0000000001299505

AUTHOR

María Contel

showing 23 related works from this author

Luminescent iminophosphorane gold, palladium and platinum complexes as potential anticancer agents

2014

A series of coordination gold(III), palladium(II), and platinum(II) complexes with a luminescent iminophosphorane ligand derived from 8-aminoquinoline [Ph3P[double bond, length as m-dash]N–C9H6N] (1) have been synthesized and structurally characterized. The coordination palladium(II) and platinum(II) compounds can evolve further, under appropriate conditions, to give stable cyclometalated endo species [M{κ3-C,N,N-C6H4(PPh2[double bond, length as m-dash]N-8-C9H6N)}Cl] (M = Pd, Pt) by C–H activation of the phenyl group of the PPh3 fragment. Iminophosphorane 1 and the new metallic complexes are luminescent in DMSO or DMSO–H2O (1 : 1 mixture) solutions at RT. The compounds have been evaluated f…

CisplatinLigandStereochemistrychemistry.chemical_elementHuman serum albuminCombinatorial chemistryArticleInorganic ChemistryMetalchemistry.chemical_compoundchemistryCell culturevisual_artmedicinevisual_art.visual_art_mediumPhenyl groupPlatinummedicine.drugPalladium
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Auranofin and related heterometallic gold(I)-thiolates as potent inhibitors of methicillin-resistant Staphylococcus aureus bacterial strains.

2014

A series of new heterometallic gold(I) thiolates containing ferrocenyl-phoshines were synthesized. Their antimicrobial properties were studied and compared to that of FDA-approved drug, auranofin (Ridaura), prescribed for the treatment of rheumatoid arthritis. MIC in the order of one digit micromolar were found for most of the compounds against Gram-positive bacteria Staphylococcus aureus and CA MRSA strains US300 and US400. Remarkably, auranofin inhibited S. aureus, US300 and US400 in the order of 150-300 nM. This is the first time that the potent inhibitory effect of auranofin on MRSA strains has been described. The effects of a selected heterometallic compound and auranofin were also stu…

Methicillin-Resistant Staphylococcus aureusStaphylococcus aureusAuranofinMicrobial Sensitivity Testsmedicine.disease_causeCrystallography X-RayBiochemistryArticleMicrobiologyInorganic ChemistryAuranofinmedicineHumansInhibitory effectbiologyChemistryAntimicrobialbiology.organism_classificationMethicillin-resistant Staphylococcus aureusKidney cellAnti-Bacterial AgentsHEK293 CellsStaphylococcus aureusOrganogold CompoundsBacteriamedicine.drugJournal of inorganic biochemistry
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Cytotoxic hydrophilic iminophosphorane coordination compounds of d8 metals. Studies of their interactions with DNA and HSA

2012

The synthesis and characterization of a new water-soluble N,N-chelating iminophosphorane ligand TPAN-C(O)-2-NC(5)H(4) (N,N-IM) (1) and its d(8) (Au(III), Pd(II) and Pt(II)) coordination complexes are reported. The structures of cationic [AuCl(2)(N,N-IM)]ClO(4) (2) and neutral [MCl(2)(N,N-IM)] M=Pd (3), Pt(4) complexes were determined by X-ray diffraction studies or by means of density-functional calculations. While the Pd and Pt compounds are stable in mixtures of DMSO/H(2)O over 4 days, the gold derivative (2) decomposes quickly to TPAO and previously reported neutral gold(III) compound [AuCl(2)(N,N-H)] 5 (containing the chelating N,N-fragment HN-C(O)-2-NC(5)H(4)). The cytotoxicities of co…

Circular dichroismMagnetic Resonance SpectroscopyStereochemistryPhosphoranesAntineoplastic AgentsBiochemistryMedicinal chemistryArticleCoordination complexInorganic ChemistryX-Ray DiffractionCell Line TumorSpectroscopy Fourier Transform InfraredmedicineHumansChelationSerum Albuminchemistry.chemical_classificationCisplatinLigandCircular DichroismIsothermal titration calorimetryDNANuclear magnetic resonance spectroscopyHuman serum albuminSpectrometry FluorescencechemistryMetalsCisplatinHydrophobic and Hydrophilic Interactionsmedicine.drugJournal of Inorganic Biochemistry
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Versatile synthesis of cationic N-heterocyclic carbene–gold(i) complexes containing a second ancillary ligand. Design of heterobimetallic ruthenium–g…

2016

We describe a versatile and quick route to cationic gold(i) complexes containing N-heterocyclic carbenes and a second ancillary ligand (such as phosphanes, phosphites, arsines and amines) of interest for the synthesis of compounds with potential catalytic and medicinal applications. The general synthetic strategy has been applied in the preparation of novel cationic heterobimetallic ruthenium(ii)-gold(i) complexes that are highly cytotoxic to renal cancer Caki-1 and colon cancer HCT 116 cell lines while showing a synergistic effect and being more selective than their monometallic counterparts.

Stereochemistrychemistry.chemical_elementLigands010402 general chemistry01 natural sciencesArticleRutheniumCatalysisCatalysischemistry.chemical_compoundHeterocyclic CompoundsCationsMaterials Chemistry010405 organic chemistryChemistryLigandSecond ancillaryMetals and AlloysCationic polymerizationGeneral ChemistryCombinatorial chemistry0104 chemical sciencesSurfaces Coatings and FilmsElectronic Optical and Magnetic MaterialsRutheniumCeramics and CompositesGoldMethaneCarbeneChemical Communications
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Organometallic Palladium Complexes with a Water-Soluble Iminophosphorane Ligand As Potential Anticancer Agents

2012

The synthesis and characterization of a new water-soluble iminophosphorane ligand TPA=N-C(O)-2BrC(6)H(4) (C,N-IM; TPA = 1,3,5-triaza-7-phosphaadamantane) 1 is reported. Oxidative addition of 1 to Pd(2)(dba)(3) affords the orthopalladated dimer [Pd(μ-Br){C(6)H(4)(C(O)N=TPA-kC,N)-2}](2) (2) as a mixture of cis and trans isomers (1:1 molar ratio) where the iminophosphorane moeity behaves as a C,N-pincer ligand. By addition of different neutral or monoanionic ligands to 2, the bridging bromide can be cleaved and a variety of hydrophilic or water-soluble mononuclear organometallic palladium(II) complexes of the type [Pd{C(6)H(4)(C(O)N=TPA-kC,N)-2}(L-L)] (L-L = acac (3); S(2)CNMe(2) (4); 4,7-Diph…

LigandStereochemistryDimerOrganic Chemistrychemistry.chemical_elementHuman serum albuminOxidative additionArticleInorganic Chemistrychemistry.chemical_compoundchemistryBromidemedicinePhysical and Theoretical ChemistryCytotoxicityCis–trans isomerismPalladiummedicine.drugOrganometallics
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Potential anticancer heterometallic Fe-Au and Fe-Pd agents: Initial mechanistic insights

2013

A series of gold(III) and palladium(II) heterometallic complexes with new iminophosphorane ligands derived from ferrocenylphosphanes [{Cp-P(Ph2)═N-Ph}2Fe] (1), [{Cp-P(Ph2)═N-CH2-2-NC5H4}2Fe] (2), and [{Cp-P(Ph2)═N-CH2-2-NC5H4}Fe(Cp)] (3) have been synthesized and structurally characterized. Ligands 2 and 3 afford stable coordination complexes [AuCl2(3)]ClO4, [{AuCl2}2(2)](ClO4)2, [PdCl2(3)], and [{PdCl2}2(2)]. The complexes have been evaluated for their antiproliferative properties in human ovarian cancer cells sensitive and resistant to cisplatin (A2780S/R), in human breast cancer cells (MCF7) and in a nontumorigenic human embryonic kidney cell line (HEK-293T). The highly cytotoxic trimeta…

STRUCTURAL-CHARACTERIZATIONARENE-RUTHENIUM COMPLEXESStereochemistryANTITUMOR-ACTIVITYchemistry.chemical_elementGOLD COMPOUNDSAntineoplastic AgentsCYTOTOXIC ACTIVITYArticleCoordination ComplexesCell Line TumorDrug DiscoveryOrganometallic CompoundsmedicineHumansCytotoxic T cellFerrous CompoundsBIOLOGICAL-PROPERTIESGroup 2 organometallic chemistryCisplatinHEK 293 cellsIn vitroPLATINUM(II) COMPLEXESHEK293 CellschemistryCELL-DEATHCell cultureCancer cellMolecular MedicineMETAL-COMPLEXESCisplatinOrganogold CompoundsPalladiumX-RAY-STRUCTUREPalladiummedicine.drug
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Heterometallic titanium–gold complexes inhibit renal cancer cells in vitro and in vivo

2015

Following recent work on heterometallic titanocene-gold complexes as potential chemotherapeutics for renal cancer, we report here on the synthesis, characterization and stability studies of new titanocene complexes containing a methyl group and a carboxylate ligand (mba = S-C6H4-COO-) bound to gold(I)-phosphane fragments through a thiolate group ([(η-C5H5)2TiMe(μ-mba)Au(PR3)]. The compounds are more stable in physiological media than those previously reported and are highly cytotoxic against human cancer renal cell lines. We describe here preliminary mechanistic data involving studies on the interaction of selected compounds with plasmid (pBR322) DNA used as a model nucleic acid, and with s…

BiochemistryChemistryKinaseCell cultureIn vivoCancer cellCytotoxic T cellGeneral ChemistryLigand (biochemistry)Protein kinase BIn vitro3. Good healthChemical Science
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Titanocene–gold complexes containing N-heterocyclic carbene ligands inhibit growth of prostate, renal, and colon cancers in vitro

2016

We report on the synthesis, characterization, and stability studies of new titanocene complexes containing a methyl group and a carboxylate ligand (mba = −OC(O)-p-C6H4-S−) bound to gold(I)−N-heterocyclic carbene fragments through the thiolate group: [(η5 -C5H5)2TiMe(μ-mba)Au(NHC)]. The cytotoxicities of the heterometallic compounds along with those of novel monometallic gold−N-heterocyclic carbene precursors [(NHC)Au(mbaH)] have been evaluated against renal, prostate, colon, and breast cancer cell lines. The highest activity and selectivity and a synergistic effect of the resulting heterometallic species was found for the prostate and colon cancer cell lines. The colocalization of both tita…

010405 organic chemistryLigandStereochemistryOrganic Chemistry010402 general chemistrymedicine.disease01 natural sciencesArticleIn vitro3. Good health0104 chemical sciencesInorganic Chemistrychemistry.chemical_compoundProstate cancermedicine.anatomical_structurechemistryProstatemedicineCarboxylatePhysical and Theoretical ChemistryQD0146SelectivityCarbeneMethyl group
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In Vitro and in Vivo Evaluation of Water-Soluble Iminophosphorane Ruthenium(II) Compounds. A Potential Chemotherapeutic Agent for Triple Negative Bre…

2014

A series of organometallic ruthenium(II) complexes containing iminophosphorane ligands have been synthesized and characterized. Cationic compounds with chloride as counterion are soluble in water (70–100 mg/mL). Most compounds (especially highly water-soluble 2) are more cytotoxic to a number of human cancer cell lines than cisplatin. Initial mechanistic studies indicate that the cell death type for these compounds is mainly through canonical or caspase-dependent apoptosis, nondependent on p53, and that the compounds do not interact with DNA or inhibit protease cathepsin B. In vivo experiments of 2 on MDA-MB-231 xenografts in NOD.CB17-Prkdc SCID/J mice showed an impressive tumor reduction (…

Programmed cell deathStereochemistryPhosphoranesAntineoplastic AgentsTriple Negative Breast NeoplasmsMice SCIDPharmacologyIn Vitro TechniquesArticleRutheniumIn vivoCoordination ComplexesMice Inbred NODDrug DiscoverymedicineOrganometallic CompoundsCytotoxic T cellAnimalsHumansCathepsinCisplatinChemistryWaterIn vitro3. Good healthHEK293 CellsSolubilityCell cultureApoptosisMolecular MedicineFemalemedicine.drugJournal of Medicinal Chemistry
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Organometallic Titanocene–Gold Compounds as Potential Chemotherapeutics in Renal Cancer. Study of their Protein Kinase Inhibitory Properties

2014

Early–late transition metal TiAu2 compounds [(η-C5H5)2Ti{OC(O)CH2PPh2AuCl}2] (3) and new [(η-C5H5)2Ti{OC(O)-4-C6H4PPh2AuCl}2] (5) were evaluated as potential anticancer agents in vitro against renal and prostate cancer cell lines. The compounds were significantly more effective than monometallic titanocene dichloride and gold(I) [{HOC(O)RPPh2}AuCl] (R = −CH2– 6, −4-C6H4– 7) derivatives in renal cancer cell lines, indicating a synergistic effect of the resulting heterometallic species. The activity on renal cancer cell lines (for 5 in the nanomolar range) was considerably higher than that of cisplatin and highly active titanocene Y. Initial mechanistic studies in Caki-1 cells in vitro couple…

Cisplatin010405 organic chemistryKinaseChemistryStereochemistryOrganic ChemistryCancerTitanocene dichlorideNanotechnology010402 general chemistrymedicine.disease01 natural sciencesArticleIn vitro0104 chemical sciences3. Good healthInorganic Chemistrychemistry.chemical_compoundGold CompoundsmedicinePhysical and Theoretical ChemistryProtein kinase AProtein kinase Bmedicine.drugOrganometallics
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Heterometallic titanium–gold complexes inhibit renal cancer cells in vitro and in vivo † †This paper is dedicated to Prof. Roberto Sánchez-Delgado, g…

2015

Heterometallic compounds as anticancer agents demonstrating in vivo potential for the first time. Titanocene–gold derivatives: promising candidates for renal cancer.

ChemistryChemical Science
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CCDC 977988: Experimental Crystal Structure Determination

2014

Related Article: Yozane Hokai, Boruch Jurkowicz, Jacob Fernández-Gallardo, Nuruddinkodja Zakirkhodjaev, Mercedes Sanaú, Theodore R. Muth, María Contel|2014|J.Inorg.Biochem.|138|81|doi:10.1016/j.jinorgbio.2014.05.008

(mu-11'-bis(diphenylphosphino)ferrocene)-bis(benzenethiolato)-di-goldSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1436326: Experimental Crystal Structure Determination

2016

Related Article: Jacob Fernández-Gallardo, Benelita T. Elie, Mercedes Sanaú, María Contel|2016|Chem.Commun.|52|3155|doi:10.1039/C5CC09718E

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parametersdichloro-(13-dimesityl-23-dihydro-1H-imidazol-2-ylidene)-(mu-((diphenylphosphino)methyl)(diphenyl)phosphine)-(1-isopropyl-4-methylbenzene)-ruthenium-gold perchlorate dichloromethane solvateExperimental 3D Coordinates
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CCDC 930540: Experimental Crystal Structure Determination

2016

Related Article: Nicholas Lease, Vadim Vasilevski, Monica Carreira, Andreia de Almeida, Mercedes Sanaú, Pipsa Hirva, Angela Casini, María Contel|2013|J.Med.Chem.|56|5806|doi:10.1021/jm4007615

Space GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinatesdichloro-(2-(((triphenylphosphoranylidene)amino)methyl)pyridine)-palladium(ii) chloroform solvate
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CCDC 1008354: Experimental Crystal Structure Determination

2015

Related Article: Malgorzata Frik, Alberto Martínez, Benelita T. Elie, Oscar Gonzalo, Daniel Ramírez de Mingo, Mercedes Sanaú, Roberto Sánchez-Delgado, Tanmoy Sadhukha, Swayam Prabha, Joe W. Ramos, Isabel Marzo, and María Contel|2014|J.Med.Chem.|57|9995|doi:10.1021/jm5012337

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameters(eta6-p-Cymene)-chloro-(N-(triphenylphosphoranylidene)pyridine-2-carboxamide)-ruthenium(ii) hexafluorophosphateExperimental 3D Coordinates
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CCDC 977989: Experimental Crystal Structure Determination

2014

Related Article: Yozane Hokai, Boruch Jurkowicz, Jacob Fernández-Gallardo, Nuruddinkodja Zakirkhodjaev, Mercedes Sanaú, Theodore R. Muth, María Contel|2014|J.Inorg.Biochem.|138|81|doi:10.1016/j.jinorgbio.2014.05.008

Space GroupCrystallographyCrystal System(mu-11'-bis(diphenylphosphino)ferrocene)-bis(45-dihydro-13-thiazole-2-thiolato)-di-goldCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 930539: Experimental Crystal Structure Determination

2016

Related Article: Nicholas Lease, Vadim Vasilevski, Monica Carreira, Andreia de Almeida, Mercedes Sanaú, Pipsa Hirva, Angela Casini, María Contel|2013|J.Med.Chem.|56|5806|doi:10.1021/jm4007615

Space GroupCrystallographydichloro-(2-(((diphenyl(ferrocenyl)phosphoranylidene)amino)methyl)pyridine)-palladium(ii) methanol solvateCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1436327: Experimental Crystal Structure Determination

2016

Related Article: Jacob Fernández-Gallardo, Benelita T. Elie, Mercedes Sanaú, María Contel|2016|Chem.Commun.|52|3155|doi:10.1039/C5CC09718E

Space GroupCrystallographyCrystal SystemCrystal Structure(13-bis(26-diisopropylphenyl)-23-dihydro-1H-imidazol-2-ylidene)-dichloro-(mu-((diphenylphosphino)methyl)(diphenyl)phosphine)-(1-isopropyl-4-methylbenzene)-ruthenium-gold perchlorate unknown solvateCell ParametersExperimental 3D Coordinates
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CCDC 977990: Experimental Crystal Structure Determination

2014

Related Article: Malgorzata Frik, Josefina Jiménez, Vadim Vasilevski, Monica Carreira, Andreia de Almeida, Elena Gascón, Farrah Benoit, Mercedes Sanaú, Angela Casini, María Contel|2014|Inorg.Chem.Front.|1|231|doi:10.1039/C4QI00003J

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parametersdichloro-(8-((triphenylphosphoranylidene)amino)quinoline)-gold(iii) perchlorate acetone solvateExperimental 3D Coordinates
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CCDC 977991: Experimental Crystal Structure Determination

2014

Related Article: Malgorzata Frik, Josefina Jiménez, Vadim Vasilevski, Monica Carreira, Andreia de Almeida, Elena Gascón, Farrah Benoit, Mercedes Sanaú, Angela Casini, María Contel|2014|Inorg.Chem.Front.|1|231|doi:10.1039/C4QI00003J

Space GroupCrystallographyCrystal Systemdichloro-(8-((triphenylphosphoranylidene)amino)quinoline)-palladium(ii) chloroform solvateCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1008332: Experimental Crystal Structure Determination

2014

Related Article: Jacob Fernández-Gallardo, Benelita T. Elie, Florian J. Sulzmaier, Mercedes Sanaú, Joe W. Ramos, María Contel|2014|Organometallics|33|6669|doi:10.1021/om500965k

Space GroupCrystallographyCrystal Systembis(mu2-Diphenylphosphinoacetato)-dichloro-bis(eta5-cyclopentadienyl)-di-gold-titanium chloroform solvateCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1400886: Experimental Crystal Structure Determination

2015

Related Article: Jacob Fernández-Gallardo, Benelita T. Elie, Tanmoy Sadhukha, Swayam Prabha, Mercedes Sanaú, Susan A. Rotenberg, Joe W. Ramos, María Contel|2015|Chemical Science|6|5269|doi:10.1039/C5SC01753J

Space GroupCrystallographyCrystal System(4-carboxybenzene-1-thiolato)-((ferrocen-1-yl)(diphenyl)phosphine)-gold(i)Crystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 887963: Experimental Crystal Structure Determination

2013

Related Article: Monica Carreira, Rubén Calvo-Sanjuán, Mercedes Sanaú, Isabel Marzo, and María Contel|2012|Organometallics|31|5772|doi:10.1021/om3006239

Space GroupCrystallography(2-[(135-triaza-7-phosphatricyclo[3.3.1.137]dec-7-ylideneamino)carbonyl]phenyl)-(acetylacetonato)-palladium(ii) monohydrateCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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