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Exploring the Mechanisms behind the Anti-Tumoral Effects of Model C-Scorpionate Complexes
Pedro M G Silva1, Pedro F Pinheiro2,3, Sérgio P Camões1
1Research Institute for Medicines (imed.ULisboa), Faculty of Pharmacy, Universidade de Lisboa, Av. Professor Gama Pinto, 1649-003 Lisboa, Portugal.
Abstract:
The growing worldwide cancer incidence, coupled to the increasing occurrence of multidrug cancer resistance, requires a continuous effort towards the identification of new leads for cancer management. In this work, two C-scorpionate complexes, [FeCl2(κ3-Tpm)] (1) and [Co(κ3-TpmOH)2](NO3)2 (2), (Tpm = hydrotris(pyrazol-1-yl)methane and TpmOH = 2,2,2-tris(pyrazol-1-yl)ethanol), were studied as potential scaffolds for future anticancer drug development. Their cytotoxicity and cell migration inhibitory activity were analyzed, and an untargeted metabolomics approach was employed to elucidate the biological processes significantly affected by these two complexes, using two tumoral cell lines (B16 and HCT116) and a non-tumoral cell line (HaCaT). While [FeCl2(κ3-Tpm)] did not display a significant cytotoxicity, [Co(κ3-TpmOH)2](NO3)2 was particularly cytotoxic against the HCT116 cell line. While [Co(κ3-TpmOH)2](NO3)2 significantly inhibited cell migration in all tested cell lines, [FeCl2(κ3-Tpm)] displayed a mixed activity. From a metabolomics perspective, exposure to [FeCl2(κ3-Tpm)] was associated with changes in various metabolic pathways involving tyrosine, where iron-dependent enzymes are particularly relevant. On the other hand, [Co(κ3-TpmOH)2](NO3)2 was associated with dysregulation of cell adhesion and membrane structural pathways, suggesting that its antiproliferative and anti-migration properties could be due to changes in the overall cellular adhesion mechanisms.
Insights
Two novel C-scorpionate metal complexes were investigated for anticancer potential. The cobalt complex showed significant cytotoxicity and inhibited cell migration, while the iron complex affected tyrosine metabolism.
Area of Science:
- Coordination Chemistry
- Cancer Biology
- Metabolomics
Background:
- Rising global cancer incidence and multidrug resistance necessitate new therapeutic strategies.
- C-scorpionate metal complexes offer a promising scaffold for anticancer drug development.
Purpose of the Study:
- To evaluate the anticancer potential of two C-scorpionate complexes: [FeCl2(κ3-Tpm)] and [Co(κ3-TpmOH)2](NO3)2.
- To investigate their cytotoxicity, cell migration inhibition, and underlying biological effects using metabolomics.
Main Methods:
- Synthesis and characterization of iron and cobalt C-scorpionate complexes.
- In vitro cytotoxicity and cell migration assays on B16, HCT116, and HaCaT cell lines.
- Untargeted metabolomics to identify affected biological pathways.
Main Results:
- [Co(κ3-TpmOH)2](NO3)2 exhibited significant cytotoxicity against HCT116 cells and inhibited cell migration across all tested cell lines.
- [FeCl2(κ3-Tpm)] showed limited cytotoxicity but impacted tyrosine metabolism pathways.
- Metabolomics revealed that the cobalt complex disrupted cell adhesion and membrane structural pathways.
Conclusions:
- The cobalt C-scorpionate complex demonstrates potent antiproliferative and anti-migration activities, likely mediated by altering cellular adhesion mechanisms.
- The iron C-scorpionate complex's biological effects are linked to tyrosine metabolism.
- These complexes represent potential leads for developing novel anticancer agents.
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