21 resultados para TETRACYANOETHYLENE


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Multi-component reactions are effective in building complex molecules in a single step in a minimum amount of time and with facile isolation procedures; they have high economy1–7 and thus have become a powerful synthetic strategy in recent years.8–10 The multicomponent protocols are even more attractive when carried out in aqueous medium. Water offers several benefits, including control over exothermicity, and the isolation of products can be carried out by single phase separation technique. Pyranopyrazoles are a biologically important class of heterocyclic compounds and in particular dihydropyrano[2,3-c]pyrazoles play an essential role in promoting biological activity and represent an interesting template in medicinal chemistry. Heterocyclic compounds bearing the 4-H pyran unit have received much attention in recent years as they constitute important precursors for promising drugs.11–13 Pyrano[2,3-c]pyrazoles exhibit analgesic,14 anti-cancer,15 anti-microbial and anti-inflammatory16 activity. Furthermore dihydropyrano[2,3-c]pyrazoles show molluscidal activity17,18 and are used in a screening kit for Chk 1 kinase inhibitor activity.19,20 They also find applications as pharmaceutical ingredients and bio-degradable agrochemicals.21–29 Junek and Aigner30 first reported the synthesis of pyrano[2,3-c]pyrazole derivatives from 3-methyl-1-phenylpyrazolin-5-one and tetracyanoethylene in the presence of triethylamine. Subsequently, a number of synthetic approaches such as the use of triethylamine,31 piperazine,32 piperidine,33 N-methylmorpholine in ethanol,34 microwave irradiation,35,36 solvent-free conditions,37–39 cyclodextrins (CDs),40 different bases in water,41 γ -alumina,42 and l-proline43 have been reported for the synthesis of 6-amino-4-alkyl/aryl-3-methyl- 2,4-dihydropyrano[2,3-c]pyrazole-5-carbonitriles. Recently, tetraethylammonium bromide (TEABr) has emerged as mild, water-tolerant, eco-friendly and inexpensive catalyst. To the best of our knowledge, quaternary ammonium salts, more specifically TEABr, have notbeen used as catalysts for the synthesis of pyrano[2,3-c]pyrazoles, and we decided to investigate the application of TEABr as a catalyst for the synthesis of a series of pyrazole-fused pyran derivatives via multi-component reactions

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Im Rahmen dieser Arbeit wurde die Bindung von Koffein und verwandten Oxopurinen in C¬3-symmetrischen Rezeptoren auf der Basis von Triphenylenketalen untersucht. Dabei stand vor allem die Evaluierung für eine spätere Anwendung im Vordergrund. Für die Anwendung als Chemosensor wurden mehrere optische Verfahren getestet. Die Verwendung von UV/Vis-Spektroskopie gelingt nur unter Einsatz eines elektronenarmen Konkurrenzgastes, welcher durch das stärker bindende Koffein unter Entfärbung verdrängt wird. Obwohl dieser Effekt sogar mit bloßem Auge zu erkennen ist und somit eine einfache Untersuchung ermöglichen würde, machen die besondere Reaktivität des Konkurrenzgastes und dessen geringe Affinität zum Rezeptor eine weitere Anwendung als Chemosensor für Koffein unwahrscheinlich. Den entscheidenden Durchbruch lieferte der Wechsel auf Fluoreszenzspektroskopie. Die Bindung von Gästen lässt sich mit dieser Methode direkt beobachten und für quantitative Studien nutzen. Die Signalzunahme bei Zugabe von Koffein liegt bei maximal 30%. Durch Verwendung eines vom Koffein abgeleiteten Konkurrenzgastes können weitere Verbesserungen erzielt werden. So konnte eine maximale Signaldynamik von fast 400% erzielt werden. Durch die Entwicklung eines geeigneten Probenvorbereitungsprotokolls war es möglich, mit dem fluoreszenzbasierten System einen Nachweis von Koffein an kommerziell verfügbaren Getränkeproben durchzuführen. Die Ergebnisse waren in guter Übereinstimmung mit HPLC-Kontrollexperimenten. Die Eignung von Rezeptoren auf Triphenylenketalbasis für die enantiofaciale Differenzierung an Heteroaromaten wurde durch Untersuchung verschiedener Wirt-Gast-Komplexe mittels CD-Spektroskopie und Tieftemperatur-NMR systematisch demonstriert. Rezeptoren mit Menthyl-Substituenten liefern laut NMR die stärkste Seitendifferenzierung. Anhand des CD wird ein vollständiges und schlüssiges Bild über den Zusammenhang zwischen dem Raumbedarf am Gast, der Ausrichtung der chiralen Gruppen am Wirt und dem erhaltenen CD hergestellt. Durch umfangreiche molekulardynamische Simulationen und nachfolgende semiempirische Berechnungen wurden Referenzspektren berechnet, welche die Zuordnung der Stereochemie anhand des CD eindeutig belegen. Die Ergebnisse sind zudem in guter Übereinstimmung mit den Ergebnissen aus röntgenkristallographischen Untersuchungen. (Diese Methode ließ sich erfolgreich auf die helicale Faltung von Alkanen in Kapseln von Rebek, jr. umsetzen.) Obwohl die Energieunterschiede zwischen den diastereomeren Komplexen klein sind, konnte anhand der CD-Spektroskopie somit erstmalig die enantiofaciale Differenzierung an einem heterocyclischen System bei Raumtemperatur beobachtet werden. Die beste enantiofaciale Differenzierung erzielen die Menthyl-abgeleiteten Rezeptoren. Diese sind hinsichtlich einer möglichen Anwendung als chirales „Auxiliar“ ungeeignet, da sie mit den sperrigen Cyclohexylgruppen auch den Raum oberhalb des gebundenen Gastes blockieren. Daher wird für die weitere Entwicklung auf die praktische Einführung chiraler Information in Form des Isocyanats verzichten werden müssen. Stattdessen zielen aktuelle Bemühungen auf den Aufbau chiraler Rückgrate, welche den Raum in der unteren Peripherie des Gastes beeinflussen.

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An extensive study of the reaction pathways of 1,1-dicyclopropyl ethylene, cis- and trans- 1,2-dicyclopropylethylenes has been undertaken with different electrophiles 4-methyl-1,2,4-triazoline-3,5-dione (MTAD), tetracyanoethylene (TCNE), and singlet oxygen $\rm(\sp1O\sb2).$ Comparison of reactivity and reaction mechanisms among the electrophiles is investigated. Singlet oxygen exhibits significantly lower reactivity compared to the other electrophiles. MTAD and TCNE react with dicyclopropylethylenes to produce predominantly $\sp{\prime\prime}2+2\sp{\prime\prime}$ adducts and a small amount of the "ene" adducts. The $\sp{\prime\prime}2+2\sp{\prime\prime}$ is the major product presumably because of the high activation energy leading to the highly strained "ene" products. Solvent trapping studies provide strong evidence of a "stepwise" mechanism, involving a zwitterionic or aziridinium imide as an intermediate from the study of the reactions products of dicyclopropylethylenes and MTAD. ^

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The diverse biological properties exhibited by uridine analogues modified at carbon-5 of the uracil base have attracted special interest to the development of efficient methodologies for their synthesis. This study aimed to evaluate the possible application of vinyl tris(trimethylsilyl)germanes in the synthesis of conjugated 5-modified uridine analogues via Pd-catalyzed cross-coupling reactions. The stereoselective synthesis of 5-[(2-tris(trimethylsilyl)germyl)ethenyl]uridine derivatives was achieved by the radical-mediated hydrogermylation of the protected 5-alkynyluridine precursors with tris(trimethylsilyl)germane [(TMS)3GeH]. The hydrogermylation with Ph3GeH afforded in addition to the expected 5-vinylgermane, novel 5-(2-triphenylgermyl)acetyl derivatives. Also, the treatment with Me3GeH provided access to 5-vinylgermane uridine analogues with potential biological applications. Since the Pd-catalyzed cross-coupling of organogermanes has received much less attention than the couplings involving organostannanes and organosilanes, we were prompted to develop novel organogermane precursors suitable for transfer of aryl and/or alkenyl groups. The allyl(phenyl)germanes were found to transfer allyl groups to aryl iodides in the presence of sodium hydroxide or tetrabutylammonium fluoride (TBAF) via a Heck arylation mechanism. On the other hand, the treatment of allyl(phenyl)germanes with tetracyanoethylene (TCNE) effectively cleaved the Ge-C(allyl) bonds and promoted the transfer of the phenyl groups upon fluoride activation in toluene. It was discovered that the trichlorophenyl,- dichlorodiphenyl,- and chlorotriphenylgermanes undergo Pd-catalyzed cross-couplings with aryl bromides and iodides in the presence of TBAF in toluene with addition of the measured amount of water. One chloride ligand on the Ge center allows efficient activation by fluoride to promote transfer of one, two or three phenyl groups from the organogermane precursors. The methodology shows that organogermanes can render a coupling efficiency comparable to the more established stannane and silane counterparts. Our coupling methodology (TBAF/moist toluene) was also found to promote the transfer of multiple phenyl groups from analogous chloro(phenyl)silanes and stannanes.

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An extensive study of the reaction pathways of 1,1- dicyclopropyl ethylene, cis- and trans- 1,2-dicyclopropylethylenes has been undertaken with different electrophiles 4-methyl-1,2,4- triazoline-3,5-dione (MTAD), tetracyanoethylene (TCNE), and singlet oxygen (102). Comparison of reactivity and reaction mechanisms among the electrophiles is investigated. Singlet oxygen exhibits significantly lower reactivity compared to the other electrophiles. MTAD and TCNE react with dicyclopropylethylenes to produce predominantly "2+2" adducts and a small amount of the "ene" adducts. The "2+2" is the major product presumably because of the high activation energy leading to the highly strained "ene" products. Solvent trapping studies provide strong evidence of a "stepwise" mechanism, involving a zwitterionic or aziridinium imide as an intermediate from the study of the reactions products of dicyclopropylethylenes and MTAD.

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The diverse biological properties exhibited by uridine analogues modified at carbon-5 of the uracil base have attracted special interest to the development of efficient methodologies for their synthesis. This study aimed to evaluate the possible application of vinyl tris(trimethylsilyl)germanes in the synthesis of conjugated 5-modified uridine analogues via Pd-catalyzed cross-coupling reactions. The stereoselective synthesis of 5-[(2-tris(trimethylsilyl)germyl)ethenyl]uridine derivatives was achieved by the radical-mediated hydrogermylation of the protected 5-alkynyluridine precursors with tris(trimethylsilyl)germane [(TMS)3GeH]. The hydrogermylation with Ph3GeH afforded in addition to the expected 5-vinylgermane, novel 5-(2-triphenylgermyl)acetyl derivatives. Also, the treatment with Me3GeH provided access to 5-vinylgermane uridine analogues with potential biological applications. Since the Pd-catalyzed cross-coupling of organogermanes has received much less attention than the couplings involving organostannanes and organosilanes, we were prompted to develop novel organogermane precursors suitable for transfer of aryl and/or alkenyl groups. The allyl(phenyl)germanes were found to transfer allyl groups to aryl iodides in the presence of sodium hydroxide or tetrabutylammonium fluoride (TBAF) via a Heck arylation mechanism. On the other hand, the treatment of allyl(phenyl)germanes with tetracyanoethylene (TCNE) effectively cleaved the Ge-C(allyl) bonds and promoted the transfer of the phenyl groups upon fluoride activation in toluene. It was discovered that the trichlorophenyl,- dichlorodiphenyl,- and chlorotriphenylgermanes undergo Pd-catalyzed cross-couplings with aryl bromides and iodides in the presence of TBAF in toluene with addition of the measured amount of water. One chloride ligand on the Ge center allows efficient activation by fluoride to promote transfer of one, two or three phenyl groups from the organogermane precursors. The methodology shows that organogermanes can render a coupling efficiency comparable to the more established stannane and silane counterparts. Our coupling methodology (TBAF/moist toluene) was also found to promote the transfer of multiple phenyl groups from analogous chloro(phenyl)silanes and stannanes.