2 resultados para Structure Z c (3900)

em CaltechTHESIS


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<p>Part I</p> <p>Potassium bis-(tricyanovinyl) amine, K<sup>+</sup>N[C(CN)=C(CN)<sub>2</sub>]<sub>2</sub><sup>-</sup>, crystallizes in the monoclinic system with the space group Cc and lattice constants, a = 13.346 ± 0.003 Ã, c = 8.992 ± 0.003 Ã, B = 114.42 ± 0.02°, and Z = 4. Three dimensional intensity data were collected by layers perpendicular to b* and c* axes. The crystal structure was refined by the least squares method with anisotropic temperature factor to an R value of 0.064. </p> <p>The average carbon-carbon and carbon-nitrogen bond distances in âC-CΞN are 1.441 ± 0.016 à and 1.146 ± 0.014 à respectively. The bis-(tricyanovinyl) amine anion is approximately planar. The coordination number of the potassium ion is eight with bond distances from 2.890 à to 3.408 Ã. The bond angle C-N-C of the amine nitrogen is 132.4 ± 1.9°. Among six cyano groups in the molecule, two of them are bent by what appear to be significant amounts (5.0° and 7.2°). The remaining four are linear within the experimental error. The bending can probably be explained by molecular packing forces in the crystals.</p> <p>Part II</p> <p>The nuclear magnetic resonance of <sup>81</sup>Br and <sup>127</sup>I in aqueous solutions were studied. The cation-halide ion interactions were studied by studying the effect of the Li<sup>+</sup>, Na<sup>+</sup>, K<sup>+</sup>, Mg<sup>++</sup>, Cs<sup>+</sup> upon the line width of the halide ions. The solvent-halide ion interactions were studied by studying the effects of methanol, acetonitrile, and acetone upon the line width of <sup>81</sup>Br and <sup>127</sup>I in the aqueous solutions. It was found that the viscosity plays a very important role upon the halide ions line width. There is no specific cation-halide ion interaction for those ions such as Mg<sup>++</sup>, Di<sup>+</sup>, Na<sup>+</sup>, and K<sup>+</sup>, whereas the Cs<sup>+</sup> - halide ion interaction is strong. The effect of organic solvents upon the halide ion line width in aqueous solutions is in the order acetone ˃ acetonitrile ˃ methanol. It is suggested that halide ions do form some stable complex with the solvent molecules and the reason Cs<sup>+</sup> can replace one of the ligands in the solvent-halide ion complex.</p> <p>Part III</p> <p>An unusually large isotope effect on the bridge hydrogen chemical shift of the enol form of pentanedione-2, 4(acetylacetone) and 3-methylpentanedione-2, 4 has been observed. An attempt has been made to interpret this effect. It is suggested from the deuterium isotope effect studies, temperature dependence of the bridge hydrogen chemical shift studies, IR studies in the OH, OD, and C=O stretch regions, and the HMO calculations, that there may probably be two structures for the enol form of acetylacetone. The difference between these two structures arises mainly from the electronic structure of the Ï-system. The relative population of these two structures at various temperatures for normal acetylacetone and at room temperature for the deuterated acetylacetone were calculated. </p>

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<p><u>I. The 3.7 à Crystal Structure of Horse Heart Ferricytochrome C. </u></p> <p>The crystal structure of horse heart ferricytochrome c has been determined to a resolution of 3.7 à using the multiple isomorphous replacement technique. Two isomorphous derivatives were used in the analysis, leading to a map with a mean figure of merit of 0.458. The quality of the resulting map was extremely high, even though the derivative data did not appear to be of high quality. </p> <p>Although it was impossible to fit the known amino acid sequence to the calculated structure in an unambiguous way, many important features of the molecule could still be determined from the 3.7 à electron density map. Among these was the fact that cytochrome c contains little or no α-helix. The polypeptide chain appears to be wound about the heme group in such a way as to form a loosely packed hydrophobic core in the molecule. </p> <p>The heme group is located in a cleft on the molecule with one edge exposed to the solvent. The fifth coordinating ligand is His 18 and the sixth coordinating ligand is probably neither His 26 nor His 33. </p> <p>The high resolution analysis of cytochrome c is now in progress and should be completed within the next year. </p> <p><u>II. The Application of the Karle-Hauptman Tangent Formula to Protein Phasing.</u> </p> <p>The Karle-Hauptman tangent formula has been shown to be applicable to the refinement of previously determined protein phases. Tests were made with both the cytochrome c data from Part I and a theoretical structure based on the myoglobin molecule. The refinement process was found to be highly dependent upon the manner in which the tangent formula was applied. Iterative procedures did not work well, at least at low resolution. </p> <p>The tangent formula worked very well in selecting the true phase from the two possible phase choices resulting from a single isomorphous replacement phase analysis. The only restriction on this application is that the heavy atoms form a non-centric cluster in the unit cell. </p> <p>Pages 156 through 284 in this Thesis consist of previously published papers relating to the above two sections. References to these papers can be found on page 155. </p>