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1.
In 1977, Gale and associates reported the synthesis and antitumor activity of a series of Pt(II) complexes containing 1,2-diaminocyclohexane as the ligand. Certain of these complexes showed superior activity and greater water solubility compared to cis-Pt(NH3)2Cl2 complexes (“Neoplatin”). In this paper we report the synthesis and antitumor activity of some 40 new water soluble platinum(II) and platinum(IV) complexes. The following classes of the cis-Pt(L)Cl2 complexes were obtained, where L = 1,2-diaminocyclohexane: (a) cis-Pt(L)(X), where X is a derivative of homophthalic acid or a derivative of 1,3-benzendicarboxylic acid, (b) cis-Pt(L)(X)(OH)2 and cis-Pt(L)(X)(Cl)2 complexes, where L and X are the above-mentioned ligands, (c) cis-Pt(L)(X)2 complexes where X is the monoanion of an organic xanthate or dithiocarbamate and L = 1,2-diaminocyclohexane, (d) their corresponding Pt(IV) analogues, Pt(L)(X)2(OH)2 and Pt(L)(X)2(Cl)2. All complexes were assayed against P388 tumors and/or KB cell-bearing mice. The observed antitumor activities were correlated with the structures and spectra of the complexes as well as with the results of EHMO calculations performed on the leaving ligand molecules. A number of the most active complexes were also tested for activity against ADJ/PC6 Yoshida and S-180 tumors in vivo.  相似文献   

2.
Rhodium (II) complex with 2-benzoylpyridine (Rh(L)2Cl2) is a new, synthetic, active metal-complex, which is produced by the reaction of 2-benzoylpyridine (L) with rhodium chloride hydrate (RhCl3·nH2O). The crystal structure was determined by X-ray diffraction which is mono-nuclear. In order to explore the biological properties of the novel complex, a series of studies were performed. The results showed that Rh(L)2Cl2 had the anti-tumor activity in HepG2 and other cell lines and has been shown to induce G1 cell cycle arrest and apoptosis in HepG2 cells. The anti-cancer effect of Rh(L)2Cl2 is regulated by increased expression of caspase-3 and PARP via the mitochondrial and the death receptor pathways. Bcl-2 family proteins might play an important role in the Rh(L)2Cl2-induced changes in these two pathways. Further studies indicated that Rh(L)2Cl2 increased the level of reactive oxygen species (ROS), but that Rh(L)2Cl2-induced apoptosis was ROS-independent. In conclusion, Rh(L)2Cl2 is a potential new anti-tumor drug, which induces HepG2 cell death via the mitochondrial and death receptor pathways and has no obvious toxicity to normal liver cell.  相似文献   

3.
The rhodium(III) complexes containing 2-thiopyridone (pySH) and its conjugate anion 2-thiopyridonato (pyS) as the only ligands, [Rh(pyS)2(pySH)2]Cl, [Rh(pyS)3(pySH)], and [Rh(pyS)3], react with the tertiary phosphines PMe2Ph, PPh3, Ph2PCH2PPh2 (dppm), and Ph2PCH2CH2PPh2 (dppe) to give mixed pyS/tertiary phosphine complexes of the type [Rh(pyS)3L], [Rh(pyS)3L2], and [Rh(pyS)2L2]ClO4 where L represents a single phosphorus donor atom. These compounds were characterized mainly by 1H and 31P NMR spectroscopy.  相似文献   

4.
A series of mononuclear Ru(II) complexes of the type [Ru(S)2(K)]2+, where S = 1,10-phenanthroline/2,2′-bipyridine and K = 4-OH-btsz, 4-CH3-btsz, 3,4-di-OCH3-btsz, 4-OH-binh, 4-CH3-binh, 3,4-di-OCH3-binh, were prepared and characterized by elemental analysis, FTIR, 1H-NMR, and mass spectroscopy. The complexes displayed metal–ligand charge transfer (MLCT) transitions in the visible region. These ligands formed bidentate octahedral ruthenium complexes. The title complexes were evaluated for their in vivo anticancer activity against a transplantable murine tumor cell line, Ehrlisch’s ascites carcinoma (EAC), and in vitro cytotoxic activity against human cancer cell lines Molt 4/C8 and CEM and murine tumor cell line L1210. The ruthenium complexes showed promising biological activity especially in decreasing tumor volume and viable ascites cell counts. Treatment with these complexes prolonged the life span of mice bearing EAC tumors by 10–52%. In vitro evaluation of these ruthenium complexes revealed cytotoxic activity from 0.21 to 24 μM against Molt 4/C8, 0.16 to 19 μM aginst CEM, and 0.75 to 32 μM against L1210.  相似文献   

5.
Reaction of [Rh(CO)2](μ-Cl)]2 with bis-1,2-(di{4-dimethylaminophenyl)phosphino-ethane (L) gives the monomeric Rh(I) complex of type cis-[RhCl(L)(CO)] that was separated from a side product of type [Rh(L)2]Cl, and characterised by X-ray crystallography. This complex reacts with methyl iodide at high temperature to give the Rh(III) acetyl complex, [Rh(I)2(C(O)Me)(L)], which was also structurally characterised by X-ray crystallography. There is no sign of quaternisation of the dimethylamino groups under these conditions. This complex is soluble in organic solvent and insoluble in the polar media used in methanol carbonylation (AcOH/H2O/MeOH). However, in the presence of HI, this complex is readily soluble in AcOH/H2O/MeOH, in contrast to [Rh(I)2(C(O)Me)(dppe)] and most other Rh-acetyl complexes of diphosphine ligands.  相似文献   

6.
The preparation of cationic rhodium complexes of the types [RhL(IQNO)2]ClO4 (L  COD, COT and NBD) and [Rh(COD)(IQNO)L′]ClO4 (L′ = 4-NH2py, 4-NMe2py and PPh3) and the reactions of [Rh(COD)(IQNO)2]ClO4 with N- and P-donor ligands are described.  相似文献   

7.
The optically active mixed‐ligand fac(S)‐tris(thiolato)rhodium(III) complexes, ΔLfac(S)‐[Rh(aet)2(L‐cys‐N,S)]? (aet = 2‐aminoethanethiolate, L‐cys = L‐cysteinate) ( 1 ) and ΔLLfac(S)‐[Rh(aet)(L‐cys‐N,S)2]2? were newly prepared by the equatorial preference of the carboxyl group in the coordinated L‐cys ligand. The amide formation reaction of 1 with 1,10‐diaminodecane and polyallylamine gave the diamine‐bridged dinuclear Rh(III) complex and the single‐chain polymer‐supported Rh(III) complex with retention of the ΔL configuration of 1 , respectively. These Rh(III) complexes reacted with Co(III) or Co(II) to give the linear‐type trinuclear structure with the S‐bridged Co(III) center and the two Δ‐Rh(III) terminal moieties. The polymer‐supported Rh(III) complex was applied not only to the CD spectropolarimetric detection and determination of a trace of precious metal ions such as Au(III), Pt(II), and Pd(II) but also to concentration and extraction of these metal ions into the solid polymer phase. Chirality 28:85–91, 2016. © 2015 Wiley Periodicals, Inc.  相似文献   

8.
Rh(I), Ir(I), Pd(II) and Pt(II) metal complexes of bis(2-diphenylphosphino)ethyl)benzylamine(DPBA) and bis(2-diphenylarsino)ethyl)benzylamine (DABA) have been synthesized using various starting materials. Reaction of RhCl(CO)(AsPh3)2 with DPBA or DABA in methanol resulted in the formation of cationic complexes of the composition, [Rh(CO)(L)]Cl (L = DPBA or DABA). Interaction of [IrCl(COD)]2 with DPBA in benzene resulted in the formation of a neutral complex [IrCl(DPBA)]. Reaction of [PdCl2(COD)] with the ligand DPBA in benzene resulted in a cationic complex of the composition [PdCl(DPBA)]Cl. Interaction of [PdCl(DPBA)]BPh4 with SnCl2 gave the complex [Pd(SnCl3)(DPBA)]BPh4. The ligands DPBA and DABA react with PtCl2(COD) in acetone to give neutral, Pt(II) complexes of the type, [PtCl2L] (L = DPBA or DABA). All the complexes were fully characterized by elemental analysis, conductivity measurements, IR and far-IR and 31P{1H} NMR spectral data.  相似文献   

9.
The mixed ligand cationic rhodium(I) complexes of the type [Rh(COD)LL′]C104 (L=QNO, 2-Me- QNO, 4-MeQNO, 4-C1QNO, 2-PhQNO; L′=4-NH2py, 4-NMe2py, Im, PPh3) have been prepared and characterized. The reactions of [Rh(COD)(4-MeQNO)2]- C104 with various ligands are also reported.  相似文献   

10.
A series of Rh(III) mixed ligand polypyridine type complexes have been prepared. Complexes of the form [Rh(L)2(L)]n+, where n=2/3, L=2,2-bipyridine (bpy)/1,10-phenanthroline (phen) and L=3-(pyridin-2-yl)-1,2,4-triazole (Hpytr), 1-methyl-3-(pyridin-2-yl)-1,2,4-triazole (1M3pytr), 4-methyl-3-(pyridin-2-yl)-1,2,4-triazole (4Mpytr), 3,5-bis(pyridin-2-yl)-1,2,4-triazole (Hbpt), 4-amino-3,5-bis(pyridin-2-yl)-1,2,4-triazole (NH2bpt) and 3-(pyridin-2-yl)-5-phenyl-1,2,4-triazole (HPhpytr), have been prepared and their synthesis and characterisation are reported. Crystals of [Rh(bpy)2(Phpytr)](PF6)2 and [Rh(phen)2(NHbpt)](PF6)2 were obtained and their structures determined. Analysis of X-ray crystallographic data showed that coordination of the metal centre in [Rh(phen)2(NHbpt)](PF6)2 occurs via the amine moiety and a nitrogen of the pyridine ring. NMR studies illustrated that coordination to the NH2bpt ligand was also possible via a nitrogen of the triazole ring and the pyridine ring forming the complex [Rh(phen)2(NH2bpt)](PF6)3. The absorption and emission properties of the complexes studied were found to be π-π* in nature and preliminary evidence suggests that all complexes with the exception of [Rh(phen)2(NHbpt)](PF6)2 and [Rh(bpy)2(NHbpt)](PF6)2 are dual emitting at 77 K.  相似文献   

11.
We report here two new, high purity, high yield, one-step syntheses of cis-[Rh(bpy)2X2][PF6] {X = Cl, Br, I, bpy = 2,2′-bipyridine} directly from the RhX3 · nH2O starting materials - one conventional and one microwave. The key to obtaining the pure complexes appears to be maintaining a 2:1 ratio of bipyridine to rhodium in solution; thus all reactants must be completely dissolved prior to the start of the reaction. Comparison of the two methods is also discussed. These complexes are pure enough for emission spectroscopy after minimal work-up. The complete characterization of all the halide complexes and the first cyclic voltammetry data on the cis-[Rh(bpy)2I2][PF6] complex are reported. The irreversible Rh(III)-Rh(I) redox potential becomes more positive from Cl to I. All three complexes show two reversible redox potentials corresponding to the bipyridine reductions. These data are consistent with the loss of the two halide ligands and formation of [Rh(bpy)2]+ upon reduction of Rh(III) to Rh(I).  相似文献   

12.
[Rh2Cl2(CO)4] reacts with the ligands L (2-pyridone, 2-thiopyridone, and the isomers 6-methyl-2-thiopyridone, 2-methylmercaptopyridine, and N-methylthiopyridone) to give initially, when L/Rh = 1, the bridged-cleaved compounds cis- [RhCl(CO)2L]. Further additions of 2-methyl- mercaptopyridine, N-methylthiopyridone, or 2-pyridone caused no further change, but 2- thiopyridone and 6-methyl-2-thiopyridone gave new cis-dicarbonyl species (L/Rh = 2) and eventually monocarbonyl species (L/Rh > 3). All these solutions are air-sensitive and air oxidation of a solution of [Rh2Cl2(CO)4] with an excess of 6-methyl-2- thiopyridone gave fac-[Rh(MeC5H3NS)3] the X-ray structure of which shows three equivalent chelating 6-methyl-2-thiopyridonato ligands.  相似文献   

13.
Treatment of the Rh(III) complex [Tp∗Rh(SPh)2(MeCN)] (1) with a series of late transition metal complexes resulted in the formations of thiolate-bridged di- and trinuclear complexes, which include the Rh(III)-Rh(I) complexes, [Tp∗RhCl(μ-SPh)2Rh(cod)] (2) and [Tp∗RhCl(μ-SPh)2Rh(PPh3)2], the Rh(III)-Pd(II) complexes, [Tp∗RhCl(μ-SPh)2Pd(η3-C3H5)] (4), [{Tp∗Rh(MeCN)}(μ-SPh)2PdCl2] (5), and [{Tp∗RhCl(μ-SPh)2}2Pd] (6), and the Rh(III)-Pt(II) complex [{Tp∗RhCl(μ-SPh)2}2Pt] (7). Early-late transition metal complexes containing the Rh(III)-Re(I) and Rh(III)-Mo(0) metal centers, [Tp∗RhCl(μ-SPh)2Re(CO)4] and [{Tp∗Rh(CO)}(μ-SPh)2Mo(CO)4] were also prepared from 1. The X-ray analysis has been carried out to confirm the structures for 2, 4, 5, 6, and 7.  相似文献   

14.
The He(I) and He(II) photoelectron spectra of a series of [(LL)M(CO)2] (LL = pyrrole-2-CHN′ R; R = t-Bu; M = Rh, Ir) complexes are reported. Assignments are proposed based on He(I)/He(II) intensity differences, on molecular orbital calculations of related complexes and of free ligands, and by comparison with the spectra of the free ligands Hpyrrole-2-CHN′t-Bu, Hpyrrole-2-carbaldehyde and Hpyrrole.The electronic structure of the complexes is discussed and conclusions are drawn about the metal-ligand interaction.  相似文献   

15.
Several new bis-thiolate complexes of the type [Rh(dippe)(μ-SR)]2 where R=H, methyl, cyclohexyl, o-biphenyl, and phenyl, or (SR)2SCH2CH2CH2S have been synthesized and characterized by NMR spectroscopy and single crystal X-ray diffraction. All [Rh(dippe)(μ-SR)]2 complexes except [Rh(dippe)(μ-SPh)]2 exhibit bent geometries, while the orientation of the thiolato substituents changes with increasing steric bulk. 1H and 31P NMR spectroscopies indicate that both ring inversion and sulfur inversion occur among the members of the series, which allows them to access several isomeric forms when they are in solution. 31P NMR spectroscopy indicates that sulfur inversion in [Rh(dippe)(μ-SH)]2, [Rh(dippe)(μ-Sbiphenyl)]2, and [Rh(dippe)(μ-SPh)]2 is a non-dissociative process.  相似文献   

16.
Reaction of [Rh(CO)2I]2 (1) with MeI in nitrile solvents gives the neutral acetyl complexes, [Rh(CO)(NCR)(COMe)I2]2 (R=Me, 3a; tBu, 3b; vinyl, 3c; allyl, 3d). Dimeric, iodide-bridged structures have been confirmed by X-ray crystallography for 3a and 3b. The complexes are centrosymmetric with approximate octahedral geometry about each Rh centre. The iodide bridges are asymmetric, with Rh-(μ-I) trans to acetyl longer than Rh-(μ-I) trans to terminal iodide. In coordinating solvents, 3a forms mononuclear complexes, [Rh(CO)(sol)2(COMe)I2] (sol=MeCN, MeOH). Complex 3a reacts with pyridine to give [Rh(CO)(py)(COMe)I2]2 and [Rh(CO)(py)2(COMe)I2] and with chelating diphosphines to give [Rh(Ph2P(CH2)nPPh2)(COMe)I2] (n=2, 3, 4). Addition of MeI to [Ir(CO)2(NCMe)I] is two orders of magnitude slower than to [Ir(CO)2I2]. A mechanism for the reaction of 1 with MeI in MeCN is proposed, involving initial bridge cleavage by solvent to give [Rh(CO)2(NCMe)I] and participation of the anion [Rh(CO)2I2] as a reactive intermediate. The possible role of neutral Rh(III) species in the mechanism of Rh-catalysed methanol carbonylation is discussed.  相似文献   

17.
Treatment of Tp′Rh(PMe3)Cl2 and Tp′Rh(CNCH2CMe3)Cl2 with Cp2ZrH2 produces Tp′Rh(PMe3)H2 and Tp′Rh(CNCH2CMe3)H2, respectively, in excellent yield. Photolysis of benzene solutions of each dihydride complex generates hydrogen and the fragment [Tp′Rh(L)] which inserts into the solvent C-H bond. The phosphine dihydride has also been shown to be a catalyst for the hydrogenation of biphenylene, showing a capability to cleave C-C bonds. Reductive elimination of benzene from Tp′Rh(PMe3)PhH is nearly 250 times slower than from Cp*Rh(PMe3)PhH.  相似文献   

18.
Three new Cd(II) complexes with the Schiff base ligand derived from the condensation 1 + 2 of 2,6-diacetylpyridine and 5,6-diamino-1,3-dimethyluracil have been “in template” synthesized. The molecular structures of complexes were determined by single-crystal X-ray diffraction. The metal center shows a very distorted mer-bis-tridentate CdN6 octahedral geometry as consequence of the reduced bite angles of the ligand and the existence of long-distanced interactions with donor atoms in the neighbourhood. The luminescent properties of complexes in CH3CN solution were investigated showing the emission energies depend on the uracil part of the ligand. The evaluation of their biological properties against C6 glioma cell line indicates that cadmium(II) complexes could be an interesting tools to treat drug-resistant brain tumors.  相似文献   

19.
《Inorganica chimica acta》2005,358(2):303-309
The reactions of two equivalents of the ligands POT or POZ with one equivalent of the rhodium complex [Rh(μ-Cl)(CO)2]2 afford the complexes [(POT)Rh(CO)Cl] (1) and [(POZ)Rh(CO)Cl] (2), respectively. The crystal structures of both complexes have been determined showing the rhodium centers to be into slightly distorted square planar environments. Preliminary screening of the catalytic systems POT/Rh and POZ/Rh in the asymmetric hydroformylation of styrene has been carried out.  相似文献   

20.
Two new ruthenium(II) complexes of Schiff base ligands (L) derived from cinnamaldehyde and ethylenediamine formulated as [Ru(L)(bpy)2](ClO4)2, where L1 = N,N’-bis(4-nitrocinnamald-ehyde)ethylenediamine and L2 = N,N’-bis(2-nitrocinnamaldehyde)-ethylenediamine for complex 1 and 2, respectively, were isolated in pure form. The complexes were characterized by physicochemical and spectroscopic methods. The electrochemical behavior of the complexes showed the Ru(III)/Ru(II) couple at different potentials with quasi-reversible voltammograms. The interaction of the complexes with calf thymus DNA (CT-DNA) using absorption, emission spectral studies and electrochemical techniques have been used to determine the binding constant, Kb and the linear Stern–Volmer quenching constant, KSV. The results indicate that the ruthenium(II) complexes interact with CT-DNA strongly in a groove binding mode. The interactions of bovine serum albumin (BSA) with the complexes were also investigated with the help of absorption and fluorescence spectroscopy tools. Absorption spectroscopy proved the formation of a ground state BSA-[Ru(L)(bpy)2](ClO4)2 complex. The antibacterial study showed that the Ru(II) complexes (1 and 2) have better activity than the standard antibiotics but weak activity than the ligands.  相似文献   

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