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1.
The ligand bis(1-methylimidazol-2-yl)ketone (bik) (1) was applied in the synthesis of mononuclear manganese(II) complexes. The complexes [Mn(bik)2Cl2] (2), [Mn(bik)2(OH2)Br]Br × H2O (3b) and [Mn(bik)3](ClO4) (4) were characterised by X-ray crystallography, ESR and UV-Vis methods.  相似文献   

2.
Condensation of 3,6-dichloropyridazine with 3,5-dimethylpyrazole in 1:1 ratio yielded one side substituted pyrazolylpyridazine ligand 3-chloro-6-(3,5-dimethylpyrazolyl)pyridazine (L) while condensation of 3,6-dichloropyridazine with substituted pyrazoles in 1:2 ratio yielded both side substituted pyrazolylpyridazine ligands such as 3,6-bis(pyrazolyl)pyridazine (L1), 3,6-bis(3-methylpyrazolyl)pyridazine (L2) and 3,6-bis(3,5-dimethylpyrazolyl)pyridazine (L3). A new series of cationic mononuclear complexes of the type [(η5-Cp)Ma(L)(PPh3)]PF6, [(η5-Cp*)Mb(L)Cl]PF6, [(η5-Cp*)Ru(L′)(PPh3)]PF6 and [(η5-Cp*)Mb(L′)Cl]+ (where Ma = Ru, Os; Mb = Rh, Ir and L′ = L1, L2, L3) bearing pyrazolylpyridazine and η5-cyclopentadienyl ligands are reported. The complexes have been completely characterized by spectral studies. The molecular structures of representative complexes have been determined by single crystal X-ray crystallography.  相似文献   

3.
The 2-methallyl complex [(η5-C9H7)Ru(η3-2-MeC3H4)(PPh3)] (3), prepared from [(η5-C9H7)Ru(PPh3)2Cl] (2) and 2-MeC3H4MgCl, reacts with HX (X = Cl, CF3CO2) in the presence of ethene to give the chiral-at-metal compounds [(η5-C9H7)Ru(C2H4)(PPh3)X] (4, 5) in nearly quantitative yields. Treatment of 2 with AgPF6 and ethene affords [(η5-C9H7)Ru(C2H4)(PPh3)2]PF6 (6), which reacts with acetone to give the substitution product [(η5-C9H7)Ru(OCMe2)(PPh3)2]PF6 (7). The molecular structure of 7 has been determined crystallographically. Whereas treatment of 4 with CH(CO2Et)N2 yields the olefin complex [(η5-C9H7)Ru{η2-(Z)-C2H2(CO2Et)2}(PPh3)Cl] (8), the reactions of 4 and 5 with Ph2CN2, PhCHN2 and (Me3Si)CHN2 lead to the formation of the carbeneruthenium(II) derivatives [(η5-C9H7)Ru(CRR′)(PPh3)Cl] (9-11) and [(η5-C9H7)Ru(CRR′)(PPh3)(κ1-O2CCF3)] (12-14), respectively. Treatment of 9 (R = R′ = Ph), 10 (R = H, R′ = Ph) and 11 (R = H, R′ = SiMe3) with MeLi produces the hydrido(olefin) complexes [(η5-C9H7)RuH(η2-CH2CPh2)(PPh3)] (15), [(η5-C9H7)RuH(η2-CH2CHPh)(PPh3)] (18a,b) and [(η5-C9H7)RuH(η2-CH2CHSiMe3)(PPh3)] (19) via C-C coupling and β-hydride shift. The analogous reactions of 11 with PhLi gives the η3-benzyl compound [(η5-C9H7)Ru{η3-(Me3Si)CHC6H5}(PPh3)] (20). The η3-allyl complex [(η5-C9H7)Ru(η3-1-PhC3H4)(PPh3)] (17) was prepared from 10 and CH2CHMgBr by nucleophilic attack.  相似文献   

4.
An oxo-bridged osmium porphyrin carbene complex, {[(OEP)Os(CPh2)]2(μ-O)} 1, was prepared from a 1:1 molar ratio of [(OEP)Os(CO)] and Ph2CN2 in refluxing CH2Cl2 or in heating toluene at 50 °C in air. The molecular structure of 1 was confirmed in solution by the 1H NMR spectrum as well as in crystalline state by X-ray diffraction. Under the similar preparative conditions with [(TTP)Os(CO)] gave a mixture of {[(TTP)Os(CPh2)]2(μ-O)} 2 and bis(carbene) complex [(TTP)Os(CPh2)2] 3, but isolation of 3 has been unsuccessful due to its gradual decomposition into 2. The OEP analog of the bis(carbene) complex 3 has not been afforded even by increasing the amount of Ph2CN2 as a carbene source. In 1, the 1H NMR spectrum without any paramagnetic shifted signals and the shorter Os-O bond length [1.8925(3) Å] would imply delocalization of the electrons along the Os-O-Os bonds and the stronger double-bonding character than that in 2, affected by the less steric repulsion between the OEP rings. In 1, the sum of the axial OsC and Os-O bond lengths [3.823(8) Å] is very close to the average value of Os(IV) porphyrins [3.84 Å].  相似文献   

5.
Five bis(3-aryl-6,6-dimethylcyclohexadienyl)ruthenium complexes (4a-4e) are prepared by reactions between di-μ-chlorodichlorobis[(1-3η:6-8η)-2,7-dimethyl-octadienyl]diruthenium and the corresponding dienes. The larger aryl substituents increase the barrier to rotation in 4a-4e relative to bis(3-methyl-6,6-cyclohexadienyl)ruthenium (5b). The activation parameters were determined by line-shape analysis for the exchange process in 4a: ΔG (183 K), 8.0 ± 0.2 kcal/mol; ΔH, 10.3 kcal/mol; and ΔS, 13 cal/mol/K. The electronic effect of the aryl substituents on the cyclohexadienyl ligand on the oxidation potential of the complex are compared to the effect of methyl substituents.  相似文献   

6.
A series of water soluble compounds of general formula [{(η6-arene)Ru(HMP)Cl}], [η6-arene = η6-cymene (1), η6-HMB (2), η6-C6H6 (3); HMP = 5-hydroxy-2-(hydroxymethyl)-4-pyrone] have been prepared by the reaction of [{(η6-arene) RuCl2}2] with HMP. The complexes 1 and 2 react with NaN3 to give in excellent yield tetra-azido complexes [{(η6-arene)Ru(μN3)N3}2] (arene = cymene 4, HMB = 5) but similar reaction of complex 3 with NaN3 yielded di-azdo complex [{(η6-C6H6)Ru(μN3)Cl}2] (6). Reaction of [{(η6-arene)Ru(μN3)Cl}2] with HMP in the presence of NaOMe resulted in the formation of azido complex [{(η6-arene)Ru(HMP)N3}]. Mono and dinuclear complexes [{(η6-arene)Ru(HMP)(L1)}]+ and [{(η6-arene)Ru(HMP)}2(μL2)]2+ were also prepared by the reaction of complexes 1 and 2 with the appropriate ligand, L1 or L2 in the presence of AgBF4 (L1 = PyCN, DMAP; L2 = 4,4′-bipy, pyrazine). The complexes are characterized on the basis of spectroscopic data and molecular structures of three representative compounds have been determined by single crystal X-ray diffraction study.  相似文献   

7.
The binuclear complex [(μ-Me2BPTZ)(Re(CO)3Cl)2] (1), where Me2BPTZ = 3,6-(5-methyl-pyridyl)-1,2,4,5-tetrazine, can be reduced by addition of bis(η5-pentamethylcyclopentadienyl) iron(II) (decamethylferrocene, Fc), to obtain a stable radical anion form 1. A single-crystal X-ray diffraction study of the radical anion (1)(Fc∗+) was conducted and compared with a computational model of the same compound in the neutral and reduced states. As such, this work presents the first structural analysis of a reduced diimine ligand that is coordinated to {Re(CO)3Cl} moieties. Bond-length changes within the tetrazine ring system were consistent with previously reported examples of tetrazine radicals and with calculated structures that show clear elongation of the azo-type NN bond. Consistently atomic charge calculations indicate that the extra electron in the radical anion resides largely at the tetrazine core. A negligible change in the Re-Cl bond length is observed and computed.  相似文献   

8.
The dinuclear complex [(η6-C6H6)Ru(μ-N3)Cl]2 (1) is obtained by the reaction of [(η6-C6H6)RuCl2]2 with sodium azide in ethanol. The benzene ruthenium β-diketonato complexes of the general formula [(η6-C6H6)Ru(L∩L)Cl] {L∩L = O,O′-acac (2); O,O′-bzac (3); O,O′-dbzm (4)} are obtained in methanol by the reaction of [(η6-C6H6)RuCl2]2 with the corresponding β-diketonates. These complexes further react with sodium azide in ethanol to yield complexes of the type [(η6-C6H6)Ru(L∩L)N3] [L∩L = O,O′-acac (5); L∩L = O,O′-bzac (6); L∩L = O,O′-dbzm (7)]. The complexes 5-7 are obtained as well by treating 1 with sodium salts of β-diketonates. These neutral benzene ruthenium azido complexes undergo [3+2] dipolar cycloaddition reaction with activated alkynes (MeO2CCCCO2Me, EtO2CCCCO2Et) or fumaronitrile (NCHCCHCN) to yield the corresponding benzene ruthenium triazolato complexes; [(η6-C6H6)Ru(O,O′-acac){N3C2(CO2Me)2}] (8), [(η6-C6H6)Ru(O,O′-acac){N3C2(CO2Et)2}] (9), [(η6-C6H6)Ru(O,O′-acac){N3C2HCN}] (10), [(η6-C6H6)Ru(O,O′-bzac){N3C2HCN}] (11) and [(η6-C6H6)Ru(O,O′-dbzm){N3C2HCN}] (12). These complexes are fully characterized on the basis of microanalyses, FT-IR and FT-NMR spectroscopy. The molecular structure of [(η6-C6H6)Ru(O,O′- acac){N3C2(CO2C2H5)2}] (9) is confirmed by single crystal X-ray diffraction study.  相似文献   

9.
The title complexes were obtained as MIIM′II species [(bpy)2M(μ-abpy)M′(bpy)2](PF6)4, M,M′ = Ru or Os, using the new mononuclear precursor [(bpy)2Os(abpy)](PF6)2 for the osmium-containing dinuclear complexes. One-electron reduction produces radical complexes [(bpy)2M(μ-abpy)M′(bpy)2]3+ and [(bpy)2M(abpy)]+ with significant contributions from the metals, as evident from the EPR effects on successive replacement of ruthenium by osmium with its much higher spin-orbit coupling constant. The diruthenium and diosmium radical complexes were also studied by EPR at high-frequency (285 GHz), the latter shows an unusually large g anisotropy g1 − g3 = 0.25 in frozen solution. Further reduction was monitored by UV/Vis spectroelectrochemistry. Oxidation produced OsIII EPR signals for [(bpy)2Os(abpy)]3+ and [(bpy)2Os(μ-abpy)Ru(bpy)2]5+, indicating a RuIIOsIII species for the latter. The diosmium(III,II) and diruthenium(III,II) mixed-valent species remained EPR silent at 4 K, however, they exhibit weak inter-valence charge transfer (IVCT) bands at about 1460 nm. Whereas the cyclic voltammetric response towards reduction is only marginally different for the three dinuclear complexes, successive replacement of ruthenium by osmium causes the first oxidation potential to decrease. The much higher comproportionation constant Kc for the mixed valent diosmium(III,II) state (Kc > 1015) in comparison to the diruthenium(III,II) analogue with Kc = 1010 confirms the electron transfer alternative for the valence exchange mechanism, in contrast to the hole transfer established for analogous dinuclear complexes with the formally related diacylhydrazido(2−) bridging ligands.  相似文献   

10.
The edge-bridged open ruthenocenes bis(η5-6,6-dimethylcyclohexadienyl)ruthenium (1), bis(η5-2,6,6-trimethylcyclohexadienyl) ruthenium (2), bis(η5-3,6,6-trimethylcyclohexadienyl)ruthenium (3), bis(η5-2,4,6,6-tetramethylcyclohexadienyl)ruthenium (4) are prepared by reactions between di-μ-chlorodichlorobis[(1-3η:6-8η)-2,7-dimethyloctadienyl] diruthenium and the corresponding dienes. Compound 4 can also be prepared in lower yield by reduction of RuCl3 · nH2O with zinc in the presence of 2,4,6,6-tetramethylcyclohexadiene. Variable temperature 1H NMR studies of 1-4 reveal rapid rotation about the Ru-C bonds. The barrier to rotation in 4 is 7.7 kcal/mol with a gauche-eclipsed ground state conformation. Even lower barriers to rotation in 1-3 contribute to the inability to accurately measure their activation energies in toluene.  相似文献   

11.
A series of water soluble complexes of general formula [(η6-arene)Ru{(C5H4N)2CNRi}Cl]PF6 have been prepared by the reaction of [{(η6-arene)RuCl2}2] with appropriate 2,2′-dipyridyl-N-alkylimine ligands (dpNRi) in the presence of NH4PF6 (where; R = Me or Et; arene = p-cymene, C6Me6, C6H6). The 2,2′-dipyridyl-N-alkylimine ligands are prepared by reaction of 2,2′-dipyridyl ketone with the corresponding alkylamine. The complexes are readily obtained as air stable yellow to dark brown solids by simple stirring at room temperature. The complexes are isolated as their hexafluorophosphate salts and characterized on the basis of spectroscopic data. The molecular structure of representative complex [(η6-C6Me6)Ru{(C5H4N)2CN-Me}Cl]PF6 has been determined by single crystal X-ray diffraction studies.  相似文献   

12.
The manganese complexes [MnII(Hbmimpm)2(NO3)](NO3) · Et2O (1), [MnIII(bmimpm)2(OAc)] · 2CH2Cl2(2), and [MnIII(bmiapm)2(OAc)] · MeOH · H2O · CH2Cl2(3) containing the new ligands Bis(1-methylimidazol-2-yl)-(4-methoxyphen-1-yl)methanol (Hbmimpm) and Bis[(1-methylimidazol-2-yl)](2-aminophenyl)methanol (Hbmiapm) were synthesized. They are good structural models for the reduced (1) and oxidized (2, 3) form of manganese superoxide dismutase. All complexes were characterized by spectroscopic methods and X-ray structure analysis. Compounds 1 and 2 crystallize in the monoclinic space group P21/c whereas complex 3 crystallizes in the monoclinic space group P21/n. The coordination sphere around the manganese cores is distorted octahedral with two corresponding tridentate ligands representing the protein ligands and one nitrate (1) or acetate (2, 3) ion occupying two cis positions. Similar to the enzyme the Mn(III) complex 2 reacts with sodium azide. The obtained microcrystalline azide adduct was characterized by UV-Vis and IR spectroscopy.  相似文献   

13.
Substitution reaction of chloro η6-arene ruthenium N∩O-base complexes [(η6-arene)Ru(N∩O)Cl] [N∩O = pyrazine-2-carboxylic acid (pca-H), 8-hydroxyquinoline (hq-H); arene = p-iPrC6H4Me, N∩O = hq (1); arene = C6Me6, N∩O = hq (2)] with NaN3 yield the neutral arene ruthenium azido complexes of the general formula [(η6-arene)Ru(N∩O)N3] [N∩O = pca, arene = p-iPrC6H4Me (3), arene = C6Me6 (4); N∩O = hq, arene = p-iPrC6H4Me (5), arene = C6Me6 (6)]. These complexes undergo [3 + 2] dipolar cycloaddition reaction with activated alkynes dimethyl and diethyl acetylenedicarboxylates to yield the arene triazole complexes [(η6-arene)Ru(N∩O){N3C2(CO2R)2}] [N∩O = pca, R = Me, arene = p-iPrC6H4Me (7), C6Me6 (8); R = Et, arene = p-iPrC6H4Me (9), C6Me6 (10); N∩O = hq, R = Me, arene = p-iPrC6H4Me (11) C6Me6 (12); R = Et, arene = p-iPrC6H4Me (13), C6Me6 (14)]. On the bases of proton NMR study, in the above triazole complexes N(2) isomers are assigned with dimethylacetylenedicarboxylate whereas N(1) isomers with diethylacetylenedicarboxylate. All complexes have been characterized by IR and NMR spectroscopy as well as by elemental analysis. The molecular structures of the azido complexes [(η6-p-iPrC6H4Me)Ru(pca)N3] (3), [(η6-p-iPrC6H4Me)Ru(hq)N3] (5) and [(η6-C6Me6)Ru(hq)N3] (6) have been established by single crystal X-ray diffraction studies.  相似文献   

14.
The complexes (tpm*)Ni(η2-NO3)(η1-NO3) (1), [(bpm*)2Ni(η2-NO3)]NO3 (2), and [(tpm*)(bpm*)Ni(η1-NO3)]NO3 (3) (tpm* = tris(3,5-dimethylpyrazolyl)methane; bpm* = bis(3,5-dimethylpyrazolyl)methane) have been prepared and characterized by IR and UV-Vis spectroscopy and X-ray diffraction studies. These d8 complexes all adopt variously distorted octahedral structures in the solid state and their magnetic moments are consistent with a paramagnetic state with two unpaired electrons. The solution 1H NMR data show that the paramagnetism is maintained in solution.  相似文献   

15.
The electrochemical properties of cationic complexes [(η6-arene)Ru(N ∩ N)Cl]Cl (arene/N ∩ N = C6H6/1,10-phenanthroline (1), p-MeC6H4Pri/1,10-phenanthroline (2), C6Me6/1,10-phenanthroline (3), C6Me6/5-NO2-1,10-phenanthroline (4), and C6Me6/5-NH2-1,10-phenanthroline (5)) were studied by cyclic voltammetry in order to rationalize catalytic activity in transfer hydrogenation of the respective aqua complexes [(η6-arene)Ru(N ∩ N)(OH2)](BF4)2 (6-10). Complexes 1-5 were chosen because the ‘true’ catalysts 6-10 are unstable under the conditions of the measurement. The electrochemical behaviour of 1-5 in acetonitrile solution is rather complicated due to consecutive and parallel chemical reactions that accompany electron transfer processes. Nonetheless, interpretation of the electrochemical data allowed to assess the influence of the structure and substitution on the redox and catalytic properties: the catalytic ability correlates with the reduction potentials, indicating the decisive role of the η6-arene ring directly bonded to the catalytic centre (Ru).  相似文献   

16.
Two approaches towards the synthesis of phosphine ligated half-sandwich complexes [(ηx-CxHx)M(PR3)2GaI2]n containing diiodogallyl ligands have been investigated. Insertion of ‘GaI’ into the Mo-I bond of (η7-C7H7)Mo(CO)2I has been shown to yield the crystallographically characterized dimeric complex [(η7-C7H7)Mo(CO)2GaI2]2 (2). Attempts to substitute the carbonyl ligands by the phosphine ligand dppe [dppe = bis(diphenylphosphino)ethane] have been shown instead to yield the sparingly soluble complex [(η7-C7H7)Mo(CO)2GaI2]2(μ-dppe) (3) in which the phosphine bridges two [(η7-C7H7)Mo(CO)2GaI2] units via a pair of P → Ga donor/acceptor bonds. By contrast, attempts to insert ‘GaI’ directly into the metal-halogen bond of phosphine ligated complexes such as (η5-C5H5)Ru(PPh3)2Cl or (η5-C5H5)Ru(dppe)Cl have been shown to result in the formation of the tetraiodogallate species(η5-C5H5)Ru(PPh3)2(μ-I)GaI3 (5) and [(η5-C5H5)Ru(dppe)]+[GaI4] (7).  相似文献   

17.
Two new complexes [(Etdpa)MnCl2] and [(Adpa)Mn(Cl)(H2O)] (Etdpa = ethyl bis(2-pyridylmethyl)amino-2-propionate; Adpa = bis(2-pyridylmethyl)amino-2-propionic acid) were synthesized and characterized by spectral methods. The crystal structure of [(Etdpa)MnCl2] shows that the Mn(II) atom is coordinated by three N atoms (N1, N2, N3), one oxygen atom (O1) of the ligand (Etdpa) and two chloride atoms (Cl1, Cl2), forming a distorted octahedral geometry. The binding interaction between ct-DNA and the synthesized complexes was relatively weak, but they can inhibit the induced swelling of Ca2+-loaded mitochondria in a dose-dependent manner. The [(Adpa)Mn(Cl)(H2O)] can cause the obvious decrease of mitochondria membrane potential. The MTT (3-[4,5-Dimethylthiazol-2-yl]-2,5-diphenpyltetra-zolium bromide) assay shows that the two Mn(II) complexes are more active against cancer cells. Especially [(Adpa)Mn(Cl)(H2O)] can inhibit the proliferation of glioma cells with IC50 9.5 μM. Experimental results indicate that the [(Adpa)Mn(Cl)(H2O)] could be a new potential antitumor complex to target the mitochondria.  相似文献   

18.
The nuclearity, bonding and H-bonded networks of copper(I) halide complexes with thiophene-2-carbaldehyde thiosemicarbazones {(C4H3S)HC2N3-N(H)-C1(S)N1HR} are influenced by R substituents at N1 atom. Thiophene-2-carbaldehyde-N1-methyl thiosemicarbazone (HttscMe) or thiophene-2-carbaldehyde-N1-ethyl thiosemicarbazone (HttscEt) have yielded halogen-bridged dinuclear complexes, [Cu2(μ-X)21-S-Htsc)2(Ph3P)2] (Htsc, X: HttscMe, I, 1; Br, 2; Cl, 3; HttscEt, I, 4; Br, 5; Cl, 6), while thiophene-2-carbaldehyde-N1-phenyl thiosemicarbazone (HttscPh) has yielded mononuclear complexes, [CuX(η1-S-HttscPh)2] (X, I, 7a; Br 8; Cl, 9) and a sulfur bridged dinuclear complex, [Cu2(μ-S-HttscPh)21-S-HttscPh)2I2] 7b co-existing with 7a in the same unit cell. These results are in contrast to S-bridged dimers [Cu2(μ-S-Httsc)21-Br)2(Ph3P)2] · 2H2O and [Cu2(μ-S-Httsc)21-Cl)2(Ph3P)2] · 2CH3CN obtained for R = H and X = Cl, Br (Httsc = thiophene-2-carbaldehyde thiosemicarbazone) as reported earlier. The intermolecular CHPh?π interaction in 1-3 (2.797 Å, 1; 3.264 Å, 2; 3.257 Å, 3) have formed linear polymers, whereas the CHPh?X and N3?HCH interactions in 4-6 (2.791, 2.69 Å, 5; 2.776, 2.745 Å, 6, respectively) have led to the formation of H-bonded 2D polymer. The PhN1H?π, interactions (2.547 Å, 8, 2.599 Å, 9) have formed H-bonded dimers only. The Cu?Cu separations are 3.221-3.404 Å (1-6).  相似文献   

19.
The potential energy surfaces of the reactions of organometallic arene complexes of the type [(η 6-arene)MII(pic)Cl] (where pic = 2-picolinic acid, M = Ru or Os) were examined by a DFT computational study. Among the seven density functional methods, hybrid exchange functional B3LYP outperforms the others to explain the aquation of the complexes. The reactions and binding energies of RuII and OsII arene complexes with both 9EtG and 9EtA were studied to gain insight into the reactivity of these types of organometallic complexes with DNA. The obtained data rationalize experimental observation, contributing to partly understanding the potential biological and medical applications of organometallic complexes.
Figure
Reactions of [(η 6-arene)MII(pic)Cl] (M = Ru and Os)  相似文献   

20.
The synthesis and characterization of a number of organometallic ruthenium(II) complexes containing a series of bidentate thiosemicarbazone ligands derived from piperonal is reported. The structure of compounds have been confirmed by spectroscopic analysis (IR and NMR) as well as X-ray crystallographic analysis of [(η6-p-cymene)Ru(pPhTSC)Cl]Cl (4) (pPhTSC is piperonal-N(4)-phenylthiosemicarbazone). The interaction of the complexes ([(η6-p-cymene)Ru(pEtTSC)Cl]Cl) (3) (pEtTSC is piperonal-N(4)-ethylthiosemicarbazone) and 4 with calf thymus DNA, human serum albumin (HSA) and pBR322 plasmid DNA were studied by spectroscopic, gel electrophoresis and hydrodynamic methods. The apparent binding constant for the interaction with DNA was determined to be 3.97 × 103 M− 1 and 4.07 × 103 M− 1 at 293 K for 3 and 4 respectively. The complexes bind strongly to HSA with binding constants of 2.94 × 104 M− 1 and 12.2 × 104 M− 1 at 296 K for 3 and 4 respectively. The in vitro anticancer activity of 3 and 4 has been evaluated against two human colon cancer cell line (HCT-116 and Caco-2) with IC50 values in the range of 26-150 μM. Both 3 and 4 show good activity as a catalytic inhibitor of human topoisomerase II at concentrations as low as 20 μM. The proficiency of 3 and 4 to act as antibacterial agents was also evaluated against six pathogenic bacterial strains with the best activity seen against Gram-positive strains.  相似文献   

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