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Zur Reaktion von [(η3-C4H7)PdCl]2 mit Se(SiMe3)2. Die Kristallstruktur von [(η3-C4H7)6Pd6Se3]
(1988)
[(η3-C4H7)PdCl]2 reacts with Se(SiMe3)2 to form [(η3-C4H7)6Pd6Se3] (1). 1 has been characterized by X-ray crystal structure analysis. It contains a distorted trigonal prismatic Pd6-cluster. Three faces of the Pd-prism are occupied by μ4-Se ligands. 1 crystallizes in the space group Pnma with 4 formula units per unit cell. The lattice constants at 200 K are: a = 1175.1(8), b = 1611.4(12), c = 1720.3(12) pm.
The N,N'-bis(trimethylsilyl)benzamidinato complexes [C6H5 -C(NSiMe3)2MCl3]2(M = Ti. Zr) have been prepared by the reactions of N,N,N'-tris(trimethylsilyl)benzamidine [C6H5-C(NSiMe3)N(SiMe3)2] with titanium tetrachloride, and zirconium tetrachloride, respec-tively. The compounds form moisture sensitive, dark red (Ti) and white (Zr) crystals, which were characterized by crystal structure determinations. [C6H5-C(NSiMe3)2TiCl3]2 : space group P21/rc. Z = 2, 4373 observed independent reflexions, R = 0.034. Lattice dimensions (-90 °C): a - 959.0(8); b = 1196.5(8); c = 1770.9(11) pm; β = 93.79(4)°. [C6H5-C(NSiMe3)2ZrCl3]2 : space group P21/n. Z = 2, 3160 observed independent reflexions, R = 0.031. Lattice dimensions (-90 °C): a = 971.6(7); b = 1222.2(9); c = 1792.9(10) pm; β = 93.51(5)°.
Both complexes crystallize isotypically, forming centrosymmetric dimeric molecules via chloro bridges with bond lengths of 242.0 and 253.8 pm (Ti), and of 253.7 and 264.9 pm (Zr). The metal atoms complete their distorted octahedral surroundings with two chlorine ligands and the nitrogen atoms of the chelating amidinato ligand. The N atoms of the amidinato group are in equatorial and axial positions. This accounts for the different metal-nitrogen bond lengths of 207 pm (ax) and 199 pm (eq) in the titanium compound and 219 pm (ax) and 214 pm (eq) in the zirconium complex.
W2NCl7 has been prepared by the reaction of tungsten pentachloride with the bromide of Millon's base, [Hg2N]Br, in boiling CCl4. The product forms a dark brown, moisture sensitive crystal powder (μeff = 0.7 B.M. at 21 °C). With phosphoryl chloride, the complex W2NCl7·2 POCl3 is formed. The reaction with chlorine leads to the mixed-valenced W(V)/W(VI) complex W2NCl8 (μeff = 0.5 B.M. at 22 °C), which reacts with tetraphenylphosphonium chloride in CH2Cl2 to form (PPh4)2[W2NCl10] ·2CH2Cl2. The reactions of W2NCl7 with PPh4Cl in molar ratios in CH2Cl2 solution lead to several complexes; one of them was identified bv X-ray diffraction methods to be (PPh4)2[W3Cl9(μ3-N)(0)(μ2-NCl)]2 ·1,5 CH2Cl2, which forms black crystals. The compound crystallizes monoclinically in the space group P21/n with two formula units per unit cell (7318 observed, independent reflexions, R = 0.083). The lattice dimensions are (20 °C): a = 994.4; b = 2673; c = 1518.2 pm; β = 101.00°. The compound consists of PPh4⊕ cations and centrosymmetric anions [W3Cl9(μ3-N)(O)(μ2-NCl)]22⊕. The tungsten atoms form a scalene triangle with WW bond lengths of 282 and 278 pm, respectively. The hypothenuse of this triangle is a nearly linear W - N -W bridge with WN distances of 199 and 182 pm. One of the WW edges is bridged by a μ-NCI group with WN bond lengths of 196 und 189 pm. respectively.
Kristallstruktur von 1,1-Dichlor-3,5-diphenyl-4-H-1,2,4,6-λ4-selenatriazin, SeCl2C2N3H(C6H5)2
(1989)
The title compound has been prepared as a byproduct of the reaction of Se2Cl2 with Ν,Ν,N′-Tris(trimethylsilyl)benzamidine in CH2Cl2 solution. [SeCl2(HNC2N2Ph2)]2 was characterized by an X-ray structure determination. Space group P21/n, Z = 2, 2979 observed independent reflexions, R = 0.032. Lattice dimensions (-65 °C): a = 1050.1(4), b = 1018.9(4), c = 1402.1(6) pm; β = 99.78(3)°. The compound forms centrosymmetric dimeric molecules with SeCl2Se bridges (bond lengths 241.6(1) and 339.3(1) pm), the selenium atoms being members of nearly planar [xxx] selenatriazine rings with Se—N bond lengths of 182.2(2) and 181.5(2) pm.
The title compound has been prepared by the reaction of N-trimethylsilyl-iminotriphenylphos-phorane with copper(II) chloride in boiling CCl4 /C2H5OH, and forms moisture sensitive crystals, which are green in transmittance and black in reflexion. [Me3SiNPPh3 · CuCl2 ] 2 was characterized by its IR spectrum as well as by a crystal structure determination (4197 observed, independent reflexions, R = 0.049). The lattice dimensions are at 20 °C: a = 1102.7. b = 1407.3. c = 1560.2 pm; β = 94.27°; space group P21/n with two formula units in the unit cell. The complex consists of centrosymmetric, dimeric molecules with a planar Cu2 Cl2 ring (Cu-CI bond lengths 229 and 231 pm). A terminally bonded CI atom (Cu-CI = 221 pm) and the N atom of the Me3SiNPPh3 ligand (Cu-N = 198.5 pm) complete the coordination number four of the nearly planar surroundings of the Cu atoms.
Cp2TiSe5 has been prepared by the reaction of trim ethyltetradecylammonium-polyselenide with Cp2TiCl2 in ethanol solution and subsequent extraction of the dry residue with dichloromethane. Cp2TiSe5 crystallizes in the space group P1 with two formula units in the unit cell (2559 observed, independent reflexions, R = 0.074). The cell dimensions are a = 808.6, b = 822.6, c = 1190.7 pm, α - 96.28°, β - 106.06°, γ = 108.78°. The structure consists of discrete Cp2TiSe5 molecules with the TiSe5, ring in the chair conformation.
An optochemokine tandem was developed to control the release of calcium from endosomes into the cytosol by light and to analyze the internalization kinetics of G-protein coupled receptors (GPCRs) by electrophysiology. A previously constructed rhodopsin tandem was re-engineered to combine the light-gated Ca2+-permeable cation channel Channelrhodopsin-2(L132C), CatCh, with the chemokine receptor CXCR4 in a functional tandem protein tCXCR4/CatCh. The GPCR was used as a shuttle protein to displace CatCh from the plasma membrane into intracellular areas. As shown by patch-clamp measurements and confocal laser scanning microscopy, heterologously expressed tCXCR4/CatCh was internalized via the endocytic SDF1/CXCR4 signaling pathway. The kinetics of internalization could be followed electrophysiologically via the amplitude of the CatCh signal. The light-induced release of Ca2+ by tandem endosomes into the cytosol via CatCh was visualized using the Ca2+-sensitive dyes rhod2 and rhod2-AM showing an increase of intracellular Ca2+ in response to light.
Channelrhodopsin-2, or ChR2, is a light-gated inward rectifying cation channel. Ever since its first characterisation (Nagel et al., 2003), it has been used extensively in the light-activated control of neural cells in culture as well as in living animals like mice, Caenorhabditis elegans and Drosophila melanagaster. Despite its broad application in the field of neuroscience, little is known about the properties of this ion channel. The aim of this thesis is to elucidate the single channel conductance under different conditions using stationary noise analysis on whole cell recordings of a HEK293 cell line that stably expresses the truncated ChR2 (amino acids 1-315), which behaves identically to the full length protein (Nagel et al., 2003). Stationary noise analysis is based on the fact that the ion channel noise due their opening and closing has a characteristic form of a plateau at low frequency points and a following decrease of power with 1/f² in difference power spectra, which are composed of the difference of fast Fourier transformed (FFT) stationary whole-cell recordings with and without illumination. From the parameters yielded by an approximation of the power spectra with a Lorentzian function the single channel conductance can be estimated. The single channel conductance of ChR2 was determined at -60 mV applied for different cations, yielding values of 91 ± 25 fS (Guanidine+), 42 ± 7 fS (Na+), 61 ± 18 fS (Li+) and 37 ± 14 fS (Methylammonium+). With 200 mM Guanidine+ outside of the cells and measurements between 0 mV and -60 mV applied, it could be shown that the inward rectification is still present on the scale of the single channel. Noise Analysis with concentrations between 40 and 200 mM Guanidine+ showed a saturation of the single channel conductance with high Guanidine+ concentrations with a maximal conduction of 129 ± 9 fS (Michaelis Menten approximation: Km = 82 ± 14 mM). Activation Energies of the rate constants k (2πfc, with fc = corner frequency of the Lorentzian function) and koff (1/τoff, with τoff = closing time of the channel at -60 mV) were determined to be 75 ± 23 kJ/mol and 64 ± 11 kJ/mol, respectively, which are similar to the value determined for the Channelrhodopsin-1 closing times (~60 kJ/mol; Nagel et al., 2002). The activation energy of the ChR2 single channel conductance was determined to be 21.2 ± 20.8 kJ/mol, which also is similar to the activation energy of the ChR1 current amplitude (20 kJ/mol; Nagel et al., 2002). The amount of active ChR2 channels in the membrane (160,000 or 226 ChR2/μm²) as well as the single channel current (-7.5 ± 0.6 fA) could be determined by variation of the light intensity (0.05 mW mm-2 to 5.3 mW mm-2). In the course of this thesis, the single channel parameters of the ChR2 mutant H134R were also determined. H134R had been previously published as a “gainof- function” mutant (Nagel et al., 2005a). The increased macroscopic current amplitude of H134R could be explained by an increased lifetime of the channel in comparison to the wildtype ChR2. Within the margin of error both single channel conductances in the presence of 200 mM Guanidine+ of the wildtype (91.1 ± 24.9 fS) and the H134R (89.4 ± 30.7 fS) are the same. In the presence of 200 mM Lithium+ values of 60.6 ± 17.8 fS for the wildtype ChR2 and 50.8 ± 9.6 fS for the H134R mutant were determined. This thesis marks the first in depth analysis of the single channel conductance of ChR2. Using stationary noise analysis the single channel conductance of Channelrhodopsin-1 as well as interesting Channelrhodopsin-2 mutants can also be analysed in the future.
On the molecular basis of novel anti-inflammatory compounds and functional leukocyte responses
(2006)
Inflammation is a complex pathophysiological event that can be triggered by activation of a number of distinct activation pathways eventually leading to the release of pro-inflammatory molecules and enzymes. Among all cells involved in inflammatory processes, neutrophils, monocytes and platelets are of major relevance. Activation of leukocytes occurs via binding of agonists to distinct GPCRs leading to activation of G proteins and proximate signaling cascades. In short, GPCR activation by pro-inflammatory agonists such as fMLP, PAF or LTB4 leads to activation of G proteins that are associated with the receptor at the cytosolic side of the plasma membrane. G proteins consist of a Gα- and a Gβγ-subunit which are associated in the inactive state. In this state, G proteins bind GDP. Upon activation, GDP is replaced by GTP that results in the dissociation of the Gα- from the Gβγ-subunit. Both subunits are capable of activating distinct PLC-β isoenzymes that catalyze the turnover of PtdIns(4,5)P2 into the second messengers Ins(1,4,5)P3 and DAG. Every GPCR holds a distinct pattern of associated G proteins which preferentially activate distinct PLC-β isoenzymes. Ca2+ channels within the SR/ER-membrane function as specific receptors for Ins(1,4,5)P3. Ligation of Ins(1,4,5)P3 to this receptor causes a release of Ca2+ from intracellular stores into the cytosol that is subsequently followed by the influx of Ca2+ e through channels in the plasma membrane. Ca2+ represents an important signaling molecule, involved in the regulation of cellular processes and enzymes that mediate inflammatory events such as ROS formation and the release of degradative enzymes. 5-LO and COXs are involved in the biosynthesis of pro-inflammatory eicosanoids and catalyze the turnover of AA into LTs and PGs, respectively. Both enzymes play pivotal roles in the initiation and maintenance of allergic diseases and inflammatory processes. LTB4 is regarded as a potent chemotactic and chemokinetic substance, whereas the cysteinyl-LTs cause smooth muscle contraction and increased vascular permeability. Therefore, 5-LO inhibitors are assumed to possess therapeutic potential for the treatment of diseases related to inflammation. Besides the intervention with 5-LO activity, inhibition of COX-activity is an effective way to suppress inflammatory reactions. The two COX isoenzymes, namely COX-1 and COX-2 show different patterns in terms of tissue expression and sensitivity towards inhibitors. COX-1 is supposed to be constantly expressed whereas COX-2 expression is upregulated at sites of inflammation. The extract of H. perforatum is commonly used for the treatment of mild to moderate depressive disorders, accompanied by a moderate profile of side effects. The extract´s efficacy as an antidepressant can be traced back to the content of the phloroglucinol hyperforin which represents the most abundant lipophilic constituent. However, in folk medicine hypericum extracts are additionally used for the treatment of inflammatory disorders such as rheumatoid arthritis or inflammatory skin diseases. In fact, it was shown that hypericum extracts and hyperforin possess anti-inflammatory potential. Hyperforin was described as a dual inhibitor of 5-LO and COX-1. The phloroglucinols MC and S-MC from M. communis significantly differ from the molecular structure of hyperforin. Hyperforin represents a monomeric prenylated derivative whereas MS and S-MC are non-prenylated oligomeric compounds. To date, the anti-inflammatory potential of SM and S-MC has not been investigated in detail. So far, solely antioxidant activity was attributed to MC and S-MC that indeed might qualify them as anti-inflammatory drugs. The phloroglucinols MC, S-MC and hyperforin are potent inhibitors of ROS formation and HLE release. However, any inhibitory potential of these compounds was only observed when cells were activated by GPCR agonists such as fMLP or PAF. In contrast, when cells were stimulated under circumvention of G protein-associated signaling cascades, the abovementioned inhibitors were not effective at all. In leukocytes, [Ca2+]i plays a pivotal role in signal transduction and regulation of the indicated pro-inflammatory cellular functions. We were able to show that MC, S-MC and hyperforin inhibited GPCR-mediated Ca2+ mobilization with approximately the same potency as the above-mentioned leukocyte responses. However, all of the indicated phloroglucinols were ineffective when cells were stimulated with ionomycin. Since ionomycin as well as GPCR agonists exert their effects by mobilizing Ca2+ i, it seems conceivable that MC, S-MC and hyperforin somehow interfere with G protein-associated signaling pathways. In order to investigate PLC as a potential target of hyperforin, the effects of hyperforin were compared to those of the broad spectrum PLC inhibitor U-73122. We found that both inhibitors acted in a comparable manner in terms of agonist-induced Ca2+ mobilization and in regard of the manipulation of basal Ca2+ levels in unstimulated cells. In this respect, significant differences between hyperforin and U-73122 were obvious for inhibition of total PLC activity in vitro. Thus, U-73122 blocked PLC activity whereas hyperforin was ineffective in this respect. This might indicate that only certain PLC isoenzymes are affected by hyperforin. Alternatively, other components within G protein-associated signaling pathways such as G proteins itself or the Ins(1,4,5)P3 receptor must be taken into account as putative targets of hyperforin. We were able to introduce MC and S-MC as novel dual inhibitors of 5-LO and COX-1. Interestingly, such a pattern was also described for hyperforin. MC and S-MC turned out to be direct inhibitors of 5-LO, based on the fact that they inhibit 5-LO not only in intact cells but also as purified enzyme in vitro. For MC and S-MC, great discrepancies were observed between the IC50 values concerning 5-LO inhibition and the concentrations that exert the antioxidative effects. It seems probable that 5-LO inhibition is not related to reduction of the active site iron as a result of the antioxidant activity of MC and S-MC but rather to direct interference with the 5-LO enzyme. The capability of MC and S-MC to suppress COX-1 activity seems not to be a unique effect of these phloroglucinols because for COX-1, the IBPC, present in both MC and S-MC, turned out to be the most active compound. ....