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Genes coding for membrane proteins make up 25%-30% of the genome in most organisms. Membrane proteins play an important role in cell functioning and their importance is enhanced by the fact that a large number of drugs are targeted at membrane proteins. Paradoxically, experimentally determined structures of membrane protein correspond to only about 1.7% of protein structures deposited in the protein data bank (PDB). This is largely due to the fact that membrane proteins are difficult to deal with owing to their amphipathic nature. The low abundance of membrane proteins in native tissue makes heterologous overexpression of these genes a necessity. This thesis work aimed at heterologous production of several secondary active transporter proteins for structural and functional characterizations and establishing alternative strategies to overcome the obstacles associated with heterologous overproduction. Four members of the heavy metal transporting cation diffusion facilitator (CDF) family from S. typhimurium and A. aeolicus were heterologously overproduced in E. coli and functionally characterized by an in vivo complementation assay using the zinc transport deficient E. coli GG48 strain. Out of these four, Aq_2073 from A. aeolicus was produced in large scale with substantial yield and purity sufficient to carry out structural studies. After extensive stability studies with different detergents, pHs and temperatures, the protein was subjected to 3D and 2D crystallization trials. Several C- terminal truncated constructs were made and the simultaneous crystallization screenings were carried out. These resulted in initial needle like crystals in 3D crystallization trials or optimum sized vesicles with crystalline patches in 2D crystallization trials but no obvious crystal. The protein showed significant increase in melting temperature in the presence of cadmium, when tested by differential scanning calorimetry. Another transporter, STM3880 of the potassium uptake permease (KUP) family from S. typhimurium, was heterologously overproduced in E. coli, purified by affinity chromatography, reconstituted into artificial liposome and functionally characterized by solid supported membrane based electrophysiology. In order to establish alternative expression strategies, continuous exchange cell free expression (CECF) of proteins from four different families was carried out. This method found to be aptly complementing the cell-based production approach. Targets from resistance to homoserine/threonine (RhtB) family not expressing in vivo could be expressed and purified using CECF. STM1781 of the sulfate permease (SulP) family was expressed, purified and characterized for stability while the cell-based production resulted in extensive degradation. PF0780 of multidrug/oligosaccharidyllipid/polysaccharide flippase (MOP) family was also purified to homogeneity and the stability was comparable to in vivo produced protein. Moreover, the effect of maltose binding protein (MBP) fusion at N-terminus on production and membrane integration was tested with three selected targets. The analysis revealed decreased yields in the presence of MBP if the protein had both termini in the cytoplasm. This work succeed in heterologously overproducing and establishing purification protocols for several secondary active transporters aiming at structural and functional characterization in a structural genomics framework. It also showed that integration of alternative strategies, like employing both cell-based and cell-free heterologous expression systems, expands the overall expression space coverage and in turn increases the chance of success of a structural genomics styled project.
The glycine receptor (GlyR) is the major inhibitory neurotransmitter receptor in spinal cord and brainstem. Heteropentameric GlyRs are clustered and anchored at inhibitory postsynaptic sites by the binding of the large intracellular loop between transmembrane domains 3 and 4 of the GlyRbeta subunit (GlyRbeta-loop) to the cytoplasmic scaffolding protein gephyrin. GlyRs are also cotransported with gephyrin along microtubules in the anterograde and retrograde direction due to the binding of gephyrin to microtubule-associated motor proteins. Additionally, GlyRs undergo lateral diffusion in the plasma membrane from extrasynaptic to synaptic sites and vice versa. Since its discovery, gephyrin has remained for many years the only binding partner interacting directly with the GlyRbeta subunit. In an attempt to elucidate further mechanisms involved in GlyR function and regulation at inhibitory postsynaptic sites, a proteomic screen for putative binding partners to the GlyRbeta loop was performed. Three proteins were identified as putative interactors. In this thesis, the interaction between these putative binding proteins and the GlyRbeta subunit was analyzed and characterized. Binding studies with glutathione-S-transferase fusion proteins revealed that all putative binding proteins, Syndapin (Sdp), Vacuolar Protein Sorting 35 (Vps35) and Neurobeachin (Nbea), interact specifically with the GlyRbeta loop. The Sdp family of proteins are F-BAR and SH3 domain containing proteins. Inmmunocytochemical experiments showed that SdpI as well as the isoforms SdpII-S and SdpIIL colocalize with the full-length GlyRbeta subunit in a mammalian cell expression system. In cultured spinal cord neurons, a partial colocalization of endogenous SdpI with several excitatory and inhibitory synaptic markers was demonstrated. Mapping experiments using deletion mutants narrowed the SdpI binding site down to 22 amino acids. Peptide competition experiments confirmed the specificity of the interaction between SdpI and this sequence of the GlyRbeta subunit. Point mutation analysis revealed a SH3-proline rich domain dependent interaction between SdpI and the GlyRbeta subunit, respectively. In addition, binding studies in mammalian cells showed that both splice variants of SdpII as well as SdpI interact with the GlyR scaffolding protein gephyrin. Although the SdpI and gephyrin binding sites do not overlap, protein competition studies revealed that interaction of the E-domain of gephyrin with the GlyRbeta loop interferes with SdpI binding. Since SdpI is a dynamin binding protein involved in vesicle endocytosis and recycling pathways, a possible function of SdpI in the regulation of GlyR synaptic distribution was investigated. Co-immunoprecipitation experiments confirmed a SdpI-GlyR association in the vesicle-enriched fraction of rat spinal cord tissue. Immunocytochemical studies of SdpI knock out mice showed that the clustering and distribution of GlyRs in the brain stem is unchanged. However, acute down-regulation of SdpI in rat spinal cord neurons by viral shRNA expression led to a reduction in the number and size of GlyR clusters, an effect that could be rescued upon shRNA-resistant SdpI overexpression. Further immunocytochemical analysis of the localization of gephyrin, the gamma2 subunit of the type A gamma-aminobutyric acid receptor (GABAARgamma2 subunit) and the vesicular inhibitory amino acid transporter (VIAAT) under SdpI knock-down conditions showed that both the number and average size of the gamma2-subunit containing GABAA receptor clusters were significantly reduced in spinal cord neurons. In contrast to GlyR and GABAARgamma2 immunoreactivity, the number and average size of gephyrin and VIAAT clusters were barely reduced upon SdpI downregulation. These results suggest that SdpI has a role in GlyR trafficking that can be compensated by other syndapin isoforms or other trafficking pathways. Furthermore, SdpI might be required for the clusters of GlyRs and gamma2-subunit containing GABAARs in spinal cord and brainstem. Vps35 is the core protein of the retromer complex, which mediates the endosome to Golgi apparatus retrieval of different types of receptors in mammals and yeast. Here, protein-protein interaction assays revealed for the first time that Vps35 interacts directly with the GlyRbeta loop as well as with gephyrin. The generation of specific Vps35 antibodies allowed to determine the distribution of this protein in the central nervous system. Immunocytochemical analyses revealed the presence of Vps35 in the somata and neurites of spinal cord neurons, suggesting a possible interaction of Vps35 with the GlyR under physiological conditions. Nbea is a BEACH domain containing, neuron-specific protein. Binding studies revealed a direct interaction between two regions of Nbea and the GlyRbeta loop. Immunocytochemical experiments confirmed a somatic and synaptic distribution of Nbea in primary cultures. In spinal cord neurons, a partial colocalization of Nbea with excitatory and inhibitory synaptic markers suggests a possible interaction of Nbea with the GlyR at inhibitory synaptic sites.
ABCB9 is a peptide transporter belonging to the ATP-binding cassette (ABC) transporter subfamily B. Due to its high sequence identity to the transporter associated with antigen processing (TAP) the protein was named TAP-like (TAPL). The primary aim of this PhD thesis was the functional characterization of the TAPL transport complex. Despite the lack of TAPL function in the classical MHC class I pathway an involvement of TAPL in antigen presentation was still suggested. Apart from the crucial role of TAP for peptide delivery into the ER, TAP-independent translocation pathways in professional antigen presenting cells (pAPC) have been proposed, but not identified so far. Remarkably, TAPL mRNA and protein expression is strongly induced during differentiation of monocytes to immature and mature dendritic cells. This result was confirmed in the promonocytic cell line THP-1, which was used as a model system for monocyte to macrophage differentiation. By using quantitative immunofluorescence microscopy and subcellular fractionation, TAPL was detected in the lysosomal compartment co-localizing with the lysosome associated membrane protein 2 (LAMP-2) thus excluding the ER-localization formerly reported. Furthermore, by in vitro assays, a TAPL-specific and ATPdependent translocation of peptides into isolated lysosomes was demonstrated. Hence, TAPL is a candidate mediating peptide transport in alternative antigen presentation pathways in pAPCs. The presence of an extra N-terminal transmembrane domain (TMD0) lacking sequence homology to any known protein distinguishes TAPL from most other ABC transporters of its subfamily. By dissecting the TAPL translocation complex into its four putative transmembrane helices containing TMD0 and the core complex, distinct functions to the core complex and TMD0 were assigned. The core-TAPL complex composed of six predicted transmembrane helices and the nucleotide-binding domain (NBD) was expressed transiently in HeLa or stably in Raji cells. Crude membranes containing core-TAPL showed the same peptide transport activity as wt-TAPL demonstrating that the six core helices and the NBD are sufficient for peptide transport. This result also shows that the core transport complex is correctly targeted to and assembled in the membrane. Strikingly, in contrast to the wt transporter, the core complex localizes only partially to lysosomes and is mistargeted to the plasma membrane as observed by immunofluorescence microscopy and confirmed biochemically by cell surface biotinylation. Thus, a crucial role for TMD0 in proper subcellular targeting can be postulated. The vast majority of biological processes are mediated by protein complexes, hence characterization of such protein-protein-interactions is essential for understanding protein function on the cellular level. To identify interaction partners of TAPL, the transporter was isolated by tandem affinity purification. By tandem mass spectrometry the membrane proteins LAMP-1 and LAMP-2 were deciphered as specific proteins interacting with wt-TAPL. Notably, core-TAPL lacks these interactions indicating a role for TMD0 in recruiting other proteins. These results were verified for endogenous TAPL by co-immunoprecipitation. Using cells deficient in LAMP-1 and/or in LAMP-2 an escort function for the LAMP proteins was excluded. Very importantly, the physiological function of the LAMP-1and LAMP-2 interaction with TAPL is an increase in stability, since in their absence half-life of TAPL is drastically reduced.
Das extrem thermophile Eubakterium Thermus thermophilus ist in den letzten Jahren zu einem Modell für thermophile Organismen geworden und verdankt seinen Statuszum Teil seiner hohe Wachstumsrate, den guten Zellerträgen und der konstitutivenExpression eines natürlichen Kompetenzapparates, der seine genetische Manipulation ermöglicht. Die Verfügbarkeit von kompatiblen Plasmiden und bis zu vier thermostabilen Antibiotikaresistenzmarkern konnten den Wert des Organismus in Hinblick auf biotechnologische Anwendungen noch weiter steigern und tatsächlich besteht nach wie vor ein ungebrochenes Interesse an der Struktur- und Funktionsaufklärung thermophiler Proteine. Der Focus der hier vorliegenden Arbeit richtete sich auf eine der insgesamt zwei terminalen Oxidasen der Atmungskette von T. thermophilus, die Cytochrom ba3 Oxidase. Es wurden verschiedene rekombinante Varianten des Proteins, die sich hinsichtlich der Position und Länge des verwendeten Histidin-Tags unterschieden, kloniert, exprimiert und aufgereinigt. Das Einfügen eines internen His12-Tags in einen periplasmatischen Loop zwischen den Transmembranhelices IV und V führte zu einer rekombinanten Version der Oxidase, die in ihren Eigenschaften dem nativen Wildtyp entsprach und sich durch die in dieser Arbeit etablierte Aufreinigungsstrategie relativ schnell, in guten Ausbeuten und hoher Reinheit aufreinigen ließ. Weiterhin konnten verschiedene Punktmutationen von möglicherweise am Elektronentransfer beteiligten Aminosäureresten generiert und die resultierenden Proteine aufgereinigt und über ihre enzymatische Aktivität charakterisiert werden. Eine weiterführende Charakterisierung der Mutanten erfolgte im Rahmen einer Kooperation und ist bisher noch nicht abgeschlossen. Das Herzstück dieser Arbeit machte jedoch die Definition der Transkriptionseinheit der Cytochrom ba3 Oxidase und die sich daraus ergebenden Fragestellungen aus. So konnte gezeigt werden, dass das ba3 Operon zusätzlich zu den Strukturgenen der dort kodierten Untereinheiten noch mindestens ein, höchst wahrscheinlich jedoch zwei zusätzliche Gene enthält: cbaX und cbaY. Bioinformatische Charakterisierungen ordneten CbaY der diversen Gruppe von sekundären Transportern zu, und es konnte experimentell gezeigt werden, dass seine Anwesenheit für die Expression der Cytochrom ba3 Oxidase förderlich ist. CbaX hingegen konnte über die durchgeführte Homologiesuche keine Funktion zugeordnet werden; uncharakterisierte Homologe waren einzig in der Thermaceae Gruppe zu finden. Durch Deletions- und Komplementationsstudien konnte dem Protein eine entscheidende Rolle in der Assemblierung der ba3 Oxidase bescheinigt werden. CbaX scheint eine zentrale Aufgabe bei der Häm a Insertion in Untereinheit I zu spielen und könnte, ohne Sequenzhomologie aufzuweisen, die Rolle des Surf1-Proteins übernehmen, welches in den sequenzierten Organismen der Thermaceae Gruppe nicht konserviert ist. Die homologe Expression und Aufreinigung von CbaX führte nicht zur erwarteten Ausbeute und Reinheit des Proteins, konnte aber durch immunologische Experimente eine potentielle Interaktion von CbaX und der Cytochrom ba3 Oxidase nachweisen.
The display of foreign polypeptides and proteins on the surface of viruses or cells provides an important tool for the engineering of biomolecules and the analysis of their interactions with binding partners. The most extensively used display platform is the coat protein of the filamentous bacteriophage (Smith, 1985). Phage display libraries have often been selected for polypeptides, e.g. single chain (sc) antibodies that bind to a protein of interest, but in vivo selection could only be demonstrated for peptides so far. An alternative display platform is the retrovirus murine leukemia virus (MLV). Here, polypeptides are displayed at the N-terminus of the viral envelope glycoprotein. Proof of principle for this platform was demonstrated for protease substrate libraries, which can be selected through coupling proteolytic activation with viral infectivity (Buchholz et al., 1998). Selection of the library CX4A on living cells resulted in viruses with more than three orders of magnitude improved spreading efficiency through tumor cells (Hartl et al., 2005). Also scAb libraries have recently been displayed and selected using retroviruses (Urban et al., 2005). The library scFvlibxMo displays the repertoire of phage display preselected sc antibodies for laminin-1 binding. The retrovirus based selection process resulted in laminin-specific sc antibodies with improved expression levels in mammalian cells.
This thesis describes the in vivo (i.e. in mouse tumor models) selection of the C-X4-A and scFvlibxMo for tumor homing upon systemic delivery.
For selection of the protease substrate library C-X4-A a subcutaneous tumor was induced in SCID mice followed by three systemic injections of the library. The selection process was monitored over a period of 34 days. After the incubation period mice were sacrificed and virus load in organs and tumor determined. PCR analysis after 34 days showed that virus from the library had preferentially infected the tumor. Sequence analysis showed the selection of protease substrates with the most prominent one with a frequency of over 65%. The four most prominent protease substrate variants where reconstituted into the original viral backbone for further investigation (C-SK-A, C-HI-A, C-HM-A and C-HS-A). Interestingly, these viruses exhibited a reduced spreading capacity in vitro on HT1080 cells as compared to the C-AK-A virus, which had previously been selected on HT1080 cells. When assayed for tumor homing, however, viruses C-HI-A and C-HS-A had clearly improved in comparison to C-AK-A. Tumor tissue had been infected at rates of over 55% while virus load of extratumoral organs was very low (infection rates <0.7 for C-HS-A and <0.02 for C-HI-A). Tumor targeting capacity had thus been improved over 10-fold by the in vivo selection of the C-X4-A library.
The experimental set up for the in vivo selection of the scFvlibxMo library was performed according to that of the C-X4-A library. Fingerprint analysis of the selected viruses that infected tumor tissue resulted in the identification of seven antibody variants showing unique CDR3 sequences. Two prominent clones (M49T-A and M49T-B) were cloned back into the MoMLV genome for further analysis of the reconstituted viruses. While variant B bound laminin-1 efficiently, variant A was unable to do so, although it was selected at highest frequency (76%). Both reconstituted viruses were equally well infectious and spread through HT1080rec1 cells at a similar efficiency as MoMLV. In an in vivo competition experiment the selected viruses clearly out-competed a laminin-1 binding reference virus L36xMo for tumor homing. To understand the molecular driving forces behind the in vivo selection process the epitope of the selected scFv M49T-A was identified using a phage peptide library approach. In silico analysis led to the identification of a small group of possible antigens, including tenascin, fibronectin and collagen.
The data described in this thesis demonstrate that the retrovirus display platform is capable of allowing the in vivo selection of protease substrates and scFvs. Notably, the replication competence of the system introduced an additional level of complexity to the library. The performed in vivo selections significantly enhanced tumor tropism. Selective infection of tumor cells combined with transfer of anti-tumoral genes is an attractive strategy for cancer therapy being in focus of current research. The viruses selected in this thesis build prime candidates for targeted retrovirus based tumor therapy.
Um Materie mit Nanometergenauigkeit anzuordnen, ist Selbstorganisation die mächtigste Strategie. DNA (Desoxyribonukleinsäure) ist hierfür ein hervorragendes Baumaterial, da sie ein billiges, programmierbares, biokompatibles und gut verstandenes Polymer ist. Aus diesen Gründen ist DNA zur Basis für ein schnell wachsendes Gebiet geworden: die DNA-Nanotechnologie. Das Ziel dieser Arbeit war es, neue Interaktionsmöglichkeiten für die DNA-Nanotechnologie zu entwickeln und neuartige Strukturen aus DNA-minicircles aufzubauen, einem bislang vernachlässigten Konstruktionselement. ...
The nicotinamide-adenine-dinucleotide (NADH):ubiquinone oxidoreductase (complex I) from the strictly aerobic yeast Y. lipolytica contains at least 26 “accessory” subunits however the significance of most of them remains unknown. The aim of this study was to characterize the role of three accessory subunits of complex I, recently identified: two mitochondrial acyl carrier proteins, ACPM1 and ACPM2 and a sulfurtransferase (st1) subunit. ACPMs are small (approx. 10 kDa) acidic proteins that are homologous to the corresponding central components of prokaryotic fatty acid synthase complexes. Genomic deletions of the two genes ACPM1 and ACPM2 resulted in strains that were not viable or retained only trace amounts of assembled mitochondrial complex I, respectively, as assessed using two-dimensional blue native/sodium dodecyl sulfate polyacrylamide gel electrophoresis (BN/SDS) PAGE. This suggested different functions for the two proteins that despite high similarity could not be complemented by the respective other homolog still expressed in the deletion strains. To test whether complex I was affected by deletion of the ACPM2 gene, its activities in mitochondrial membranes were measured. Consequently, specific inhibitor sensitive dNADH: decylubiquinone (DBQ) oxidoreductase activity was lost completely and a strong decrease in dNADH: hexa-ammine-ruthenium (HAR) oxidoreductase activity was measured. Remarkably, the same phenotypes were observed if just the conserved serine carrying the phosphopantethein moiety was exchanged with alanine. Although this suggested a functional link to the lipid metabolism of mitochondria, using HPLC chromatography no changes in the lipid composition of the organelles were found. Proteomic analysis revealed that both ACPMs were tightly bound to purified mitochondrial complex I. Western blot analysis revealed that the affinity tagged ACPM1 and ACPM2 proteins were exclusively detectable in mitochondrial membranes but not in the mitochondrial matrix as reported for other organisms. Hence it has been concluded that the ACPMs can serve all their possible functions in mitochondrial lipid metabolism and complex I assembly and stabilization as subunits bound to complex I. A protein exhibiting rhodanese (thiosulfate:cyanide sulfurtransferase) activity was found to be associated with homogenous preparation of complex I. From a rhodanese deletion strain, functional complex I that lacked the additional protein but was fully assembled and displayed no functional defects or changes in EPR signature was purified. In contrast to previous suggestions, this indicated that the sulfurtransferase associated with Y. lipolytica complex I is not required for assembly of its iron–sulfur clusters.
Poster presentation at 5th German Conference on Cheminformatics: 23. CIC-Workshop Goslar, Germany. 8-10 November 2009 We demonstrate the theoretical and practical application of modern kernel-based machine learning methods to ligand-based virtual screening by successful prospective screening for novel agonists of the peroxisome proliferator-activated receptor gamma (PPARgamma) [1]. PPARgamma is a nuclear receptor involved in lipid and glucose metabolism, and related to type-2 diabetes and dyslipidemia. Applied methods included a graph kernel designed for molecular similarity analysis [2], kernel principle component analysis [3], multiple kernel learning [4], and, Gaussian process regression [5]. In the machine learning approach to ligand-based virtual screening, one uses the similarity principle [6] to identify potentially active compounds based on their similarity to known reference ligands. Kernel-based machine learning [7] uses the "kernel trick", a systematic approach to the derivation of non-linear versions of linear algorithms like separating hyperplanes and regression. Prerequisites for kernel learning are similarity measures with the mathematical property of positive semidefiniteness (kernels). The iterative similarity optimal assignment graph kernel (ISOAK) [2] is defined directly on the annotated structure graph, and was designed specifically for the comparison of small molecules. In our virtual screening study, its use improved results, e.g., in principle component analysis-based visualization and Gaussian process regression. Following a thorough retrospective validation using a data set of 176 published PPARgamma agonists [8], we screened a vendor library for novel agonists. Subsequent testing of 15 compounds in a cell-based transactivation assay [9] yielded four active compounds. The most interesting hit, a natural product derivative with cyclobutane scaffold, is a full selective PPARgamma agonist (EC50 = 10 ± 0.2 microM, inactive on PPARalpha and PPARbeta/delta at 10 microM). We demonstrate how the interplay of several modern kernel-based machine learning approaches can successfully improve ligand-based virtual screening results.
Die Röntgenstrukturanalyse ist eine der wichtigsten analytischen Methoden zur Bestimmung der Kristallstrukturen und zur Aufklärung von Struktur-Eigenschaftsbeziehungen. Voraussetzung für eine Röntgenstrukturanalyse ist ein Einkristall mit einer Größe von ca. 1-10 mikro m. Jedoch gibt es eine Vielzahl an Verbindungen, bei denen es aufgrund ihrer geringen Löslichkeit nicht gelingt, hinreichend große Kristalle zu erzeugen. In dieser Arbeit konnte aufgezeigt werden, dass die Kristallstrukturen solcher schwerlöslichen Verbindungen aus Röntgenpulverdaten bestimmt werden können. Organische Pigmente haben eine geringe Löslichkeit. Sie werden daher im Anwendungsmedium nicht gelöst, sondern fein dispergiert. Die Teilchengrößen liegen typischerweise im Bereich von 50-500 nm. Bedingt durch die Schwerlöslichkeit lassen sich nur selten Einkristalle züchten. Jedoch kann die Kristallinität häufig durch Lösungsmittelbehandlung verbessert werden. Dies ermöglicht die Strukturbestimmung aus den Röntgenpulverdaten. Die untersuchten organischen Pigmente haben allesamt ungewöhnliche Eigenschaften: So zeigen beispielsweise Pigment Yellow 101 und einige seiner Derivate sowie einige mesoionischen Pigmente Fluoreszenz im Festkörper. Die Fluoreszenz-Eigenschaften dieser Verbindungen waren bisher nur begrenzt verstanden. In dieser Arbeit konnten sieben Kristallstrukturen von festkörperfluoreszenten Pigmenten bestimmt und so ein Beitrag zum Verständnis der Festkörper-Fluoreszenz geleistet werden. Pigment Yellow 183 und Pigment Yellow 191 sind gelbe verlackte Azopigmente, die großtechnisch zur Einfärbung von Kunststoffen verwendet werden. Hier konnten erstmals Einkristalle erhalten werden, und drei Kristallstrukturen bestimmt werden. Alle drei Kristallstrukturen weisen ungewöhnliche Strukturmerkmale auf: eine der beiden Sulfonatgruppen koordiniert nicht an das Ca2+-Ion oder an ein Lösungsmittelmolekül, sondern bildet nur intermolekulare van der Waals-Wechselwirkungen. Wodurch elektrostatisch ungünstige Separation von Kation (Ca2+) und Anion (RSO3-) verursacht wird, bleibt unklar. Die Benzimidazolon-Pigmente sind industriell sehr wichtige Azo-Pigmente mit exzellenter Lichtstabilität und hervorragender thermischer Stabilität. Im Rahmen dieser Arbeit gelang es erstmals, Einkristalle eines Solvates eines kommerziellen Benzimidazolon-Pigmentes zu züchten und die Struktur durch Röntgenstrukturanalyse zu bestimmen. Bei zwei weiteren kommerziellen Benzimidazolon-Pigmenten wurden die Kristallstrukturen aus Röntgenpulverdiagrammen bestimmt, wobei die Strukturlösung mit simulated-annealing-Methoden (Programm DASH) erfolgte. Das Pigment Yellow 213 ist ein neu entwickeltes Pigment für Wasserbasislacke, welches sich durch seine hohe Lichtechtheit auszeichnet. Mithilfe der Kristallstruktur konnten Eigenschaften dieser Verbindungen erklärt werden. Alle kommerziellen Azo-Pigmente liegen im Festkörper nicht in der Azoform, sondern in der hydrazon-tautomeren Form vor. Die Pigmente sind daher, streng genommen, keine Azo-Pigmente, sondern Hydrazon-Pigmente. Es gibt jedoch Ausnahmen: Für zwei p-dialkylamino-substitutierte Azopigmente auf beta-Naphthol-Basis konnte durch Einkristallstrukturanalysen aufgezeigt werden, dass die Azoform im Festkörper überwiegt. Es handelt sich hierbei also um den seltenen Fall „wirklicher Azo-Pigmente“. Die in dieser Arbeit untersuchten Verbindungen Bis-(acetoacetyl)-p-phenylen-diamin (DAEP) und 5-(Acetoacetylamino)benzimidazolon sind Vorprodukte für die Synthesen verschiedener industrieller Azo-Pigmente. Bei beiden Verbindungen gelang es, die Kristallstrukturen aus Röntgenpulverdiagrammen zu lösen. Die Orientierung der endständigen -COCH3-Gruppen lässt sich allerdings nicht mit Sicherheit feststellen (weil ein O-Atom fast die gleiche Streukraft besitzt wie eine CH3-Gruppe). Die Pulverstrukturlösungen wurden daher mit Gitterenergieberechnungen mittels dispersion-korrigierten Dichtefunktionalrechnungen kombiniert. Derartige dispersions-korrigierte DFT-Rechnungen im Festkörper könnten zukünftig auch in anderen Fällen zur Validierung von Kristallstrukturen, die aus Röntgenpulverdaten bestimmt wurden, dienen. Die Verbindungen Omeprazol, Rasagilin und Risedronat sind pharmazeutische Wirkstoffe. An verschiedenen Salzen dieser pharmazeutischen Wirkstoffe wurden Polymorphieuntersuchungen durchgeführt. Dabei wurden für Omeprazol vier, für Rasagilin eine und für Risedronat vier neue Phasen gefunden. Zudem konnten für Rasagilin und Omeprazol jeweils eine und für Risedronat drei Kristallstrukturen bestimmt werden, die es erlauben Eigenschaften wie außergewöhnliche Feuchtigkeitsbeständigkeit oder Bioverfügbarkeiten zu erklären. Für Risedronat wurde ein bisher unbekanntes Solvat gefunden (Essigsäure Disolvat), das patentiert wurde. Auch hier konnte die Kristallstruktur aufgeklärt werden. In dieser Arbeit wird aufzeigt, dass es bei schwerlöslichen Pigmenten, deren Vorprodukten sowie von pharmazeutischen Wirkstoffen in etlichen Fällen möglich ist, Einkristalle zu züchten (wenn auch mit großem Aufwand), sodass man die Kristallstrukturen durch Röntgenstrukturanalyse ermitteln kann. Für die Verbindungen, bei denen keine hinreichend großen Einkristalle erhalten werden konnten, gelang es in den meisten Fällen, die Kristallstrukturen aus Röntgenpulverdiagrammen zu bestimmen, und anschließend Struktur-Eigenschaftsbeziehungen abzuleiten.