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1.
The extra- and intramitochondrial phosphorylation potentials (ΔGp(out) and ΔGp(in), respectively) generated by respiring Ehrlich ascites tumor mitochondria were determined, using succinate, pyruvate + malate, ascorbate + N,N,N′,N′-tetramethyl-p-phenylenediamine, and ascorbate + ferrocyanide as substrate systems. Values of ΔGp(out) exceeding 15 kcal mol?1 (62.8 kJ mol?1) in post-ADP state 4 respiration were found with succinate as substrate, in agreement with data on normal rat liver mitochondria. ΔGp(out) values exceeding 15 kcal mol?1 (62.8 kJ mol?1) were also observed with ascorbate + TMPD or ascorbate + ferrocyanide as substrates. Slightly lower values of ΔGp(out) were found with the NAD-linked substrates pyruvate + malate. The intramitochondrial ΔGp(in) developed by respiring Ehrlich ascites tumor mitochondria respiring on succinate approached 12 kcal mol?1 (50.2 kJ mol?1), in agreement with reported values on rat liver mitochondria. The prior accumulation of Ca2+ and phosphate by the Ehrlich cell mitochondria did not lower the extramitochondrial ΔGp(out) developed after a subsequent addition of ADP. Although the rate of oxidative phosphorylation of Ehrlich ascites tumor cells is reduced by intramitochondrial Ca2+ and phosphate (Villalobo and Lehninger (1980) J. Biol. Chem., 255, 2457–2464) they are still capable of generating ATP in the suspending medium against a high thermodynamic gradient, as expressed by the [ATP]/[ADP][Pi]mass action ratio.  相似文献   

2.
《Inorganica chimica acta》1988,149(2):259-264
The bis(N-alkylsalicylaldiminato)nickel(II) complexes Ni(R-sal)2 with R = CH(CH2OH)CH(OH)Ph (I), R = CH(CH3)CH(OH)Ph (II) and R = CH2CH2Ph (III; Ph = phenyl) were prepared and characterized. In the solid state I and II are paramagnetic (μ = 3.2 and 3.3 BM at 20 °C, respectively), whereas III is diamagnetic. It follows from the UV-Vis spectra that in acetone solution I is six-coordinate octahedral and III is four-coordinate planar, the spectrum of II showing characteristics of both modes of coordination. Vis spectrophotometry and stopped-flow spectrophotometry were applied to study the kinetics of ligand substitution in I–III by H2salen (= N,N′-disalicylidene-ethylenediamine) in the solvent acetone at different temperatures. The kinetics follow a second-order rate law, rate = k[H2-salen] [complex]. At 20 °C the sequence of rate constants is k(III):k(II):k(I) = 11 850:40.6:1. The activation parameters are ΔH(I) = 112, ΔH(II) = 40.7, ΔH(III) = 35.7 kJ mol−1 and ΔS(I) = 92, ΔS(II) = −103, ΔS(III) = −89 J K−1 mol−1. The enormous difference in rate between complexes I, II and III, which is less pronounced in methanol, is attributed to the existence of a fast equilibrium planar ⇌ octahedral, which is established in the case of I and II by intramolecular octahedral coordination through the hydroxyl groups present in the organic group R. An A-mechanism is suggested to control the substitution in the sense that the entering ligand attacks the four-coordinate planar complex, the octahedral complex being kinetically inert.  相似文献   

3.
《Inorganica chimica acta》1988,154(2):209-214
The diastereoisomeric complex Δ-(+)-tris(cyclicO,O′, 1 (R), 2(R)(−)dimethylethylene dithiophosphato)chromium(III), was synthesized stereoselectively in tetrahydrofuran (THF) solution. The complex proves optically labile, [α]D=+106, in CHCl3, changing quickly to [α]D=+211. The CD spectra in THF enable us to characterize the complex and show a configuration inversion which gives the diastereoisomeric equilibrium Λ⇌Δ with an excess of the Λ-(R,R)(R,R)(R,R) diastereoisomeric form. The equilibrium constant K=0.86 at 25 °C is indicative of a different thermodynamic stability between the two diastereoisomers in THF solution, Λ-(R,R)> Δ-(R,R), δΔH°=1.5 kJ mol−1, δΔG°=0.3 kJ mol−1, δΔS°=4 J mol−1 K−1. The kinetic diastereoisomer Δ-(R,R)(R,R)(R,R) is stabilized in CHCl3, CH2Cl2, EtOH solvents where it is highly soluble and optically stable with a maximum negative chirality factor, g=−5×10−3, in CHCl3.  相似文献   

4.
《Inorganica chimica acta》1988,149(2):193-208
The reactions of Fe(CO)3(R-DAB; R1, H(4e)) (1a: R = i-Pr, R1 = H; 1b: R = t-Bu, R1 = H; 1c: R = c-Hex, R1 = H; 1e: R = p-Tol, R1 = H; 1f: R = i-Pr, R1 = Me) with Ru3(CO)12 and of Ru(CO)3(R-DAB; R1, H(4e)) (2a: R = i-Pr, R1 = H; 2d: R = CH(i-Pr)2, R1 = H) with Fe2(CO)9 in refluxing heptane both afforded FeRu(CO)6(R-DAB; R1, H(6e)) (3) in yields between 50 and 65%.The coordination mode of the ligand has been studied by a single crystal X-ray structure determination of FeRu(CO)6(i-Pr-DAB(6e)) (3a). Crystals of 3a are monoclinic, space group P21/a, with four molecules in a unit cell of dimensions: a = 22.436(3), b = 8.136(3), c = 10.266(1) Å and β = 99.57(1)°. The structure was refined to R = 0.049 and Rw = 0.052 using 3045 reflections above the 2.5σ(I) level. The molecule contains an FeRu bond of 2.6602(9) Å, three terminally bonded carbonyls to Fe, three terminally bonded carbonyls to Ru and bridging 6e donating i-Pr-DAB ligand. The i-Pr-DAB ligand is coordinated to Ru via N(1) and N(2) occupying an apical and equatorial site respectively (RuN(1) = 2.138(4) RuN(2) = 2.102(3) Å). The C(2)N(2) moiety of the ligand is η2-coordinated to Fe with C(2) in an apical and N(2) in an equatorial site (FeC(2) = 2.070(5) and FeN(2) = 1.942(3) Å).The 1H and 13C NMR data indicate that in all FeRu(CO)6(R-DAB(6e)) complexes (3a to 3f) exclusively η2-CN coordination to the Fe atom and not to the Ru atom is present irrespective of whether 3 was prepared by reaction of Fe(CO)3(R-DAB(4e)) (1) with Ru3(CO)12 or by reaction of Ru(CO)3(R-DAB(4e)) (2) with Fe2(CO)9. In the case of FeRu(CO)6(i-Pr-DAB; Me, H(6e)) (3f) the NMR data show that only the complex with the C(Me)N moiety of the ligand σ-N coordinated to the Ru atom and the C(H)N moiety η2-coordinated to the Fe atom was formed. Variable temperature NMR experiments up to 140 °C showed that the α-diimine ligand in 3a is stereochemically rigid bonded.FeRu(CO)6(R-DAB(6e)) (3a and 3e) reacted with allene to give FeRu(CO)5(R-DAB(4e))(C3H4) (4a and 4e). A single crystal X-ray structure determination of FeRu(CO)5(i-Pr-DAB(4e))(C3H4) (4a) was performed. Crystals of 4a are triclinic, space group P1, with two molecules in a unit cell of dimensions: a = 9.7882(7), b = 12.2609(9), c = 8.3343(7) Å, α = 99.77(1)°, β = 91.47(1)° and γ = 86.00(1)°. The structure was refined to R = 0.028 and Rw = 0.043 using 4598 reflections above the 2σ(I) level. The molecule contains an FeRu bond of 2.7405(7) Å and three terminally bonded carbonyls to iron. Two carbonyls are terminally bonded to the Ru atom together with a chelating 4e donating i-Pr-DAB ligand [RuN = 2.110(1) (mean)]. The allene ligand is coordinated in an η3-allylic fashion to the Fe atom while the central carbon of the allene moiety is σ-bonded to the Ru atom (FeC(14) = 2.166(3), FeC(15) = 1.970(2), FeC(16) = 2.127(3) and RuC(15) = 2.075(2) Å). The 1H and 13C NMR data show that in solution the coordination modes of the R-DAB and the allene ligands are the same as in the solid state.Thermolysis reactions of 3a with R-DAB or carbodiimides gave decomposition and did not afford C(imine)C(reactant) coupling products. Thermolysis reactions of 3a with M3(CO)12 (M = Ru, Os) and Me3NO gave decomposition. When the reaction of 3a with Me3NO was performed in the presence of dimethylacetylenedicarboxylate (DMADC) the known complex FeRu(CO)4(i-Pr-DAB(8e))(DMADC) (5a) was formed in low yield. In 5a the R-DAB ligand is in the 8e coordination mode with both the imine bonds η2-coordinated to iron. The acetylene ligand is coordinated in a bridging fashion, parallel with the FeRu bond.  相似文献   

5.
《Carbohydrate research》1987,162(2):171-179
The crystal and molecular structures of methyl 2,4,6-tri-O-pivaloyl-α-d-glucopyranoside (1), methyl 4,6-O-(R)-benzylidene-2-O-pivaloyl-α-d-glucopyranoside (2), and methyl 4,6-O-(R)-benzylidene-2,3-di-O-pivaloyl-α-d-glucopyranoside (3) were determined by X-ray analysis. Crystals of 1 are orthorhombic, space group P212121 with the unit cell a = 13.026(2), b = 16.832, c = 11.929(2) Å, Z = 4. Crystals of 2 are monoclinic, space group P21. The unit-cell parameters are a = 6.519(1), b = 14.664(4), c = 10.635(4) Å, β = 93.18(1)°, Z = 2. Crystals of 3 are orthorhombic, space group P212121 with a = 10.006(3), b = 13.874(3), c = 18.527(5) Å, Z = 4. The structures were solved by MULTAN and refined by a full-matrix procedure to final values of R = 0.084 (1), 0.048 (2), and 0.069 (3). The pyranose ring in each compound adopts the 4C1 conformation. The 1,3-dioxane rings in 2 and 3 show a chair conformation. The molecular packing in 1 is through the hydrogen bonds involving HO-3 and the 6-O-pivaloyl carbonyl group [HO-3 ⋯ O-9, 2.855(8) Å], which connect the molecules into a chain along
. The endocyclic oxygen atom is involved in an intermolecular hydrogen-bond with HO-3 [2.848(4) Å], joining molecules of 2 into the chains along
. There are no free hydroxyl groups in 3 and molecular packing reflects van der Waals interactions only.  相似文献   

6.
The copper(II) complex [Cu{(R,R)-1}] in which (R)-H21 is 1,6-bis(3-ethoxy-2-hydroxyphenyl)-(3R,4R)-(?)-cyclohexane-1,2-diyl-2,5-diazahexa-1,5-diene possesses an O4-donor cavity that can bind Pb2+, Cd2+ and Eu3+. The single crystal structures of [Cu(OH2){(R,R)-1}Pb(ONO2)2], {[Cu{(R,R)-1}Cd(ONO2)(OH2)2][NO3].MeOH}.[Cu{(R,R)-1}] and [Cu{(R,R)-1}Eu(O2NO)3] are presented. The co-crystallization of [Cu{(R,R)-1}Cd(ONO2)(OH2)2][NO3] and [Cu{(R,R)-1}] appears to be driven by hydrogen-bonded host–guest interactions between each axial water ligand in [Cu{(R,R)-1}Cd(ONO2)(OH2)2]+ with the O4-domain of [Cu{(R,R)-1}]. When the ligand scaffold is changed from cyclohexane-1,2-diyl to 1,1′-binaphthyl to give (R)-H22, the N2O2-cavity is unable to bind copper(II) in its preferred square planar environment. The single crystal structure of [Zn{(R)-2}] confirms the presence of tetrahedral zinc(II). As a result, the spatial properties of the ethoxy arms in [Zn{(R)-2}] and [Cu{(R)-2}] are not suited to the facile formation of dimetallic complexes.  相似文献   

7.
A complex containing a protonated and N3-platinated cytosine (C), [CH][Cl3Pt(C)] (1a) has been prepared, converted into its K[Cl3Pt(C)] (1b) and NH4[Cl3]Pt(C)]·H2O (1c) analogs, and structurally characterized (X-ray, Raman, NMR). Reaction of 1b with L = 1-methylcytosine and with L = Me2SO gave the neutral mixed-ligand complexes cis-Cl2Pt(C)L. Excess NH3 was used to convert the anion of 1b into the cation [(NH3)3Pt(C)]2+ (3a). The pKa of the N(1)H proton in 3a is 9.4, as determined by UV spectroscopy. The N(1)H is displaced by Pt(II) electrophiles even at neutral pH to give N3,N1-diplatinated cytosinato complexes, as shown by 1H NMR (3J coupling or 195Pt at N(1) with H6, 29 Hz, and 4J coupling of 195Pt at N(3) with H5, 14Hz). The results of the X-ray structure determination of 1a (R = 0.031, Rw = 0.034) are of relevance in that they permit a direct comparison of the effect of a proton as opposed to that of a Pt electrophile on the nucleobase geometry. Moreover, the expected decrease in CO(2) bond length as a consequence of Pt binding is observed.  相似文献   

8.
《Inorganica chimica acta》1988,149(1):151-154
The extraction equilibrium of the hydronium-uranium(VI)-dicyclohexano-24-crown-8 complex was carried out in the crown ether1,2-dichloroethaneHCl aqueous solution system at different temperatures. The extraction complex has the overall composition (L)2·(H3O+·χH2O)2·UO2Cl42− (L = dicyclohexano-24-crown-8). The values of the extraction equilibrium constants (Kex) increase steadily with a decrease in temperature: 13.5 (298 K), 7.96 (301 K), 4.20 (303 K) and 2.07 (305 K). A plot of log Kex against 1/T shows a straight line. The value of the enthalpy change, ΔH°, was calculated from the slope and equals −212 kJ mol−1. The value of the entropy change, ΔS°, was calculated from ΔH° and Kex and equals −690 J K−1 mol−1, whereas ΔG° = −6.45 kJ mol−1. Comparing these thermodynamic parameters with those of the dicyclohexano-18-crown-6 isomer A [1] (ΔS° = −314 J K−1 mol−1, ΔH° = −101 kJ mol−1 and ΔG° = −8.37 kJ mol−1), it can be seen that ΔH° and ΔS° are more negative for the former than for the latter, and both are enthalpy-stabilized complexes. The molecular structure of the complex has the feature that there are two H5O2+ ions in it, in contrast to the H3O+ ions in the dicyclohexano-18-crown-6 isomer A complex [1]. Each of the H5O2+ ions is held in the crown ether cavity by four hydrogen bonds. The H5O2+ ion has a central bond. The uranium atom forms UO2Cl42− as a counterion away from the crown ether. The formation of this complex is in good agreement with more negative entropy change and less negative free energy change, as mentioned above.  相似文献   

9.
Microbial transformation of the steroidal sapogenin diosgenin (1) by resting cells of the filamentous fungus, Cunninghamella echinulata CGMCC 3.2716 was studied. Four metabolites were isolated and unambiguously characterized as (25R)-spirost-5-ene-3β,7β-diol-11-one (2), (25R)-spirost-5-ene-3β,7β-diol (3), (25R)-spirost-5-ene-3β,7β,11α-triol (4), and (25R)-spirost-5-ene-3β,7β,12β-triol (5), by various spectroscopic methods (1H, 13C NMR, DEPT, 1H–1H COSY, HMBC, HSQC and NOESY). Compound 2 is a new metabolite. The NMR data and full assignment for the known metabolites (25R)-spirost-5-ene-3β,7β-diol (3) and (25R)-spirost-5-ene-3β,7β,11α-triol (4) are described here for the first time. The biotransformation characteristics observed included were C-7β, C-11α and C-12β hydroxylations. Compounds 1–5 exhibited no significant cytotoxic activity to human glioma cell line U87.  相似文献   

10.
The preparation is reported of [(NH3)3Pt(9- MeA)] X2 (9-MeA = 9-methyladenine) with XCl (1a) and XClO4 (1b) and of trans-[(OH)2Pt(NH3)3- (9-MeA)]X2 with XCl (2a) and XClO4 (2b), and the crystal structure of 1b. [(NH3)3Pt(C6H7N5)](ClO4)2 crystallizes in space group P21/n with a = 20.810(7) Å, b = 7.697(3) Å, c = 10.567(4) Å, β = 91.57(6)°, Z = 4. The structure was refined to R = 0.054, Rw = 0.063. In all four compounds Pt coordination is through N7 of 9-MeA, as is evident from 3J coupling between H8 of the adenine ring and 195Pt. Pt(II) and Pt(IV) complexes can be differentiated on the basis of different 3J values, larger for Pt(II) than for Pt(IV) by a factor of 1.57 (av). In Me2SO-d6, hydrogen bonding occurs between Cl? and C(8)H of 9-MeA as weil as between Cl? and the NH3 groups in the case of the Pt(II) complex 1a. Protonation of the 9-MeA ligands was followed using 1H NMR spectroscopy and pKa values for the N1 protonated 9-MeA ligands were determined in D2O. They are 1.9 for 1a and 1.8 for 2a, which compares with 4.5 for the non-platinated 9-MeA. Possible consequences for hydrogen bonding with the complementary bases thymine or uracil are discussed briefly. Protonation of the OH groups in the Pt(IV) complexes has been shown not to occur above pH 1.  相似文献   

11.
O-(2-Hydroxyethyl)cellulose (1) as formed by the alkali-catalyzed addition of ethylene oxide to cellulose flock in a slurry process is not uniformly substituted. Most of the ethylene oxide adds to HO-6 in a chain-fashion, so that ~20% of the d-glucose residues remain totally unsubstituted at 2.0 molar substitution. Consequently, an aqueous solution thickened by 1 is highly susceptible to enzymic degradation. Stepwise decrease in concentration of alkali during etherification gives improved stability to enzymic degradation associated with a more-uniform distribution of hydroxyethyl groups between the three hydroxyl groups of the glucose residues in cellulose. The relative reactivities of hydroxyl groups and patterns of substitution were established by matching the distribution patterns from a stochastic computer-model with the distribution of substituents as determined by chemical analyses [namely hydrolysis with sulfuric acid to determine the percentage of unsubstituted glucose residues (u-2) and with periodate oxidation for determining the percentage of unsubstituted 2,3-vicinal diol groups per residue]. The reactivities of the three hydroxyl groups at various alkali concentrations in a heterogeneous, slurry-addition process approximate those observed under homogeneous conditions, wherein the reactivities have been determined by tedious chromatographic analyses. In the variable-alkali procedure for addition of ethylene oxide, the amount of water available to the cellulose matrix in the low-alkali (m) sequence is important both for the stability to enzymic degradation and for obtaining gel-free, thickened, aqueous solutions. Optimal stabilities and gel-free solutions are observed at intermediate water: cellulose ratios of 1.10–1.23. At a ratio of 1.23, the stability to enzymic degradation is less sensitive to percentage variations of u-2 than in 1 prepared at higher or lower water: cellulose ratios. Although the initial degree of degradation between 1 of high molar substitution prepared at 6.8m alkali concentration and a similar product prepared under variable alkali conditions may be related to percentage differences of u-2, the rate and final degree of degradation do not relate to percentage differences of u-2. An adequate interpretation, utilizing known cellulase turnover-rates, is found in stochastic-model projections of the distribution of consecutive 2 residues not substituted at HO-2. The results indicate that (1) more-uniform substitution through equalization of hydroxyl reactivities is achieved by lowering the alkali concentration, and (2) more-uniform substitution of 2 of the many cellulose-chains being substituted is achieved by employing an optimal amount of “available” water during etherification.  相似文献   

12.
Accurate modelling of rotamer equilibria for the primary hydroxyl groups of monosaccharides continues to be a great challenge of computational glycochemistry. The metadynamics technique was applied to study the conformational free energy surfaces of methyl α-d-glucopyranoside and methyl α-d-galactopyranoside, employing the glycam06 force field. For both molecules, seven to eight conformational free-energy minima, differing in the ω (O-5–C-5–C-6–O-6) and χ (C-3–C-4–O-4–HO-4) dihedral angles, were identified in vacuum or in a water environment. The calculated rotamer equilibrium of the primary hydroxyl group is significantly different in vacuum than in water. The major effect of a water environment is the destabilisation of a hydrogen bond between O-4–HO-4 and O-6–HO-6 groups. It was possible to calculate the free-energy differences of individual rotamers with an accuracy of better than 2 kJ/mol. The calculated gg, gt and tg rotamer populations in water are in close agreement with experimental measurements, and therefore support the theoretical background of metadynamics.  相似文献   

13.
Selective de-esterification of 1′,2:4,6-di-O-isopropylidenesucrose tetra-acetate2 (1) with methanolic ammonia at ?10° gave an inseparable mixture (2+3) of the 3,4′,6′- and 3,3′,6′-triacetates and also the 4,6′-diacetate 4. When the reaction was performed at 5°, it gave 4, the 4-acetate 8, and the parent diacetal 9. These derivatives allow selective reaction at hydroxyl groups in sucrose, in particular at HO-3′ and, HO-4′, not hitherto possible. Mesylation of 4 gave the 3′,4′-dimesylate 7, which, on treatment with aqueous acetic acid followed by acetylation, afforded 3′,4′-di-O-mesylsucrose hexa-acetate (11). Treatment of 11 with sodium methoxide in methanol at 70° for 1 min gave the ribo-3′,4′-epoxide 12 as the minor, and the lyxo-3′,4′-epoxide 13 as the major, product. Selective tosylation of 4 gave the 3',4'-ditosylate 14 (3.7%), 4′-tosylate 15 (3.1%), and 3'-tosylate 16 (31%), indicating the order of reactivity HO-3′>HO-4′ in 4. De acetalation of 15 and 16 followed by acetylation gave the hepta-acetates of 4′- and 3′-O-tosylsucrose, respectively, which were converted into the respective epoxides, 13 and 12, by methanolic sodium methoxide.  相似文献   

14.
The cytotoxic activity of two series of platinum(II) complexes containing the polyfunctional imines R1–CHN–R2 [R1 = phenyl or ferrocenyl unit and R2 = (CH2)n–CH2–NMe2 where n = 1 or 2) (1 and 2) or C6H4-2-SMe (3)] acting as a bidentate (N,N′) (47) or terdentate [C(phenyl or ferrocenyl),N,N′]? (810) or [C(ferrocenyl),N,S]? ligand (11) in front of A549 lung, MDA-MB231 breast and HCT116 colon human adenocarcinoma cell lines is reported. The results reveal that most of the platinum(II) complexes are active against the three assayed lines and compounds 6, 7 and the platinacycles 10 and 11 exhibit a remarkable antiproliferative activity, even greater than cisplatin itself, in the cisplatin resistant HCT116 human cancer cell line. Electrophoretic DNA migration studies showed that most of them modify the DNA tertiary structure in a similar way as the reference cisplatin. Solution studies of a selection of the most relevant complexes have also been performed in order to test: (a) their stability in the aqueous biological medium and/or the formation of biologically active species and (b) their proclivity to react with 9-methylguanine (9-MeG), as a model nucleobase. Computational studies at DFT level have also been performed in order to explain the different solution behaviour of the complexes and their proclivity to react with the nucleobase.  相似文献   

15.
The present study was undertaken to gain insight into the associations of mercury(II) with dicysteinyl tripeptides in buffered media at pH 7.4. We investigated the effects of increasing the distance between cysteinyl residues on mercury(II) associations and complex formations. The peptide–mercury(II) formation constants and their associated thermodynamic parameters in 3-(N-morpholino)propanesulfonic acid (MOPS) buffered solutions were evaluated by isothermal titration calorimetry. Complexes formed in different relative ratios of mercury(II) to cysteinyl peptides in ammonium formate buffered solutions were characterized by LTQ Orbitrap mass spectrometry. The results from these studies show that n-alkyl dicysteinyl peptides (CP 14), and an aryl dicysteinyl peptide (CP 5) can serve as effective “double anchors” to accommodate the coordination sites of mercury(II) to form predominantly one-to-one Hg(peptide) complexes. The aryl dicysteinyl peptide (CP 5) also forms the two-to-two Hg2(peptide)2 complex. In the presence of excess peptide, Hg(peptide)2 complexes are also detected. Notably, increasing the distance between the ligating groups or “anchor points” in CP 15 does not significantly affect their affinity for mercury(II). However, the enthalpy change (ΔH) values (ΔH1  −91 kJ mol−1 and ΔH2  −66 kJ mol−1) for complex formation between CP 4 and 5 with mercury(II) are about one and a half times larger than the related values for CP 1, 2 and 3H1  −66 kJ mol−1 and ΔH2  46 kJ mol−1). The corresponding entropy change (ΔS) values (ΔS1  −129 J K−1 mol−1 and ΔS2  −116 J K−1 mol−1) of the structurally larger dicysteinyl peptides CP 4 and 5 are less entropically favorable than for CP 1, 2 and 3S1  −48 J K−1 mol−1 and ΔS2  −44 J K−1 mol−1). Generally, these associations result in a decrease in entropy, indicating that these peptide–mercury complexes potentially form highly ordered structures. The results from this study show that dicysteinyl tripeptides are effective in binding mercury(II) and they are promising motifs for the design of multi-cysteinyl peptides for binding more than one mercury(II) ion per peptide.  相似文献   

16.
《Inorganica chimica acta》1986,114(2):151-158
CoX2(NO)(PMe3)2 complexes (X = Cl, Br, I, NO2) exhibit markedly different ν(NO) stretching frequencies and different geometries. The structure of CoI2(NO)(PMe3)2 (1) and CoCl2(NO)(PMe3)2 (2) have been determined by X-ray diffraction. Both crystallize in the orthorhombic system, Pnma space group with four molecules in a cell of the following dimensions: for 1, a = 10.497(2), b = 10.694(2), c = 13.975(2) Å, ν= 1568.8, Å3; for 2, a = 9.607(2), b = 10.689(2), c = 13.512(3) Å, ν= 1387.5 Å3. The structures were refined to conventional R values of R = 0.040 from 1630 reflections for 1 and R = 0.033 from 976 reflections for 2. In both cases, the coordination geometry about the five-coordinate cobalt atom is approximately trigonal bipyramidal, with the NO group sharing the equatorial positions with the halide ligands. Structure 2 is disordered, which prevents any precise structural characterization. In (1), the CoNO angle is 179.2(19)° and the Co NO distance is 1.728(23) Å; v(NO) is 1753 cm−1. CoCl2(NO)(PMe3)3 shows a v(NO) vibration at 1637 cm−1. Co(NO2)2(NO)(PMe3)2 with v(NO) = 1658 cm−1 has been proposed as a square pyramidal structure with a bent apical CoNO. These differences in NO stretching frequencies and geometries are discussed.  相似文献   

17.
《Inorganica chimica acta》1987,128(2):161-167
The complexes (Bu4N)[TcO(O2C6H4)2] (1) and Na[TcO(OCH2CH2O)2] (2) have been prepared by reacting TcOCl4- with respective diols in methanol. Compound 2 was identified by its elemental analysis and field desorption mass spectrum. Crystals of compound 1 are monoclinic, C2/c, with cell dimensions a = 10.393(3), b = 13.835(3), c = 20.643(5) Å, β = 101.74(3)° and four formula units in the unit cell. The crystal structure was determined by standard methods and refined to R1 = 0.0694, R2 = 0.0613, on the basis of 2887 independent reflections. The data were collected with use of Mo Kα radiation and a Syntex P21 diffractometer. The anion of 1 is square pyramidal with a short TcO(oxo) bond (1.648(5) Å). TcO distances to the diolate groups are longer (1.956(3), 1.958(3) Å). The technetium atom lies 0.7014(4) Å out of the plane of the four diolate oxygen atoms. Compound 2 is hydrolytically unstable in pure water, but can be stabilized by the addition of a several-fold molar excess of ethylene glycol. Compound 1 decomposes minimally in pure water after 24 h. These complexes are shown to be good structural models for 99mTc-radiopharmaceuticals containing purely oxygen-donor ligands. Comparison of the physical properties of the structurally characterized members of the series of complexes with core structures TcOSxO(4-x) (x = O, 2, 4) shows a shift to low energy in the frequency of the terminal oxygen-technetium band in the IR correlated with increasing softness of the basal plane donor atom set.  相似文献   

18.
The crystal structure of the complex Λ-β2-[Co(R,R-picchxn)(pro-2H)]Cl·ClO4·H2O (I) where R,R-picchxn is N,N′-bis(2-picolyl)-1R,2R-diaminocyclohexane and pro-2H is the 1,2-dehydroprolinate anion) has been determined. The complex crystallises in the orthorhombic space group P212121, with a = 8.063(5),b = 15.320(9),c = 21.043(11)Å and Z and 4. The structure was refined by full-matrix least-squares methods to R = 0.049 for 2501 non-zero reflexions. The coordinated dehydroproline iminoacid is closely planar, and the structure suggest that the CN double bond would be equally accessible to a reacting species approaching from either side of the ring.The crystal structure of the two products obtained after hydrogenation of I,i.e. Λ-β2-[Co(R,R-picchxn)(R-pro)](ClO4)2 (II) and Λ-β2-[CoR,R-picchxn)(S-pro)](ClO4)2·H2O (III), have also been determined by similar means. ComplexII is monoclinic, space group P21 with a = 9.385(3),b = 15.066(5),c = 1.4925(7)Å, β = 110.79°,Z = 2, and was refined to R = 0.029 for 2650 non-zero reflexions. Crystals of III are trigonal, space group P3221 with a = 11.417(2),c = 38.586(7)Å,Z = 6, and was refine to R = 0.039 for 2686 non-zero reflexions.The molecular geometry of the CoIII(R,R-picchxn) fragment is essentially the same in each structure. However, upon hydrogenation of I the iminoacid CN bond increases by 0.22Åin conjunction with the expected lack of planarity of the aminoacid pyrolidine and chelate rings. Short non-bonded H⋯H contacts that are produced in the hydrogenation productsII and III suggest thatIII would be the more sterically hindered. Comparisons are made between these structures and those of models computed for Λ-β1-pro analogues.  相似文献   

19.
The configuration at the C-3 quaternary carbon atoms in two pairs (1 and 2, 3 and 4) of 3-C-hydroxymethyl, branched-chain, 1,2:4,6-diacetalated aldohexo-pyranoses have been determined from their 13 C-n.m.r. spectra. The stereochemical assignments were achieved by comparison of the spectra with those of the Z (13) and E isomers (14) of 4-tert-butyl-l-hydroxymethylcyclohexanol and with those of the corresponding diacetalated gluco- and allo-pyranoses (5, 6, 9, and 10). The spectra of 13 and 14 showed that an axial hydroxyl group shielded the α, β, and μ ring carbon atoms more than an axial hydroxymethyl group and that the carbon atom in the latter group was shielded relative to that in an equatorial hydroxymethyl group The spectra of 5, 6, 9, and 10 indicated the effect of an axial HO-3 on the shifts of the carbon atoms in the 1,2-O-alkylidene groups. The stereochemistry of an isomeric pair of 1,2:4,6-di-O-alkylidene-3-C-methyl-aldohexopyranoses (11 and 12) has also been determined.  相似文献   

20.
Accurate and precise estimates of nitrogen (N) excretion in faeces and urine of dairy cattle may provide direct tools to improve N management and thus, to mitigate environmental pollution from dairy production. Empirical equations of N excretion have been evaluated for indoor dairy cattle but there is no evaluation for cows fed high proportions of fresh forage. Therefore, the objective of the current study was to evaluate N excretion equations with a unique data set of zero-grazing experiments. Through literature searches, 89 predictive equations were identified from 13 studies. An independent data set was developed from seven zero-grazing experiments with, in total, 55 dairy Holstein-Friesian cows. Models’ performance was evaluated with statistics derived from a mixed-effect model and a simple regression analysis model. Squared sample correlation coefficients were used as indicators of precision and based on either the best linear unbiased predictions (R2BLUP) or model-predicted estimates (R2MDP) derived from the mixed model and simple regression analysis, respectively. The slope (β0), the intercept (β1) and the root mean square prediction error (RMSPEm%) were calculated with the mixed-effect model and used to assess accuracy. The root mean square prediction error (RMSPEsr%) and the decomposition of the mean square prediction error were calculated with the simple regression analysis and were used to estimate the error due to central tendency (mean bias), regression (systematic bias), and random variation. Concordance correlation coefficient (CCC) were also calculated with the simple regression analysis model and were used to simultaneously assess accuracy and precision. Considering both analysis models, results suggested that urinary N excretion (UN; R2MDP = 0.76, R2BLUP = 0.89, RMSPEm% = 17.2, CCC = 0.82), total manure N excretion (ManN; R2MDP = 0.83, R2BLUP = 0.90, RMSPEm% = 11.0, CCC = 0.84) and N apparently digested (NAD; R2MDP = 0.97, R2BLUP = 0.97, RMSPEm% = 5.3, CCC = 0.95) were closely related to N intake. Milk N secretion was better predicted using milk yield as a single independent variable (MilkN; R2MDP = 0.77, R2BLUP = 0.97, RMSPEm% = 6.0, CCC = 0.74). Additionally, DM intake was a good predictor of UN and ManN and dietary CP concentration of UN and ManN. Consequently, results suggest that several evaluated empirical equations can be used to make accurate and precise predictions concerning N excretion from dairy cows being fed on fresh forage.  相似文献   

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