways while activating intrinsic mitochondrial apoptosis (altered Bax/Bcl-2, cytochrome c release, Caspase-9/3 activation). Retrorsine upregulated CYP3A4 in tumor cells, suggesting a potential self‑amplifying metabolic loop that requires further validation. However, this efficacy was accompanied by dose-dependent hepatorenal toxicity with organ-specific mechanisms: liver injury via oxidative stress and mitochondrial apoptosis; kidney injury via Caspase-3/GSDME-dependent pyroptosis. Retrorsine is a potent multi-target anti-liver cancer natural product, but its therapeutic window is narrowed by inseparable organ-specific toxicities (hepatic apoptosis vs. renal pyroptosis) arising from CYP3A4-dependent metabolic activation. Future decoupling strategies should focus on targeted delivery, structural modification, or combination therapies.
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