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A bibenzyl from Dendrobium ellipsophyllum inhibits migration in lung cancer cells
Chatchai Chaotham1, Pithi Chanvorachote
1Cell-Based Drug and Health Product Development Research Unit, Department of Biochemistry and Microbiology, Faculty of Pharmaceutical Sciences, Chulalongkorn University, Bangkok, 10330, Thailand.
Abstract:
Metastatic cancer cells have been shown to have aggressive behaviors accounting for the high incidence of chemotherapeutic failure and mortality. Because migration and invasion are crucial behaviors for cancer cell dissemination, promising compounds exhibiting potential antimigration effects are of interest for metastasis-based therapeutic approaches. This study aimed to evaluate the activity of a bibenzyl, 4,5,4'-trihydroxy-3,3'-dimethoxybibenzyl (TDB), isolated from Dendrobium ellipsophyllum Tang and Wang, in the suppression of migration in human lung cancer cells. TDB at nontoxic concentrations (1 and 5 µM) significantly inhibited the motility of lung cancer cells in scratch-wound assay. Chemotaxis-induced migration and invasion assays also revealed that the cell motility dramatically diminished in the cells treated with 1-5 µM TDB. Western blot analysis provided the underlying molecular mechanism, showing that TDB reduced such cell migration and invasion by decreasing migration-regulating proteins, including integrins αv, α4, β1, β3 and β5, as well as downstream signaling proteins, such as activated focal adhesion kinase (pFAK), activated Ras-related C3 botulinum toxin substrate 1 (Rac1-GTP) and cell division control protein 42 (Cdc42). As the presence of cellular protrusion, called filopodia, has been indicated as a hallmark of migrating cells, we showed that the reduction of the mentioned proteins correlated well with the disappearance of filopodia. In summary, this study demonstrates the promising activity of TDB and its mechanism in the inhibition of lung cancer cell migration, which might be useful for encouraging the development of this compound for antimetastatic approaches.
Insights
This study shows that 4,5,4'-trihydroxy-3,3'-dimethoxybibenzyl (TDB) from Dendrobium ellipsophyllum inhibits lung cancer cell migration and invasion. TDB reduces key proteins involved in cell movement and filopodia formation, offering potential antimetastatic therapeutic strategies.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Metastatic cancer's aggressive behavior leads to high mortality and chemotherapeutic failure.
- Cell migration and invasion are critical for cancer dissemination, making antimigration compounds a therapeutic interest.
Purpose of the Study:
- To evaluate the antimigratory and anti-invasive activity of 4,5,4 '-trihydroxy-3,3 '-dimethoxybibenzyl (TDB) in human lung cancer cells.
- To elucidate the molecular mechanisms underlying TDB's effects on cancer cell motility.
Main Methods:
- Scratch-wound, chemotaxis-induced migration, and invasion assays were used to assess TDB's effect on cell motility.
- Western blot analysis was employed to investigate the impact of TDB on migration-regulating proteins and downstream signaling pathways.
- Cellular filopodia formation was observed to correlate with changes in protein expression.
Main Results:
- TDB significantly inhibited lung cancer cell motility at nontoxic concentrations (1 and 5 µM).
- TDB treatment reduced the expression of key migration-regulating proteins, including integrins (αv, α4, β1, β3, β5), pFAK, Rac1-GTP, and Cdc42.
- The reduction in these proteins correlated with a decrease in filopodia, structures essential for cell migration.
Conclusions:
- TDB exhibits significant potential as an antimetastatic agent by suppressing lung cancer cell migration and invasion.
- The mechanism involves the downregulation of critical proteins regulating cell motility and the reduction of filopodia.
- TDB warrants further investigation for the development of novel antimetastatic therapies.
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