@phdthesis{Sawatzky2016, author = {Sawatzky, Edgar}, title = {Design und Synthese selektiver Butyrylcholinesterase (BChE) Inhibitoren zur Entwicklung von Radiopharmazeutika zur Erforschung der Alzheimer Erkrankung}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-144037}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {Although the physiological roles of BChE are not yet determined to date, the importance of this enzyme is continuously increasing as it was found to be associated with several disorders like diabetes mellitus type 2, cardiovascular diseases, obesity and especially with Alzheimer's disease (AD). In consequence, for investigations of BChE's pathological role in these diseases and to find new medication strategies, the development of selective and potent inhibitors is necessary. For this purpose, the current work progresses in five chapters on the exploration of the chemical, physical and biochemical properties of tetrahydroquinazoline based carbamates which were previously reported to be selective BChE inhibitors with potency in the low nanomolar range. 1) A Novel Way to Radiolabel Human Butyrylcholinesterase for PET through Irreversible Transfer of the Radiolabeled Moiety: PET-radiotracers represent an innovative tool to determine the distribution and the expression of a biological target in vivo. BChE lacks to a large degree of such tracers with a few exceptions. In this work, methods were developed to incorporate the radioisotopes 11C and 18F into the carbamate moiety of an tetrahydroquinazoline based inhibitor. In contrast to reversibly acting PET-probes, the described radiotracers were proven by kinetic studies to transfer the radioisotope covalently onto the active site of BChE, thus labeling the enzyme directly and permanently. 2) Discovery of Highly Selective and Nanomolar Carbamate-Based Butyrylcholinesterase Inhibitors by Rational Investigation into Their Inhibition Mode: To investigate the role of the tetrahydroquinazoline carrier scaffold on BChE inhibition, carbamate based inhibitors were synthesized. These compounds were successively used to perform kinetic investigations to determine their inhibition mode. Based on these data, a plausible binding model was postulated explaining the influence of the tetrahydroquinazoline carrier scaffold for binding at BChE's active site just before carbamate transfer takes place. Additionally, these compounds feature neuroprotective properties and prevent oxidative stress induced cell death in their carbamate form as well as after the release of the tetrahydroquinazoline carrier scaffold. 3) Dual Addressing of Butyrylcholinesterase by Targeting the Catalytic Active Site (CAS) and the Peripheral Anionic Site (PAS): Compounds which are dual-targeting the CAS and the PAS of BChE are the most potent and selective BChE inhibitors to date with inhibition values in the picomolar range. In this work, a strategy is described how to turn tetrahydroquinazoline based carbamates into dual binding BChE inhibitors. These inhibitors feature a carbamate moiety which is covalently transferred onto the CAS of BChE, and in addition provide a second pharmacophore connected via a linker to the carbamate moiety which is proposed to target the PAS. Preliminary results reveal a high tolerance of BChE towards different linker lengths without decrease in affinity. 4) Investigation into Selective Debenzylation and Ring Cleavage of Quinazoline based Heterocycles: The tetrahydroquinazoline system is well investigated in terms of its synthesis and its selective oxidation. To explore the reactivity of this system, a tetracyclic tetrahydroquinazoline was exposed to common reduction agents. These experiments revealed a high sensitivity of the tetrahydroquinazoline core towards several reduction conditions 5) Experimental and Theoretical Investigation into the Stability of Cyclic Aminals: Tetrahydroquinazolines are known to degrade in acidic media through hydrolysis of their aminal system; but literature is lacking of a systematic investigation into this behavior. Therefore, different tetrahydroquinazolines were synthesized and exposed to phosphate buffered systems with defined pH-values. A clear increase of the hydrolysis rate of the aminal system was determined in dependency of an increasing acidic media. Computational studies predicted and experimental studies proved that hydrolysis takes place in an acidic environment while the condensation of this system is preferred in neutral or basic aqueous media.}, subject = {Cholinesterase}, language = {en} } @phdthesis{Kesetovic2016, author = {Kesetovic, Diana}, title = {Synthesis and biological testing of potential anti-tuberculosis drugs targeting the β-ketoacyl ACP synthase}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-131301}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {With 9.6 million new cases and 1.5 million deaths in 2014, tuberculosis (TB) is alongside with AIDS the most deadly infection.‎ Foremost, the increased prevalence of resistant strains of M. tuberculosis among the TB-infected population represents a serious thread. Hence, in the last decades, novel drug targets have been investigated worldwide. So far a relatively unexplored target is the cell wall enzyme β-ketoacyl-ACP-synthase "KasA", which plays a crucial role in maintaining the membrane impermeability and hence the cell ability to resist to the immune response and drug therapy. KasA is a key enzyme in the fatty acid synthase "FAS-II" elongation cycle, responsible for the extension of the growing acyl chain within the biosynthesis of precursors for the most hydrophobic constituents of the cell wall - mycolic acids. Design of the novel KasA inhibitors, performed in the research group of Prof. Sotriffer by C. Topf and B. Schaefer, was based on the recently published crystal structure of KasA‎ in complex with its known inhibitor thiolactomycin (TLM). Considering the essential ligand-enzyme interactions, a pharmacophore model was built and applied in the virtual screening of a modified ZINC database. Selected hits with the best in silico affinity data have been reported by Topf‎ and Schaefer‎. In this work, two of the obtained hits were synthesized and their structure was systematically varied. First, a virtual screening hit, chromone-2-carboxamide derivative GS-71, was modified in the amide part. Since the most of the products possessed a very low solubility in the aqueous buffer medium used in biological assays, polar groups (nitro, succinamidyl and trimethyl-amino substituent in position 6 of the chromone ring or hydroxyl group on the benzene ring in the amide part have been inserted to the molecule. Further variations yielded diaryl ketones, diaryl ketone bearing a succinamidyl substituent, carboxamide bearing a methylpiperazinyl-4-oxobutanamido group and methyl-malonyl ester amides. Basically, the essential structural features necessary for the ligand-enzyme interactions have been maintained. The latter virtual screening hit, a pyrimidinone derivative VS-8‎ was synthesized and the structure was modified by substitution in positions 2, 4, 5 and 6 of the pyrimidine ring. Due to autofluorescence, detected in most of the products, this model structure was not further varied. Simultaneously, experiments on solubilization of the first chromone-2-carboxamides with cyclodextrins, cyclic oligosacharides known to form water-soluble inclusion complexes, were performed. Although the assessed solubility of the chromone 3b/DIMEB (1:3) mixture exceeded 14-fold the intrinsic one, the achieved 100 µM solubility was still not sufficient to be used as a stock solution in the binding assay. The experiments with cyclodextrin in combination with DMSO were ineffective. Owing to high material costs necessary for the appropriate cyclodextrin amounts, the aim focused on structural modification of the hydrophobic products. Precise structural data have been obtained from the solved crystal structures of three chromone derivatives: the screening hit GS-71 (3b), its trimethylammonium salt (18) and 6-nitro-substituted N-benzyl-N-methyl-chromone-2-carboxamide (9i). The first two compounds are nearly planar with an anti-/trans-rotamer configuration. In the latter structure, the carboxamide bridge is bent out of the chromone plane, showing an anti-rotamer, too. Considering the relatively low partition coefficient of compound 3b (cLogP = 2.32), the compound planarity and correlating tight molecular packing might be the factors significantly affecting its poor solubility. Regarding the biological results of the chromone-based compounds, similar structure-activity correlations could be drawn from the binding assay and the whole cell activity testing on M. tuberculosis. In both cases, the introduction of a nitro group to position 6 of the chromone ring and the presence of a flexible substituent in the amide part showed a positive effect. In the binding study, the nitro group at position 4 on the N-benzyl residue was of advantage, too. The highest enzyme affinity was observed for N-(4-nitrobenzyl)-chromone-2-carboxamide 4c (KD = 34 µM), 6-nitro substituted N-benzyl-chromone-2-carboxamide 9g (KD = 40 µM) and 6‑nitro-substituted N-(4-nitrobenzyl)-chromone-2-carboxamide 9j (KD = 31 µM), which could not be attributed to the fluorescence quenching potential of the nitro group. The assay interference potential of chromones, due to a covalent binding on the enzyme sulfhydryl groups, was found to be negligible at the assay conditions. Moderate in vivo activity was detected for 6‑nitro-substituted N-benzyl-chromone-2-carboxamide 9g and its N-benzyl-N-methyl-, N‑furylmethyl-, N-cyclohexyl- and N-cyclohexylmethyl derivatives 9i, 9d, 9e, 9f, for which MIC values 20 - 40 µM were assessed. Cytotoxicity was increased in the N‑cyclohexylmethyl derivative only. None of the pyrimidine-based compounds showed activity in vivo. The affinity of the model structure, VS-8, surpassed with KD = 97 µM the assessed affinity of TLM (KD = 142 µM). Since for the model chromone compound GS-71 no reliable KasA binding data could be obtained, a newly synthesized chromone derivative 9i was docked into the KasA binding site, in order to derive correlation between the in silico and in vitro assessed affinity. For the 6‑nitro-derivative 9i a moderate in vivo activity on M. tuberculosis was obtained. The in silico predicted pKi values for TLM and 9i were higher than the corresponding in vitro results, maintaining though a similar tendency, i.e., the both affinity values for compound 9i (pKi predicted = 6.64, pKD experimental = 4.02) surpassed those obtained for TLM (pKi predicted = 5.27, pKD experimental = 3.84). Nevertheless, the experimental pKD values are considered preliminary results. The binding assay method has been improved in order to acquire more accurate data. Owing to the method development, limited enzyme batches and solubility issues, only selected compounds could be evaluated. The best hits, together with the compounds active on the whole cells of M. tuberculosis, will be submitted to the kinetic enzyme assay, in order to confirm the TLM-like binding mechanism. Regarding the in vivo testing results, no correlations could be drawn between the predicted membrane permeability values and the experimental data, as for the most active compounds 9e and 9f, a very low permeability was anticipated (0.4 and 0.7 \%, respectively). Further biological tests would be required to investigate the action- or transport mode.}, subject = {Tuberkelbakterium}, language = {en} } @phdthesis{Juergens2016, author = {J{\"u}rgens, Constantin Johannes Sebastian}, title = {Untersuchungen zum antiproliferativen Potential von Stoffwechselinhibitoren bei tumorphysiologischen Sauerstoffkonzentrationen}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-140061}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {Das Ziel der Arbeit war zu untersuchen, ob der Stoffwechsel kolorektaler Karzi-nomzellen geeignete Targetstrukturen f{\"u}r m{\"o}gliche therapeutische Ans{\"a}tze aufweist. In Krebszellen induziert sowohl der Warburg-Effekt bei Normoxie als auch die anaerobe Glykolyse bei Hypoxie eine massive Bildung von Laktat. Wird die Krebszelle dauerhaft daran gehindert, die f{\"u}r die Glykolyse notwendi-gen Reduktions{\"a}quivalente NADH+H+ mit Hilfe der Laktatdehydrogenase zu reoxidieren und/oder Laktat {\"u}ber die Transporter MCT1 und MCT4 nach außen zu schleusen, dann l{\"o}st diese Kombination aus Mangelsituation und intrazellul{\"a}rer Ans{\"a}uerung den apoptotischen Zelltod aus. F{\"u}r die Situation in vivo ist entscheidend, dass auch Zellen von Normalgeweben zwar Laktat in Hypoxie bilden, dies jedoch keine vorherrschende physiologische Situation darstellt. Die Hemmstoffe Natriumoxamat (NaOx) f{\"u}r die Laktatdehydrogenase und α-Cyano-4-Hydroxycinnamat (αCHC) f{\"u}r MCT1 und MCT4 wurden an den sechs humanen kolorektalen Karzinomzelllinien Colo741, HCT116, HT29, LS174T, SW620 und WiDr untersucht. Zus{\"a}tzlich wurde der Glukoseverbrauch und die Laktatbildung bestimmt und die Funktion der Atmungskette {\"u}berpr{\"u}ft. Die IC50-Werte f{\"u}r 5-FU, NaOx und αCHC wurden bestimmt und danach NaOx in einer Konzentration von 40x10-3 mol/L, αCHC in einer Konzentration von 2x10-3 mol/L und 5-FU in einer Konzentration von 5x10-6 mol/L eingesetzt. Die Zellen wurden bei tumorphysiologischen Sauerstoffkonzentrationen von 5 \% und 1 \% Sauerstoff f{\"u}r bis zu 120 Stunden inkubiert. Die Funktion der Atmungskette in den Mitochondrien der kolorektalen Karzi-nomzellen wurde u. a. durch Bestimmung wichtiger Kenngr{\"o}ßen wie dem P:O Quotienten und des respiratorischen Kontrollindex (RKI) nachgewiesen. F{\"u}nf der sechs Karzinomzelllinien wiesen im Vergleich zur Kontrollzelllinie J774 einen verringerten P:O-Quotienten und respiratorischen Kontrollindex (RKI) auf, was darauf hindeutet, dass die Funktion der Mitochondrien dieser Zellen im Vergleich zu Kontrollzellen zwar verringert war, aber nicht vollst{\"a}ndig aufgehoben. Dieses Ergebnis st{\"u}tzt die allgemein akzeptierte Auffassung, dass die meisten Tumore {\"u}ber funktionelle Mitochondrien verf{\"u}gen. Durch die Analyse des Glukosestoffwechsels wurden die sechs kolorektalen Zelllinien, die einen unterschiedlich stark ausgepr{\"a}gten glykolytischen Ph{\"a}notyp aufwiesen, nach der St{\"a}rke der Laktatbildung bei 5 \% Sauerstoff in drei Kategorien eingeordnet. Zudem wurde f{\"u}r jede der sechs Zelllinien die Expression von LDH-A, LDH-B sowie MCT-1 und MCT-4 auf Proteinebene nachgewiesen. Wesentliches Ziel der Untersuchungen war die {\"U}berpr{\"u}fung des antiprolife-rativen Potentials der beiden Inhibitoren NaOx und αCHC einzeln oder in Kombination mit 5-FU bei den tumorspezifischen Sauerstoffkonzentrationen von 5 \% und 1 \%. Die Kombination aus NaOx und αCHC induzierte bei 1 \% Sauerstoff nach 9 Tagen in Kultur zytotoxische Effekte und war damit so wirksam wie 5x10-6 mol/L 5-FU. Die Zugabe von 5-FU zur Kombination aus NaOx und αCHC f{\"u}hrte zu keiner Steigerung des zelltoxischen Effektes. Die beiden Inhibitoren NaOx und αCHC waren f{\"u}r SW620 Zellen weniger wirksam als f{\"u}r Zellen der anderen f{\"u}nf Zelllinien. Das mehr „oxidative" Profil von SW620 Zellen (bester P:O-Quotient, geringste Laktatbildung bei 5 \% und 1 \% Sauerstoff; zudem die h{\"o}chsten IC50-Werte f{\"u}r NaOx und αCHC) k{\"o}nnte erkl{\"a}ren, warum die beiden Stoffwechselinhibitoren, die einen glykolytischen Ph{\"a}notyp (starke Bildung von Laktat) erfordern, f{\"u}r SW620 Zellen von geringerer Wirksamkeit waren. F{\"u}r die Hemmstoffe NaOx und αCHC wurden zytostatische bzw. zytotoxische Effekte in kolorektalen Karzinomzellen gezeigt. Dies deutet darauf hin, dass Krebszellen auf einen ungehinderten glykolytischen Stoffwechsel angewiesen sind. F{\"u}r beide Hemmstoffe wurde ebenfalls gezeigt, dass sie auch bei tumorre-levanten Sauerstoffkonzentrationen von 5 \% und 1 \% wirksam sind.}, subject = {Tumorzelle}, language = {de} }