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From a biopharmaceutical point of view, poor oral bioavailability of a drug is one of the greatest challenges for formulation scientists. The majority of new chemical entities (NCEs) are weakly basic drugs. Consequently, these drugs exhibit pH-dependent solubility, being higher under acidic conditions in the fasted stomach and lower under neutral conditions in the small intestine, the main site of drug absorption. For theses compounds, pH-dependent precipitation testing represents a key parameter during early development stages. In this development phase, the amount of drug available is limited, and fast and detailed investigations of simulated drug solubility are desired. Therefore, an automated small-scale in vitro transfer model, simulating drug transfer from a donor (stomach; simulated gastric fluid, SGF pH 2.0) to an acceptor (small intestine; fasted state simulated intestinal fluid, FaSSIF-phosphate pH 6.5) compartment, has been developed. In contrast to the originally published transfer model, this model allowed a detailed investigation of drug supersaturation and precipitation in a small-scale, feasible for pre-formulation purposes, through miniaturization and automation in an in-line analytical set-up. In-line drug concentration analysis in turbid samples, due to pH-dependent drug precipitation, was achieved by a pre-filtration step, the use of flow-through cuvettes and the application of UV derivative spectroscopy. Compared to the common procedure of manual sampling followed by HPLC-UV analysis for concentration determination, the supersaturation and precipitation of the model drug ketoconazole was more accurately captured by the newly developed in-line analytical set-up. In addition, the newly developed small-scale model was compared to a USP II-based transfer model, representing an established scale of the transfer model. Using a physiologically relevant simulated gastric emptying rate of 5 min half-time, supersaturation and precipitation of the model drugs ketoconazole and a new chemical entity from the research laboratories of Merck Healthcare KGaA, MSC-A, were observed to be highly comparable. Following miniaturization and automation, the developed small-scale model was used to establish eight physiologically relevant test-sets. These test-sets were used to assess the impact of gastrointestinal (GI) variability, i.e. gastric pH, gastric emptying, and GI fluid volumes, on supersaturation and precipitation of two weakly basic model compounds, ketoconazole and MSC-A. The experiments revealed that variations in all GI parameters investigated affected the in vitro supersaturation and precipitation of ketoconazole. For example, faster gastric emptying yielded higher supersaturation and faster precipitation of ketoconazole. In contrast, MSC-A supersaturation and precipitation was only affected by variability in gastric pH. Consequently, the effect of varying GI parameters was found to be drug-specific. Elevated gastric pH, as it can result from co-medication with acid-reducing drugs, resulted in lower degrees of supersaturation for both substances. For ketoconazole, this result is in agreement with the observation that the oral bioavailability of ketoconazole is lowered when proton pump inhibitors are co-administered. In addition to the physiological considerations, the small-scale model developed herein was used to establish an in vitro screening assay for precipitation inhibitors (PIs). The use of PIs represents one option of reducing the process of pH-dependent drug precipitation during simulated GI transfer. For this purpose, ketoconazole and five orally administered kinase inhibitors (i.e. pazopanib, gefitinib, lapatinib, vemurafenib, and MSC-A) were analyzed with and without the polymeric PIs HPMC, HPMCAS, PVPK17 and K30, PEG6000, and Soluplus® in the small-scale transfer model. This screening revealed that at least one effective PI could be identified for each model drug. Moreover, HPMCAS and Soluplus® were the most effective PIs. Another outcome of these studies was that gefitinib expressed highly variable amorphous precipitation which was confirmed by powder X-ray diffraction (PXRD). During the transfer model experiments, the intermediate amorphous and supersaturated state of gefitinib was stabilized using HPMCAS and Soluplus®. After the polymer investigations, the impact of the buffer species in the simulated intestinal medium on drug supersaturation and precipitation was assessed. Since luminal fluids are mainly buffered by hydrogen carbonate ions, a USP II-based transfer model equipped with the pHysio-grad® device was proposed. This allowed the use of a complex bicarbonate buffer for the preparation of FaSSIF-bicarbonate in an in vitro transfer model. Results of transfer model experiments using standard phosphate-based FaSSIF and a more physiologically relevant bicarbonate-based FaSSIF were compared. Therefore, ketoconazole, pazopanib, and lapatinib were analyzed with and without the precipitation inhibitor HPMCAS. While HPMCAS was found to be an effective precipitation inhibitor for all drugs in FaSSIF-phosphate, the effect in FaSSIF-bicarbonate was much less pronounced. Additionally, performed rat PK studies revealed that HPMCAS did not increase the exposure of any of the model compounds significantly, indicating that the transfer model employing bicarbonate-buffered FaSSIF was more predictive compared to the model using phosphate-buffered FaSSIF. The in vitro and in vivo results of these studies demonstrated that the supersaturation precipitation of poorly soluble weakly basic drugs can be significantly affected by GI variability. Furthermore, the use of the automated small-scale transfer model enabled the identification of effective precipitation inhibitors for the model drugs involved in these studies. At the same time the buffer species has been observed to be especially important to reliably predict the in vivo solubility/dissolution behavior of HPMCAS and the weakly basic model drugs.
This thesis contains results from transcriptome studies on different aspects of host-pathogen interactions. First, liver gene expression profiles from a murine chronic stress model served to elucidate aspects of the influence of stress on metabolism and immune response state. Chronic stress in female BALB/c mice was shown to lead to a hypermetabolic syndrome including induction of gluconeogenesis, hypercholesteremia, and loss of essential amino acids, to the induction of the acute phase response, but also of immune suppressive pathways and to the repression of hepatic antigen presentation. Increased leukocyte trafficking, increased oxidative stress together with counter-regulatory gene expression changes, and an induction of apoptosis were detected. The influence of intra-venous infection on the host kidney gene expression was analyzed in another murine model using the wild type strain Staphylococcus aureus RN1HG and its isogenic sigB mutant. Gene expression profiling indicated a highly reproducible host kidney response to infection. The comparison of infected with non-infected samples revealed a strong inflammatory reaction of kidney tissue, e. g. Toll-like receptor signaling, complement system, antigen presentation, interferon and IL-6 signaling. However, the results of this study did not provide any hints for differences in the pathomechanism of the S. aureus strains RN1HG and ΔsigB, since the host response did not differ between infections with the two strains analyzed. Effects of SigB might be transient, only apparent at earlier time points, or might also be compensated for in the in vivo infection by the interlaced pattern of other regulators. SigB might possess only to a lesser extent characteristics attributed to virulence factors and might act in vivo more like a virulence modulator and fine tune bacterial reactions. In addition to the analysis of tissue samples, different in vitro models were furthermore studied. The third part of this thesis focuses on bone-marrow derived macrophages (BMM) of the two mouse strains BALB/c and C57BL/6, which are described in literature to exhibit genetically determined differences in their reaction to infection. Expression profiling was performed on control and IFN-γ treated samples from a serum-free cultivation system and revealed mainly induction of gene expression after treatment of BMM with IFN-γ. Gene expression changes confirmed known IFN-γ effects like induction of immunoproteasome, antigen presentation, interferon signaling related genes, GTPase/GBPs, and inducible NO synthase. IFN-γ dependent gene expression changes were highly similar in BALB/c and C57BL/6 BMM. Considering gene expression differences between BMM of both strains, a similar expression trend was visible on the level of untreated controls as well as after IFN-γ treatment. Differentially expressed genes between BMM of both strains included immune-relevant genes as well as genes linked to cell death, but the coverage of functional groups was limited. The bronchial epithelial cell line S9 was used as an in vitro model system for the infection with S. aureus RN1HG. The fourth chapter in this thesis includes S9 cell gene expression signatures 2.5 h and 6.5 h after start of infection. At the early time point, only 40 genes were differentially expressed, which nevertheless indicated a beginning pro-inflammatory response, e. g. induction of cytokines (IL-6, IFN-β, LIF) or prostaglandin-endoperoxide synthase 2 (PTGS2), but also counter-regulatory processes, e. g. induction of CD274. The host cell response was dramatically aggravated at the later 6.5 h time point. Differential expression was detected for 1196 genes. These included induced cytokines, pattern recognition receptor signaling, antigen presentation, and genes involved in immune defense (e. g. GBPs, MX, APOL). Negative effects on growth and proliferation were even more enhanced in comparison to the early time point, and signs for apoptotic processes were revealed. Finally, the last chapter addresses amongst others the pathogen’s expression profile in the S9 cell in vitro infection model at the two time points 2.5 h and 6.5 h after start of infection by tiling array gene expression analysis. The pathogen expression profiling revealed the activity of the SaeRS two-component system in internalized staphylococci. Partly dependent on SaeRS, the induction of adhesins (e. g. fnbAB, clfAB), toxins (hlgBC, lukDE, hla), and immune evasion genes (e. g. chp, eap) was observed. Furthermore, expression changes of metabolic genes were recorded (gene induction of amino acid biosynthesis, TCA cycle, gluconeogenesis; gene repression of glycolysis, purine biosynthesis, tRNA synthetases). Expression analysis recorded a distinct bacterial expression program, which supported literature results of a specific, bacterial strain and host cell line dependent transcriptional adaptation of the pathogen.
Staphylococcus aureus is a commensal colonizing 20-30% of the population as well as a pathogen causing diverse diseases ranging from skin infections via toxin mediated diseases to life threatening conditions. In its interplay with the human host, this microorganism resorts to an extensive repertoire of both membrane-bound and secreted virulence factors facilitating adhesion to, invasion of, and spreading into various host tissues. Among the numerous virulence factors produced by S. aureus are the staphylococcal superantigens (SAgs). They directly cross-link conserved regions of the T cell-receptor with MHC class II molecules (outside the peptide-binding cleft) on antigen presenting cells. This results in a strong stimulation of up to 20% of all T cells which respond with proliferation and massive cytokine release. Recently, the enterotoxin gene cluster (egc) located on a pathogenicity island was described. The egc-genes are the most prevalent SAg genes in commensal and invasive S. aureus isolates. However, they appear to cause toxic shock only very rarely and their presence is negatively correlated with severity of S. aureus sepsis. Therefore it was suggested that SAgs might differ in their pro-inflammatory potential. In addition to their superantigenicity, SAgs also act as conventional antigens and induce a specific antibody response. In contrast to non-egc SAgs, despite the high prevalence of egc SAgs, neutralizing antibodies against egc SAgs are very rare, even among carriers of egc-positive S. aureus strains. In order to find an explanation for this “egc-gap”, we have tested two non-exclusive hypotheses: (i) egc and non-egc SAgs have unique intrinsic properties and drive the immune response into different directions and (ii) egc and non-egc SAgs are released by S. aureus under different conditions, which shape the immune response to them. To test these hypotheses, we compared the effects of egc and non-egc SAgs on human blood cells. Their T cell-mitogenic potencies, the elicited cytokine profiles as well as their impact on gene expression were highly similar. Both egc and non-egc SAgs induced a very strong pro-inflammatory response. In contrast, the regulation of SAg release by S. aureus differed markedly between egc and non-egc SAgs. Egc-encoded proteins were secreted by S. aureus during exponential growth, while non-egc SAgs were released in the stationary phase. We conclude that the distinct biological behavior of egc and non-egc SAgs is not due to their intrinsic properties, which are very similar, but is caused by their differential release by S. aureus. Traditionally, S. aureus has not been considered as an intracellular pathogen but strong evidence emerged indicating that staphylococci can invade and persist in various cell types. Internalization might constitute a bacterial strategy to evade the host’s defense reactions and the action of antibiotics. The intracellular niche might thus constitute a reservoir for chronic or relapsing infections. Contrary to their potential importance, genome-wide functional genomics analyses of the adaptation reactions of S. aureus to the host cell environment are rare and so far confined to gene expression profiling. Investigations addressing the proteome of internalized S. aureus are still lacking due to the challenge of obtaining a sufficient number of infecting bacteria. The proteome of other pathogens such as Francisella tularensis has been characterized by classical 2-DE approaches. However, the number of bacteria required for such a 2-DE based approach is often exceeding the numbers available from in vivo infection models. Furthermore, this approach does not allow monitoring of time-dependent quantitative changes in protein levels. Here, a workflow allowing time-resolved analysis of internalized S. aureus by combining pulse-chase stable isotope labeling by amino acids in cell culture with high capacity cell sorting, on-membrane digestion, and high-sensitivity mass spectrometry is presented. This workflow permits detection and quantitative monitoring of several hundred staphylococcal proteins from as little as a few million internalized S. aureus cells. This approach has been used to reveal time-resolved changes in levels of proteins in S. aureus RN1HG upon internalization by human bronchial epithelial cells. Proteins involved in stress adaptation as well as protein folding and some components of the phosphotransferase system were upregulated in internalized staphylococci, whereas proteins of the purine biosynthesis pathway and tRNA aminoacylation were downregulated. Furthermore, regulatory adaptive responses of internalized S. aureus to the intracellular milieu were shown as global regulators displayed increased protein abundance levels compared to non-internalized bacteria. Taken together, we observed changes in levels of proteins with functions in protection against oxidative damage and adaptation of cell wall synthesis in internalized S. aureus.