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1.
J Biol Inorg Chem ; 28(6): 531-547, 2023 09.
Article in English | MEDLINE | ID: mdl-37458856

ABSTRACT

In the treatment of hormone-dependent cancers, aromatase inhibitors (AI) are receiving increased attention due to some undesirable effects such as the risk of endometrial cancer and thromboembolism of SERMs (selective estrogen receptor modulators). Letrozole is the most active AI with 99% aromatase inhibition. Unfortunately, this compound also exhibits some adverse effects such as hot flashes and fibromyalgias. Therefore, there is an urgent need to explore new types of AIs that retain the same-or even increased-antitumor ability. Inspired by the letrozole structure, a set of new derivatives has been synthesized that include a ferrocenyl moiety and different heterocycles. The derivative that contains a benzimidazole ring, namely compound 6, exhibits a higher aromatase inhibitory activity than letrozole and it also shows potent cytostatic behavior when compared to other well-established aromatase inhibitors, as demonstrated by dose-response, cell cycle, apoptosis and time course experiments. Furthermore, 6 promotes the inhibition of cell growth in both an aromatase-dependent and -independent fashion, as indicated by the study of A549 and MCF7 cell lines. Molecular docking and molecular dynamics calculations on the interaction of 6 or letrozole with the aromatase binding site revealed that the ferrocene moiety increases the van der Waals and hydrophobic interactions, thus resulting in an increase in binding affinity. Furthermore, the iron atom of the ferrocene fragment can form a metal-acceptor interaction with a propionate fragment, and this results in a stronger coupling with the heme group-a possibility that is consistent with the strong aromatase inhibition of 6.


Subject(s)
Breast Neoplasms , Cytostatic Agents , Humans , Female , Letrozole/pharmacology , Aromatase Inhibitors/pharmacology , Aromatase Inhibitors/chemistry , Aromatase/metabolism , Metallocenes , Molecular Docking Simulation , Nitriles/pharmacology , Triazoles/pharmacology , MCF-7 Cells
2.
J Inorg Biochem ; 203: 110875, 2020 02.
Article in English | MEDLINE | ID: mdl-31706223

ABSTRACT

One mononuclear and another dinuclear Pd(II) complexes bearing a α-N-heterocyclic thiosemicarbazone ligand have been synthesized, fully characterized and studied as biological agents. In both complexes, the palladium center is coordinated to 3,5-diacetyl-1,2,4-triazol bis(N4,N4-dimethylthiosemicarbazone) via three sites (N, N and S). Their binding ability to DNA has been evaluated using spectroscopic and biophysical techniques. Molecular docking and molecular dynamics calculations supports the existence of a minor groove binding mode between the studied compounds and DNA.


Subject(s)
Coordination Complexes/chemistry , DNA/metabolism , Thiosemicarbazones/chemistry , Coordination Complexes/chemical synthesis , Coordination Complexes/metabolism , DNA/chemistry , Molecular Docking Simulation , Molecular Dynamics Simulation , Palladium/chemistry , Static Electricity , Thiosemicarbazones/chemical synthesis , Thiosemicarbazones/metabolism
3.
Inorg Chem ; 56(22): 13679-13696, 2017 Nov 20.
Article in English | MEDLINE | ID: mdl-29099179

ABSTRACT

The synthesis and characterization of Pt(II) (1 and 2) and Ru(II) arene (3 and 4) or polypyridine (5 and 6) complexes is described. With the aim of having a functional group to form bioconjugates, one uncoordinated carboxyl group has been introduced in all complexes. Some of the complexes were selected for their potential in photodynamic therapy (PDT). The molecular structures of complexes 2 and 5, as well as that of the sodium salt of the 4'-(4-carboxyphenyl)-2,2':6',2″-terpyridine ligand (cptpy), were determined by X-ray diffraction. Different techniques were used to evaluate the binding capacity to model DNA molecules, and MTT cytotoxicity assays were performed against four cell lines. Compounds 3, 4, and 5 showed little tendency to bind to DNA and exhibited poor biological activity. Compound 2 behaves as bonded to DNA probably through a covalent interaction, although its cytotoxicity was very low. Compound 1 and possibly 6, both of which contain a cptpy ligand, were able to intercalate with DNA, but toxicity was not observed for 6. However, compound 1 was active in all cell lines tested. Clonogenic assays and apoptosis induction studies were also performed on the PC-3 line for 1. The photodynamic behavior for complexes 1, 5, and 6 indicated that their nuclease activity was enhanced after irradiation at λ = 447 nm. The cell viability was significantly reduced only in the case of 5. The different behavior in the absence or presence of light makes complex 5 a potential prodrug of interest in PDT. Molecular docking studies followed by molecular dynamics simulations for 1 and the counterpart without the carboxyl group confirmed the experimental data that pointed to an intercalation mechanism. The cytotoxicity of 1 and the potential of 5 in PDT make them good candidates for subsequent conjugation, through the carboxyl group, to "selected peptides" which could facilitate the selective vectorization of the complex toward receptors that are overexpressed in neoplastic cell lines.


Subject(s)
Antineoplastic Agents/pharmacology , Carboxylic Acids/pharmacology , Coordination Complexes/pharmacology , Organoplatinum Compounds/pharmacology , Ruthenium/chemistry , Antineoplastic Agents/chemical synthesis , Antineoplastic Agents/chemistry , Antineoplastic Agents/radiation effects , Apoptosis/drug effects , Carboxylic Acids/chemical synthesis , Carboxylic Acids/chemistry , Carboxylic Acids/radiation effects , Cell Line, Tumor , Cisplatin/pharmacology , Coordination Complexes/chemical synthesis , Coordination Complexes/chemistry , Coordination Complexes/radiation effects , DNA/chemistry , DNA Damage , Humans , Intercalating Agents/chemical synthesis , Intercalating Agents/chemistry , Intercalating Agents/pharmacology , Intercalating Agents/radiation effects , Light , Molecular Docking Simulation , Molecular Dynamics Simulation , Organoplatinum Compounds/chemical synthesis , Organoplatinum Compounds/chemistry , Organoplatinum Compounds/radiation effects , Plasmids
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