The choice of μ-vinyliminium ligand substituents is key to optimize the antiproliferative activity of related diiron complexes

Author:

Campanella Beatrice1,Braccini Simona2,Bresciani Giulio2,De Franco Michele3,Gandin Valentina3,Chiellini Federica2,Pratesi Alessandro2,Pampaloni Guido2,Biancalana Lorenzo2,Marchetti Fabio2ORCID

Affiliation:

1. Istituto di Chimica dei Composti Organometallici , Consiglio Nazionale delle Ricerche, Via G. Moruzzi 1, I-56124 Pisa, Italy

2. University of Pisa, Department of Chemistry and Industrial Chemistry , Via G. Moruzzi 13, I-56124 Pisa, Italy

3. University of Padova, Department of Pharmaceutical and Pharmacological Sciences , Via F. Marzolo 5, I-35131 Padova, Italy

Abstract

Abstract Diiron vinyliminium complexes constitute a large family of organometallics displaying a promising anticancer potential. The complexes [Fe2Cp2(CO)(μ-CO){μ-η1:η3-C(R3)C(R4)CN(R1)(R2)}]CF3SO3 (2a-c, 4a-d) were synthesized, assessed for their behavior in aqueous solutions (D2O solubility, Log Pow, stability in D2O/Me2SO-d6 mixture at 37°C over 48 h) and investigated for their antiproliferative activity against A2780 and A2780cisR ovarian cancer cell lines and the nontumoral one Balb/3T3 clone A31. Cytotoxicity data collected for 50 vinyliminium complexes were correlated with the structural properties (i.e. the different R1–R4 substituents) using the partial least squares methodology. A clear positive correlation emerged between the octanol–water partition coefficient and the relative antiproliferative activity on ovarian cancer cell lines, both of which appear as uncorrelated to the cancer cell selectivity. However, the different effects played by the R1–R4 substituents allow tracing guidelines for the development of novel, more effective compounds. Based on these results, three additional complexes (4p-r) were designed, synthesized and biologically investigated, revealing their ability to hamper thioredoxin reductase enzyme and to induce cancer cell production of reactive oxygen species.

Funder

University of Pisa

Publisher

Oxford University Press (OUP)

Subject

Metals and Alloys,Biochemistry,Biomaterials,Biophysics,Chemistry (miscellaneous)

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