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Updated: Jan 23, 2026

Synthesis and Evaluation of a Ruthenium-based Mitochondrial Calcium Uptake Inhibitor
Published on: October 26, 2017
Ruthenium-Cyclopentadienyl Bipyridine-Biotin Based Compounds: Synthesis and Biological Effect
Leonor Côrte-Real1, Brittany Karas2,3, Ana Rita Brás1,4
1Centro de Química Estrutural , Faculdade de Ciências da Universidade de Lisboa , Campo Grande , 1749-016 Lisboa , Portugal.
Abstract:
Prospective anticancer metallodrugs should consider target-specific components in their design in order to overcome the limitations of the current chemotherapeutics. The inclusion of vitamins, which receptors are overexpressed in many cancer cell lines, has proven to be a valid strategy. Therefore, in this paper we report the synthesis and characterization of a set of new compounds [Ru(η5-C5H5)(P(C6H4R)3)(4,4'-R'-2,2'-bpy)]+ (R = F and R' = H, 3; R = F and R' = biotin, 4; R = OCH3 and R' = H, 5; R = OCH3 and R' = biotin, 6), inspired by the exceptional good results recently obtained for the analogue bearing a triphenylphosphane ligand. The precursors for these syntheses were also described following modified literature procedures, [Ru(η5-C5H5)(P(C6H4R)3)2Cl], where R is -F (1) or -OCH3 (2). The structure of all compounds is fully supported by spectroscopic and analytical techniques and by X-ray diffraction studies for compounds 2, 3, and 5. All cationic compounds are cytotoxic in the two breast cancer cell lines tested, MCF7 and MDA-MB-231, and much better than cisplatin under the same experimental conditions. The cytotoxicity of the biotinylated compounds seems to be related with the Ru uptake by the cells expressing biotin receptors, indicating a potential mediated uptake. Indeed, a biotin-avidin study confirmed that the attachment of biotin to the organometallic fragment still allows biotin recognition by the protein. Therefore, the biotinylated compounds might be potent anticancer drugs as they show cytotoxic effect in breast cancer cells at low dose dependent on the compounds' uptake, induce cell death by apoptosis and inhibit the colony formation of cancer cells causing also less severe side effects in zebrafish.
Insights
New ruthenium anticancer drugs show enhanced efficacy against breast cancer cells. Biotinylated compounds demonstrate targeted uptake and reduced side effects, offering a promising alternative to cisplatin chemotherapy.
Area of Science:
- Organometallic Chemistry
- Medicinal Chemistry
- Cancer Biology
Background:
- Current chemotherapy limitations necessitate novel anticancer drug designs.
- Target-specific components, like vitamins, can enhance drug delivery and efficacy.
- Receptors for certain vitamins are overexpressed in numerous cancer cell lines.
Purpose of the Study:
- Synthesize and characterize novel ruthenium-biotin compounds for cancer therapy.
- Evaluate the cytotoxic effects of these compounds on breast cancer cell lines.
- Investigate the mechanism of action and potential for targeted drug delivery.
Main Methods:
- Synthesis of ruthenium precursors and novel organometallic compounds.
- Characterization using spectroscopic, analytical, and X-ray diffraction techniques.
- In vitro cytotoxicity assays on MCF7 and MDA-MB-231 breast cancer cell lines.
- Biotin-avidin binding studies to confirm receptor recognition.
- In vivo studies in zebrafish to assess side effects.
Main Results:
- All synthesized cationic compounds exhibited significant cytotoxicity against breast cancer cells, outperforming cisplatin.
- Biotinylated compounds showed enhanced ruthenium uptake in cells expressing biotin receptors, suggesting mediated uptake.
- Biotin conjugation did not impede biotin recognition by avidin, confirming functional targeting.
- Compounds induced apoptosis and inhibited cancer cell colony formation.
- Zebrafish studies indicated reduced toxicity compared to traditional chemotherapeutics.
Conclusions:
- Novel biotinylated ruthenium compounds are potent anticancer agents against breast cancer.
- Targeted delivery via biotin receptors enhances drug uptake and efficacy.
- These compounds represent a promising new class of metallodrugs with potential for reduced side effects.
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