965 resultados para N-methoxy-N-methyl-2-[(4 ` substituted)phenylsulfinyl]propanamides


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Ziel dieser Arbeit war es, ausgehend von auxiliargebundenen Piperidinderivaten, unterschiedliche chirale bi- und tricyclische Verbindungen darzustellen. Dazu wurde das 2,3,4,6-Tetra-O-pivaloyl--D-galactosylamin durch Kondensation mit Aldehyden in die entsprechenden Galactosylaldimine überführt, die in einer Lewissäure-katalysierten hochdiastereoselektiven Tandem-Mannich-Michael-Reaktionssequenz mit Danishefsky-Dien zu 2-substituierten Dehydropiperidinonen umgesetzt wurden. Die auf diese Weise zugänglichen chiralen Heterocyclen wurden diastereoselektiv in trans-konfigurierte 5-Bromverbindungen überführt. In einer Thiazolsynthese nach Hantzsch konnten die -Bromketone mit ambidenten Nukleophilen, wie Thiobenzamiden und unsymmetrischen Thioharnstoffderivaten, in niedrigen Ausbeuten zu bicyclischen Tetrahydro-thiazolo[5,4-c]pyridinen umgesetzt werden. Weitere bicyclische Heterocyclen mit einem Tetrahydro-thieno[2,3-c]pyridin-System konnten durch eine Gewald-Cyclisierung an 2-substituierten N-Galactosyl-piperidinonen erhalten werden. Durch Palladium-katalysierte Kreuzkupplungen an heterocyclischen Enoltriflaten, die ausgehend von den N-Galactosyl-dehydropiperidinonen synthetisiert wurden, gelang die Einführung von Aryl-, Alkinyl- und Alkenylsubstituenten in 4-Position des Piperidinringes. Zur Freisetzung der 2,4-disubstituierten Dehydropiperidinen wurde die N-glycosidische Bindung im sauren Milieu gespalten. Verbindungen mit einer exocyclischen Doppelbindung wurden einer Diels-Alder-Reaktion mit N-Phenylmaleinimid zum Aufbau von Isochinolinderivaten eingesetzt. Des Weiteren gelang die Synthese von 2-benzylsubstituierten N-Galactosyl-dehydropiperidinonen, wobei ortho-halogensubstituierte Phenylacetaldehyde eingesetzt wurden. Die in hohen Diastereomerenüberschüssen gebildeten Dehydropiperidinone wurden in die entsprechenden Enoltriflate überführt und einer Domino-Suzuki-Heck-Reaktion unterworfen. In dieser Kaskadenreaktion konnten tricyclische diastereomerenreine Benzomorphanderivate synthetisiert werden.

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Ziel dieser Arbeit war es, an in 4-Position substituierten N-Galactosyl-dehydropiperidinonen die übrigen Positionen des Heterocycluses selektiv zu funktionalisieren und die erarbeiteten Methoden im Rahmen von Total- und Partialsynthesen biologisch aktiver Verbindungen anzuwenden. Ausgehend von N-Galactosyl-2-pyridon, welches sich in drei Stufen aus D-Galactose im Gramm-Maßstab erhalten lässt, konnten die in Position 4-substituierten Dehydropiperidinone in regio- und diastereoselektiv verlaufenden Additionen von Grignard-Reagenzien und Organocupraten synthetisiert werden. Es gelang die Einführung sowohl unverzweigter als auch sekundärer, tertiärer und cyclischer Alkylreste. Ebenfalls gute Ausbeuten und exzellente Diastereoselektivitäten wurden bei der konjugierten Addition verschieden substituierter Aryl- und Benzyl-Grignard-Reagenzien erhalten. Das Kohlenhydratauxiliar kontrolliert dabei nicht nur die faciale Selektivität, sondern es bestimmt gleichzeitig die Regioselektivität. Die absolute Konfiguration der 4-substituierten 2-Pyridone konnte durch Röntgenstrukturanalysen zweier Produkte zweifelsfrei geklärt werden. Dass die so dargestellten Heterocyclen wertvolle Synthone zur asymmetrischen Synthese mehrfach substituierter Piperidinverbindungen sind, konnte gezeigt werden durch die Ausarbeitung verschiedener Methoden zur weitergehenden Funktionalisierung an den Positionen C-2, C-3, C-5 und C-6 sowie durch die Entwicklung eines Verfahrens zur Freisetzung der stereoselektiv synthetisierten Heterocyclen. Diese systematisch untersuchten Synthesewege konnten in Partial- und Totalsynthesen von pharmakologisch relevanten Verbindungen erfolgreich beschritten werden. So gelang die Synthese des biologisch aktiven (3S)-Piperidinols, sowie die des 3-Hydroxy-4-(4-fluorphenyl)-piperidin-Derivates. Weiterhin gelang die formale Totalsynthese von (+)-Paroxetin, welches einen pharmakologisch interessanten Wirkstoff mit der Struktur eines 3,4-trans-disubstituierten Piperidins darstellt. Ein weiterer Themenschwerpunkt dieser Arbeit war die regio- und stereoselektive Synthese von Benzomorphan-Derivaten. Diese gelang durch intramolekulare Amino-Alkylierung der 4-Benzyl-substituierten Dehydropiperidinone. Durch Anwendung dieser Methodik konnte eine Reihe verschieden substituierter 7,8-Benzomorphan-Derivate synthetisiert werden, die interessante Zwischenstufen in der asymmetrischen Benzomorphansynthese darstellen. In einer exemplarischen Synthese wurde so das 7,8-Benzomorphan hergestellt.

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Definiert konfigurierte mittelgroße ungesättigte Heterocyclen sind wertvolle Zwischenstufen in der Naturstoff- und Wirkstoffsynthese. Es konnte gezeigt werden, dass 2-alkinyl-substituierte Piperidine und Azepane in einer Aza-Keten-Claisen-Reaktion zu 10- und 11-gliedrigen Allenyllactamen umgelagert werden können. Ein 9-gliedriges Allenyllactam konnte nicht dargestellt werden (Ringspannung). Über eine sechs- bis sieben-stufige Reaktionssequenz konnten optisch aktive, geschützte Piperidinole aufgebaut werden. Es wurden Auxiliar kontrollierte Hetero-Diels-Alder-Reaktionen, diastereoselektive Reduktionen, Bestmann-Ohira Umlagerungen zu Alkinen und verschiedene Alkin-Funktionalisierungen erarbeitet. Eine Aza-Claisen-Umlagerung liefert schließlich optisch aktive Lactame deren absolute Konfiguration des Allensystems mittels NOE-NMR-Spektroskopie untersucht werden kann. Limitierungen und Möglichkeiten der Synthese werden eingehend diskutiert. Sowohl der stereochemische Verlauf der Reaktion als auch die Konformation der Produkte ermöglichen eine Fokussierung auf nachfolgende Naturstoffsynthesen vorzunehmen.

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The atom efficient phospha-Michael reaction between bis 4-methylphenyl phosphine oxide and several activated internal alkenes has been shown to occur under microwave irradiation without added solvent or catalyst. The alkenes used for this study were ethyl 4-nitrocinnamate, two chalcones ((E)-3-(4-methoxy-phenyl)-1-(4- nitrophenyl)-prop-2-en-1-one and (E)-1-(4-methoxyphenyl)-3-(3-nitro-phenyl)-prop-2- en-1-one), and 2-phenylmethylene-propanedinitrile. In the case of ethyl 4-nitrocinnamate, reaction with bis 4-methylphenyl phosphine oxide for sixty minutes at 130 °C yielded the desired phospha-Michael product in a 55% yield after purification. Varying the location of the nitro group on the phenyl rings of the chalcones did not seem to have a large effect on their reactivity. By NMR, both chalcones seemed to react to the same extent when the reaction times and temperatures were held constant. Interestingly, a phospha-Michael reaction was observed at a reaction temperature of 65°C for experiments involving 2- phenyl-methylene-propanedinitrile while the other substrates required a reaction temperature of 130 °C. Similar experiments were carried out with bis mesityl phosphine oxide and two internal alkenes: 2-phenylmethylene-propanedinitrile and ethyl-2-cyano-3- methyl-2-butenoate. These experiments did not yield any of the predicted phospha- Michael products, which suggest steric limitations to the Michael donor for this reaction.

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End-brominated poly(methyl methacrylate) (PMMABr) was prepared by atom transfer radical polymerization (ATRP) and employed in a series of atom transfer radical coupling (ATRC) and radical trap-assisted ATRC (RTA-ATRG) reactions. When coupling reactions were performed in the absence of a nitroso radical trap-traditional ATRC condition-very little coupling of the PMMA chains was observed, consistent with disproportionation as the major termination pathway for two PMMA chain-end radicals in our reactions. When 2-methyl-2-nitrosopropane (MNP) was used as the radical trap, coupling of the PMMA chains in this attempted RTA-ATRC reaction was again unsuccessful, owing to capping of the PMMA chains with a bulky nitroxide and preventing further coupling. Analogous reactions performed using nitrosobenzene (NBz) as the radical trap showed significant dimerization, as observed by gel permeation chromatography (GPC) by a shift in the apparent molecular weight compared to the PMMABr precursors. The extent of coupling was found to depend on the concentrion of NBz compared to the PMMABr chain ends, as well as the temperature and time of the coupling reaction. To a lesser extent, the concentrations of copper(I) bromide (CuBr), nitrogen ligand (N,N,N',N',N"-pentamethyldiethylenetriamine = PMDETA), and elemental copper (Cu) were also found to play a role in the success of the RTA-ATRC reaction. The highest levels of dimerization were observed when the coupling reaction was carried out at 80 degrees C for 0.5h, with ratio of 1:4:2.5:8:1 equiv of NBz: CuBr:Cu:PMDETA:PMMABr.

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Radiolabeled antagonists of specific peptide receptors identify a higher number of receptor binding sites than agonists and may thus be preferable for in vivo tumor targeting. In this study, two novel radioiodinated 1,4-benzodiazepines, (S)-1-(3-iodophenyl)-3-(1-methyl-2-oxo-5-phenyl-2,3-dihydro-1H-benzo[e][1,4]diazepin-3-yl)urea (9) and (R)-1-(3-iodophenyl)-3-(1-methyl-2-oxo-5-phenyl-2,3-dihydro-1H-benzo[e][1,4]diazepin-3-yl)urea (7), were developed. They were characterized in vitro as high affinity selective antagonists at cholecystokinin types 1 and 2 (CCK(1) and CCK(2)) receptors using receptor binding, calcium mobilization, and internalization studies. Their binding to human tumor tissues was assessed with in vitro receptor autoradiography and compared with an established peptidic CCK agonist radioligand. The (125)I-labeled CCK(1) receptor-selective compound 9 often revealed a substantially higher amount of CCK(1) receptor binding sites in tumors than the agonist (125)I-CCK. Conversely, the radioiodinated CCK(2) receptor-selective compound 7 showed generally weaker tumor binding than (125)I-CCK. In conclusion, compound 9 is an excellent radioiodinated nonpeptidic antagonist ligand for direct and selective labeling of CCK(1) receptors in vitro. Moreover, it represents a suitable candidate to test antagonist binding to CCK(1) receptor-expressing tumors in vivo.

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​2-Aminopurine (​2AP) is a fluorescent isomer of ​adenine and has a fluorescence lifetime of ~11 ns in water. It is widely used in biochemical settings as a site-specific fluorescent probe of DNA and RNA structure and base-flipping and -folding. These assays assume that ​2AP is intrinsically strongly fluorescent. Here, we show this not to be the case, observing that gas-phase, jet-cooled ​2-aminopurine and ​9-methyl-2-aminopurine have very short fluorescence lifetimes (156 ps and 210 ps, respectively); they are, to all intents and purposes, non-fluorescent. We find that the lifetime of ​2-aminopurine increases dramatically when it is part of a hydrate cluster, 2AP·(H2O)n, where n = 1–3. Not only does it depend on the presence of water molecules, it also depends on the specific hydrogen-bonding site to which they attach and on the number of H2O molecules at that site. We selectively microhydrate ​2-aminopurine at its sugar-edge, cis-amino or trans-amino sites and see that its fluorescence lifetime increases by 4, 50 and 95 times (to 14.5 ns), respectively.

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In monocotyledonous plants, 1,4-benzoxazin-3-ones, also referred to as benzoxazinoids or hydroxamic acids, are one of the most important chemical barriers against herbivores. However, knowledge about their behavior after attack, mode of action and potential detoxification by specialized insects remains limited. We chose an innovative analytical approach to understand the role of maize 1,4-benzoxazin-3-ones in plant–insect interactions. By combining unbiased metabolomics screening and simultaneous measurements of living and digested plant tissue, we created a quantitative dynamic map of 1,4-benzoxazin-3-ones at the plant–insect interface. Hypotheses derived from this map were tested by specifically developed in vitro assays using purified 1,4-benzoxazin-3-ones and active extracts from mutant plants lacking 1,4-benzoxazin-3-ones. Our data show that maize plants possess a two-step defensive system that effectively fends off both the generalist Spodoptera littoralis and the specialist Spodoptera frugiperda. In the first step, upon insect attack, large quantities of 2-β-d-glucopyranosyloxy-4,7-dimethoxy-1,4-benzoxazin-3-one (HDMBOA-Glc) are formed. In the second step, after tissue disruption by the herbivores, highly unstable 2-hydroxy-4,7-dimethoxy-1,4-benzoxazin-3-one (HDMBOA) is released by plant-derived β-glucosidases. HDMBOA acts as a strong deterrent to both S. littoralis and S. frugiperda. Although constitutively produced 1,4-benzoxazin-3-ones such as 2,4-dihydroxy-7-methoxy-1,4-benzoxazin-3-one (DIMBOA) are detoxified via glycosylation by the insects, no conjugation of HDMBOA in the insect gut was found, which may explain why even the specialist S. frugiperda has not evolved immunity against this plant defense. Taken together, our results show the benefit of using a plant–insect interface approach to elucidate plant defensive processes and unravel a potent resistance mechanism in maize.

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The inducible isoform of the enzyme cyclooxygenase-2 (COX2) is an immediate early gene induced by synaptic activity in the brain. COX2 activity is an important mediator of inflammation, but it is not known whether COX2 activity is pathogenic in brain. To study the role of COX2 activity in ischemic injury in brain, expression of COX2 mRNA and protein and the effect of treatment with a COX2 inhibitor on neuronal survival in a rat model of global ischemia were determined. Expression of both COX2 mRNA and protein was increased after ischemia in CA1 hippocampal neurons before their death. There was increased survival of CA1 neurons in rats treated with the COX2-selective inhibitor SC58125 {1-[(4-methylsulfonyl) phenyl]-3-trifluoro-methyl-5-[(4-fluoro)phenyl] pyrazole} before or after global ischemia compared with vehicle controls. Furthermore, hippocampal prostaglandin E2 concentrations 24 h after global ischemia were decreased in drug-treated animals compared with vehicle-treated controls. These results suggest that COX2 activity contributes to CA1 neuronal death after global ischemia.

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A convenient, high yield conversion of doxorubicin to 3'-deamino-3'-(2''-pyrroline-1''-yl)doxorubicin is described. This daunosamine-modified analog of doxorubicin is 500-1000 times more active in vitro than doxorubicin. The conversion is effected by using a 30-fold excess of 4-iodobutyraldehyde in anhydrous dimethylformamide. The yield is higher than 85%. A homolog of this compound, 3'-deamino-3'-(1'',3''-tetrahydropyridine-1''-yl)doxorubicin, was also synthesized by using 5-iodovaleraldehyde. In this homolog, the daunosamine nitrogen is incorporated into a six- instead of a five-membered ring. This analog was 30-50 times less active than its counterpart with a five-membered ring. A similar structure-activity relationship was found when 3'-deamino-3'-(3''-pyrrolidone-1''-yl)doxorubicin (containing a five-membered ring) and 3'-deamino-3'-(3''-piperidone-1''-yl)doxorubicin (with a six-membered ring) were tested in vitro, the former being 5 times more potent than the latter. To further elucidate structure-activity relationships, 3'-deamino-3'-(pyrrolidine-1''-yl)doxorubicin, 3'-deamino-3'-(isoindoline-2''-yl)doxorubicin, 3'-deamino-3'-(2''-methyl-2''-pyrroline-1''-yl)doxorubicin, and 3'-deamino-3'-(3''-pyrroline-1''-yl)doxorubicin were also synthesized and tested. All the analogs were prepared by using reactive halogen compounds for incorporating the daunosamine nitrogen of doxorubicin into a five- or six-membered ring. These highly active antineoplastic agents can be used for incorporation into targeted cytotoxic analogs of luteinizing hormone-releasing hormone intended for cancer therapy.

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Aqueous 2,2-dimethoxyacetaldehyde (60% wt solution) is used as an acceptor in aldol reactions, with cyclic and acyclic ketones and aldehydes as donors, organocatalyzed by 10 mol % of N-tosyl-(Sa)-binam-l-prolinamide [(Sa)-binam-sulfo-l-Pro] at rt under solvent-free conditions. The corresponding monoprotected 2-hydroxy-1,4-dicarbonyl compounds are obtained in good yields and with high levels of diastereo- and enantioselectivity mainly as anti-aldols. In the case of 4-substituted cyclohexanones a desymmetrization process takes place to mainly afford the anti,anti-aldols. 2,2-Dimethyl-1,3-dioxan-5-one allows the synthesis of a useful intermediate for the preparation of carbohydrates in higher yield, de and ee than with l-Pro as the organocatalyst.

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A variety of hydroxy- and amino-functionalized imidazoles were prepared from 1-methyl- and 1-(diethoxymethyl)imidazole by means of isoprene-mediated lithiation followed by reaction with an electrophile. These compounds in combination with palladium acetate were screened as catalyst systems for the Hiyama reaction under fluorine-free conditions using microwave irradiation. The systematic study of the catalytic system showed 1-methyl-2-aminoalkylimidazole derivative L1 to be the best ligand, which was employed under solvent-free conditions with a 1:2 Pd/ligand ratio and TBAB (20 mol-%) as additive. The study has revealed an interaction between the Pd/ligand ratio and the amount of TBAB. The established catalytic system presented a certain degree of robustness, and it has been successfully employed in the coupling of a range of aryl bromides and chlorides with different aryl siloxanes. Furthermore, both reagents were employed in an equimolecular amount, without an excess of organosilane.