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Luteolin inhibits melanoma growth in vitro and in vivo via regulating ECM and oncogenic pathways but not ROS
John Schomberg1, Zi Wang2, Ahmed Farhat3
1Afecta Pharmaceuticals, Inc., 2102 Business Center Dr, Irvine, CA 92612, United States.
Abstract:
Luteolin inhibited growth of several cancer cells in vitro in previous studies, with limited in vivo studies, and no comprehensive understanding of molecular mechanisms at genomics level. This study identified luteolin as an effective agent to inhibit melanoma cell growth in vitro and in vivo. Molecular studies and genomic profiling were used to identify the mechanism of action of luteolin in melanoma cells. As a ROS (reactive oxygen species) scavenger, luteolin unexpectedly induced ROS; but co-treatment with antioxidants NAC or mito-TEMPO did not rescue cell growth inhibition, although the levels of ROS levels were reduced. Next, we profiled luteolin-induced differentially expressed genes (DEGs) in 4 melanoma cell lines using RNA-Seq, and performed pathway analysis using a combination of bioinformatics software including PharmetRx which was especially effective in discovering pharmacological pathways for potential drugs. Our results show that luteolin induces changes in three main aspects: the cell-cell interacting pathway (extracellular matrix, ECM), the oncogenic pathway and the immune response signaling pathway. Based on these results, we further validated that luteolin was especially effective in inhibiting cell proliferation when cells were seeded at low density, concomitantly with down-regulation of fibronectin accumulation. In conclusion, through extensive DEG profiling in a total of 4 melanoma cell lines, we found that luteolin-mediated growth inhibition in melanoma cells was perhaps not through ROS induction, but likely through simultaneously acting on multiple pathways including the ECM (extracellular matrix) pathway, the oncogenic signaling and the immune response pathways. Further investigations on the mechanisms of this promising compound are warranted and likely result in application to cancer patients as its safety pharmacology has been validated in autism patients.
Insights
Luteolin effectively inhibits melanoma cell growth in vitro and in vivo. This study reveals luteolin acts on multiple pathways, including extracellular matrix and immune response, not solely reactive oxygen species (ROS).
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Luteolin shows in vitro anti-cancer properties, but its in vivo efficacy and molecular mechanisms in melanoma are not fully understood.
- Previous research indicates luteolin's role as a reactive oxygen species (ROS) scavenger, but its effect on ROS in melanoma cells was unclear.
Purpose of the Study:
- To investigate the efficacy of luteolin in inhibiting melanoma cell growth both in vitro and in vivo.
- To elucidate the molecular mechanisms underlying luteolin's anti-melanoma activity using genomic profiling.
Main Methods:
- Melanoma cell lines were treated with luteolin, and cell growth was assessed.
- Genomic profiling via RNA-Seq was performed to identify differentially expressed genes (DEGs).
- Bioinformatics tools, including PharmetRx, were used for pathway analysis.
Main Results:
- Luteolin inhibited melanoma cell proliferation in vitro and in vivo, particularly at low cell densities.
- Unexpectedly, luteolin induced ROS, but antioxidants did not rescue cell growth inhibition.
- RNA-Seq identified significant changes in cell-cell interaction (extracellular matrix - ECM), oncogenic, and immune response pathways.
Conclusions:
- Luteolin's anti-melanoma effects are likely mediated by simultaneous modulation of ECM, oncogenic signaling, and immune response pathways, rather than solely ROS induction.
- Luteolin demonstrates potential as a therapeutic agent for melanoma, warranting further investigation.
- The compound's validated safety pharmacology suggests potential clinical applications.
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