Heteroleptic mononuclear compounds of ruthenium(ii): synthesis, structural analyses, in vitro antitumor activity and in vivo toxicity on zebrafish embryos.

The limitations of platinum complexes in cancer treatment have motivated the extensive investigation into other metal complexes such as ruthenium. We herein present the synthesis and characterization of a new family of ruthenium compounds 1a-5a with the general formula [Ru(bipy)2L][CF3SO3]2 (bipy = 2,2'-bipyridine; L = bidentate ligand: N,N; N,P; P,P; P,As) which have been characterized by elemental analysis, ES-MS, 1H and 31P-{1H} NMR, FTIR and conductivity measurements. The molecular structures of four Ru(ii) complexes were determined by single crystal X-ray diffraction. All compounds displayed moderate cytotoxic activity in vitro against human A2780 ovarian, MCF7 breast and HCT116 colorectal tumor cells. Compound 5a was the most cytotoxic compound against A2780 and MCF7 tumor cells with an IC50 of 4.75 ± 2.82 μM and 20.02 ± 1.46 μM, respectively. The compounds showed no cytotoxic effect on normal human primary fibroblasts but rather considerable selectivity for A2780, MCF7 and HCT116 tumor cells. All compounds induce apoptosis and autophagy in A2780 ovarian carcinoma cells and some nuclear DNA fragmentation. All compounds interact with CT-DNA with intrinsic binding constants in the order 1a > 4a > 2a > 3a > 5a. The observed hyperchromic effect may be due to the electrostatic interaction between positively charged cations and the negatively charged phosphate backbone at the periphery of the double helix-CT-DNA. Interestingly, compound 1a shows a concentration dependent DNA double strand cleavage. In addition in vivo toxicity has been evaluated on zebrafish embryos unveiling the differential toxicity between the compounds, with LC50 ranging from 8.67 mg L-1 for compound 1a to 170.30 mg L-1 for compound 2a.

[1]  M. Cominetti,et al.  Ru(II)/clotrimazole/diphenylphosphine/bipyridine complexes: Interaction with DNA, BSA and biological potential against tumor cell lines and Mycobacterium tuberculosis. , 2016, Journal of inorganic biochemistry.

[2]  E. Hey‐Hawkins,et al.  Antiproliferative activity of ruthenium(ii) arene complexes with mono- and bidentate pyridine-based ligands. , 2016, Dalton transactions.

[3]  Ákos Horváth,et al.  Acute and sub-chronic toxicity of four cytostatic drugs in zebrafish , 2016, Environmental Science and Pollution Research.

[4]  C. Turro,et al.  Photoactivated inhibition of cathepsin K in a 3D tumor model , 2016, Biological chemistry.

[5]  R. Vinhas,et al.  Colorimetric assessment of BCR-ABL1 transcripts in clinical samples via gold nanoprobes , 2016, Analytical and Bioanalytical Chemistry.

[6]  Nitesh Kumar,et al.  Comparative In Vitro Binding Studies of TiCl2(dpme)2, Ti(ada)2(bzac)2, and TiCl2(bzac)(bpme) Titanium Complexes with Calf-Thymus DNA , 2015, Biochemistry research international.

[7]  Bonnie F. Sloane,et al.  Imaging Sites of Inhibition of Proteolysis in Pathomimetic Human Breast Cancer Cultures by Light-Activated Ruthenium Compound , 2015, PloS one.

[8]  A. Bergamo,et al.  Effects of the ruthenium-based drug NAMI-A on the roles played by TGF-β1 in the metastatic process , 2015, JBIC Journal of Biological Inorganic Chemistry.

[9]  Calum A. MacRae,et al.  Zebrafish as tools for drug discovery , 2015, Nature Reviews Drug Discovery.

[10]  I. Dmochowski,et al.  Caged oligonucleotides for studying biological systems. , 2015, Journal of inorganic biochemistry.

[11]  J. Ellena,et al.  Cis-[RuCl(BzCN)(N-N)(P-P)]PF6 complexes: Synthesis and in vitro antitumor activity: (BzCN=benzonitrile; N-N=2,2'-bipyridine; 1,10-phenanthroline; P-P=1,4-bis(diphenylphosphino) butane, 1,2-bis(diphenylphosphino)ethane, or 1,1'-(diphenylphosphino)ferrocene). , 2015, Journal of inorganic biochemistry.

[12]  R. Etchenique,et al.  Chemical two-photon fluorescence. , 2015, Analytical chemistry.

[13]  E. Giovannetti,et al.  Platinum-induced neurotoxicity and preventive strategies: past, present, and future. , 2015, The oncologist.

[14]  J. Eberwine,et al.  Ruthenium-caged antisense morpholinos for regulating gene expression in zebrafish embryos , 2015, Chemical science.

[15]  A. R. Fernandes,et al.  Characterization of the antiproliferative potential and biological targets of a trans ketoimine platinum complex , 2014 .

[16]  B. Ozpolat,et al.  Regulation of autophagy by polyphenolic compounds as a potential therapeutic strategy for cancer , 2014, Cell Death and Disease.

[17]  Lei Xu,et al.  Ruthenium(II) polypyridyl complexes: cellular uptake, cell image and apoptosis of HeLa cancer cells induced by double targets. , 2014, European journal of medicinal chemistry.

[18]  R. Etchenique,et al.  Fluorescent ligands and energy transfer in photoactive ruthenium-bipyridine complexes. , 2014, The journal of physical chemistry. A.

[19]  W. Berger,et al.  NKP-1339, the first ruthenium-based anticancer drug on the edge to clinical application , 2014 .

[20]  Olga Mazuryk,et al.  2-Nitroimidazole-ruthenium polypyridyl complex as a new conjugate for cancer treatment and visualization. , 2014, Journal of inorganic biochemistry.

[21]  F. Ning,et al.  Mitochondrial Fragmentation Is an Important Cellular Event Induced by Ruthenium(II) Polypyridyl Complexes in Osteosarcoma Cells , 2014, ChemMedChem.

[22]  T. Morais,et al.  Anticancer activity of structurally related ruthenium(II) cyclopentadienyl complexes , 2014, JBIC Journal of Biological Inorganic Chemistry.

[23]  M. Baptista,et al.  Cytotoxicity Studies of Cyclometallated Ruthenium(II) Compounds: New Applications for Ruthenium Dyes , 2014 .

[24]  Tatsushi Yoshida,et al.  Autophagic Cell Death and Cancer , 2014, International journal of molecular sciences.

[25]  A. R. Fernandes,et al.  Insights into the mechanisms underlying the antiproliferative potential of a Co(II) coordination compound bearing 1,10-phenanthroline-5,6-dione: DNA and protein interaction studies , 2014, JBIC Journal of Biological Inorganic Chemistry.

[26]  Zhen-Hua Liang,et al.  Synthesis, characterization, DNA interaction, antioxidant and anticancer activity studies of ruthenium(II) polypyridyl complexes. , 2013, Journal of photochemistry and photobiology. B, Biology.

[27]  Justin J. Wilson,et al.  Synthetic methods for the preparation of platinum anticancer complexes. , 2013, Chemical reviews.

[28]  Roberto Araya,et al.  Two-photon optical interrogation of individual dendritic spines with caged dopamine. , 2013, ACS chemical neuroscience.

[29]  A. R. Fernandes,et al.  Biological characterization of the antiproliferative potential of Co(II) and Sn(IV) coordination compounds in human cancer cell lines: a comparative proteomic approach , 2013, Drug metabolism and drug interactions.

[30]  H. Hadadzadeh,et al.  Bis- and tris(2,3-dihydro-4a,12b-(epoxyethanooxy)[1,4]dioxino[2,3-f][1,10]phenanthroline) complexes of Ru(II): Synthesis, structure and DNA binding properties , 2013 .

[31]  Anton J. Enright,et al.  The zebrafish reference genome sequence and its relationship to the human genome , 2013, Nature.

[32]  C. Garino,et al.  Ruthenium polypyridyl squalene derivative: a novel self-assembling lipophilic probe for cellular imaging. , 2013, International journal of pharmaceutics.

[33]  R. Gerszten,et al.  An In Vivo Zebrafish Screen Identifies Organophosphate Antidotes with Diverse Mechanisms of Action , 2013, Journal of biomolecular screening.

[34]  T. Kiss,et al.  [RuII(η⁵-C₅H₅)(bipy)(PPh₃)]⁺, a promising large spectrum antitumor agent: cytotoxic activity and interaction with human serum albumin. , 2012, Journal of Inorganic Biochemistry.

[35]  A. R. Fernandes,et al.  Cobalt complexes bearing scorpionate ligands: synthesis, characterization, cytotoxicity and DNA cleavage. , 2012, Dalton transactions.

[36]  P. Steyger,et al.  Platinum-induced ototoxicity in children: a consensus review on mechanisms, predisposition, and protection, including a new International Society of Pediatric Oncology Boston ototoxicity scale. , 2012, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.

[37]  R. Blust,et al.  Feasibility study of the zebrafish assay as an alternative method to screen for developmental toxicity and embryotoxicity using a training set of 27 compounds. , 2012, Reproductive toxicology.

[38]  Jim A. Thomas,et al.  Ruthenium(II) polypyridyl complexes and DNA--from structural probes to cellular imaging and therapeutics. , 2012, Chemical Society reviews.

[39]  S. Kashanian,et al.  DNA Interaction and DNA Cleavage Studies of a New Platinum(II) Complex Containing Aliphatic and Aromatic Dinitrogen Ligands , 2011, Bioinorganic chemistry and applications.

[40]  T. Meyer,et al.  Deactivation pathways for metal-to-ligand charge-transfer excited states of ruthenium polypyridyl complexes with triphenylphosphine as a ligand. , 2011, The journal of physical chemistry. A.

[41]  E. Hey‐Hawkins,et al.  Cytotoxicity, apoptosis and study of the DNA-binding properties of bi- and tetranuclear gallium(III) complexes with heterocyclic thiolato ligands , 2011, Investigational New Drugs.

[42]  A. Bergamo,et al.  Ruthenium anticancer compounds: myths and realities of the emerging metal-based drugs. , 2011, Dalton transactions.

[43]  Shaukat Ali,et al.  Large-Scale Assessment of the Zebrafish Embryo as a Possible Predictive Model in Toxicity Testing , 2011, PloS one.

[44]  Nicole A. Ducharme,et al.  Developmental toxicity screening in zebrafish. , 2011, Birth defects research. Part C, Embryo today : reviews.

[45]  Shaukat Ali,et al.  Zebrafish embryos and larvae: a new generation of disease models and drug screens. , 2011, Birth defects research. Part C, Embryo today : reviews.

[46]  Julieta M. Panzica-Kelly,et al.  Development of a zebrafish embryo teratogenicity assay and quantitative prediction model. , 2010, Birth defects research. Part B, Developmental and reproductive toxicology.

[47]  P. Sadler,et al.  Controlling Platinum, Ruthenium and Osmium Reactivity for Anticancer Drug Design. , 2009, Advances in inorganic chemistry.

[48]  C. Sirlin,et al.  A ruthenium-containing organometallic compound reduces tumor growth through induction of the endoplasmic reticulum stress gene CHOP. , 2009, Cancer research.

[49]  J. Rubio-García,et al.  Novel ruthenium(ii) complexes containing the N-phosphorylated iminophosphorane-phosphine ligand Ph(2)PCH(2)P{[double bond, length as m-dash]NP([double bond, length as m-dash]O)(OEt)(2)}Ph(2): a new coordination mode of its methanide anion. , 2008, Dalton transactions.

[50]  Gareth J Waldron,et al.  Zebrafish based assays for the assessment of cardiac, visual and gut function--potential safety screens for early drug discovery. , 2008, Journal of pharmacological and toxicological methods.

[51]  B. Arun,et al.  Silencing of Bcl-2 expression by small interfering RNA induces autophagic cell death in MCF-7 breast cancer cells , 2008, Autophagy.

[52]  Patricia McGrath,et al.  Zebrafish: a predictive model for assessing drug-induced toxicity. , 2008, Drug discovery today.

[53]  P. Sadler,et al.  New trends for metal complexes with anticancer activity. , 2008, Current opinion in chemical biology.

[54]  L. Kèlland,et al.  The resurgence of platinum-based cancer chemotherapy , 2007, Nature Reviews Cancer.

[55]  A. Dicker,et al.  Zebrafish: An Emerging Model System for Human Disease and Drug Discovery , 2007, Clinical pharmacology and therapeutics.

[56]  Stephen J Lippard,et al.  Direct cellular responses to platinum-induced DNA damage. , 2007, Chemical reviews.

[57]  L. Hammarström,et al.  Modulation of the lowest metal-to-ligand charge-transfer state in [Ru(bpy)2(N-N)]2+ systems by changing the N-N from hydrazone to azine: photophysical consequences. , 2006, Inorganic chemistry.

[58]  V. Brabec,et al.  DNA binding mode of ruthenium complexes and relationship to tumor cell toxicity. , 2006, Drug resistance updates : reviews and commentaries in antimicrobial and anticancer chemotherapy.

[59]  A. Rubinstein,et al.  Zebrafish assays for drug toxicity screening , 2006, Expert opinion on drug metabolism & toxicology.

[60]  V. Brabec,et al.  Modifications of DNA by platinum complexes. Relation to resistance of tumors to platinum antitumor drugs. , 2005, Drug resistance updates : reviews and commentaries in antimicrobial and anticancer chemotherapy.

[61]  T. Bechtold,et al.  Unprecedented conformational modulation of the efficiency of luminescence in Ru(II) bipyridyl complexes containing a bis(bidentate) phosphine , 2005 .

[62]  P. Maheswari,et al.  DNA binding and cleavage properties of certain tetrammine ruthenium(II) complexes of modified 1,10-phenanthrolines--effect of hydrogen-bonding on DNA-binding affinity. , 2004, Journal of inorganic biochemistry.

[63]  Takayoshi Suzuki,et al.  Ruthenium(II) complexes containing 8-(dimethylphosphino)quinoline (Me(2)Pqn): preparation, crystal structures, and electrochemical and spectroscopic properties of [Ru(bpy or phen)(3)(-)(n)(Me(2)Pqn)(n)](PF(6))(2) (bpy = 2,2'-bipyridine; phen = 1,10-phenanthroline; n = 1, 2, or 3). , 2003, Inorganic chemistry.

[64]  M. Marcaccio,et al.  Syntheses, characterization and redox properties of homoleptic ruthenium(II)–diphosphine and diarsine complexes: deviations from ligand additivity , 2002 .

[65]  Yaonan Xiao,et al.  Studies on the interaction of DNA and water‐soluble polymeric Schiff base–nickel complexes , 2002 .

[66]  R. Webster,et al.  Enantioselective synthesis of a conformationally rigid, sterically encumbered, 2-arsino-7-phosphanorbornene , 2002 .

[67]  L. Zon,et al.  Zebrafish: a model system for the study of human disease. , 2000, Current opinion in genetics & development.

[68]  F. Kiechle,et al.  Hoechst 33342 induces apoptosis in HL-60 cells and inhibits topoisomerase I in vivo. , 1999, Archives of pathology & laboratory medicine.

[69]  C. Kimmel,et al.  Stages of embryonic development of the zebrafish , 1995, Developmental dynamics : an official publication of the American Association of Anatomists.

[70]  S. Nolan,et al.  Enthalpies of reaction of CpRu(COD)Cl (Cp = η5-C5H5; COD = cyclooctadiene) with chelating tertiary phosphine ligands : solution thermochemical investigation of ligand substitution and ring strain energies in CpRu(R2P(CH2)nPR2)Cl complexes , 1994 .

[71]  D. Shriver,et al.  Vibrational study of the trifluoromethanesulfonate anion : unambiguous assignment of the asymmetric stretching modes , 1993 .

[72]  A. Balch,et al.  Two modes of chelation for bis((diphenylphosphino)methyl)phenylarsine: the structures of [Au{(Ph2PCH2)2AsPh}2][Au(CN)2] and Ru{(Ph2PCH2)2AsPh}2Cl2 , 1988 .

[73]  P. Garrou .DELTA.R-ring contributions to phosphorus-31 NMR parameters of transition-metal-phosphorus chelate complexes , 1981 .

[74]  W. Geary The use of conductivity measurements in organic solvents for the characterisation of coordination compounds , 1971 .

[75]  M. Waring,et al.  Complex formation between ethidium bromide and nucleic acids. , 1965, Journal of molecular biology.

[76]  BARNETT ROSENBERG,et al.  Inhibition of Cell Division in Escherichia coli by Electrolysis Products from a Platinum Electrode , 1965, Nature.

[77]  W. Russell,et al.  The Principles of Humane Experimental Technique , 1960 .

[78]  W. S. Abbott,et al.  A method of computing the effectiveness of an insecticide. 1925. , 1925, Journal of the American Mosquito Control Association.

[79]  J. Schellens,et al.  Approaching tumour therapy beyond platinum drugs: status of the art and perspectives of ruthenium drug candidates. , 2012, Journal of inorganic biochemistry.

[80]  D. Knapen,et al.  Structure-activity relationship assessment of four perfluorinated chemicals using a prolonged zebrafish early life stage test. , 2011, Chemosphere.

[81]  Lisa Truong,et al.  Evaluation of embryotoxicity using the zebrafish model. , 2011, Methods in molecular biology.

[82]  G. Sheldrick A short history of SHELX. , 2008, Acta crystallographica. Section A, Foundations of crystallography.

[83]  L. Zon,et al.  In vivo drug discovery in the zebrafish , 2005, Nature Reviews Drug Discovery.

[84]  Anant B. Patel,et al.  Synthesis, spectroscopic, electrochemical and antibacterial studies of new Ru(II) 1,10-phenanthroline complexes containing aryldiazopentane-2,4-dione as co-ligand , 2000 .

[85]  M. Westerfield The zebrafish book : a guide for the laboratory use of zebrafish (Danio rerio) , 1995 .

[86]  B. P. Sullivan,et al.  Mixed phosphine 2,2'-bipyridine complexes of ruthenium , 1978 .