135 resultados para regioselective


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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Ozone, first discovered in the mid 1800’s, is a triatomic allotrope of oxygen that is a powerful oxidant. For over a century, research has been conducted into the synthetic application and mechanism of reactions of ozone with organic compounds. One of the major areas of interest has been the ozonolysis of alkenes. The production of carbonyl compounds is the most common synthetic application of ozonolysis. The generally accepted mechanism developed by Rudolf Criegee for this reaction involves the 1,3-electrocyclic addition of ozone to the π bond of the alkene to form a 1,2,3-trioxolane or primary ozonide. The primary ozonide is unstable at temperatures above -100 °C and undergoes cycloreversion to produce the carbonyl oxide and carbonyl intermediates. These intermediates then recombine in another 1,3-electrocyclic addition step to form the 1,2,4-trioxolane or final ozonide. While the final ozonide is often isolable, most synthetic applications of ozonolysis require a subsequent reductive or oxidative step to form the desired carbonyl compound. During investigations into the nucleophilic trapping of the reactive carbonyl oxide, it was discovered that when amines were used as additives, an increased amount of reaction time was required in order to consume all of the starting material. Surprisingly, significant amounts of aldehydes and a suppression of ozonide formation also occurred which led to the discovery that amine N-oxides formed by the ozonation of the amine additives in the reaction were intercepting the carbonyl oxide. From the observed production of aldehydes, our proposed mechanism for the in situ reductive ozonolysis reaction with amine N-oxides involves the nucleophilic trapping of the carbonyl oxide intermediate to produce a zwitterionic adduct that fragments into 1O2, amine and the carbonyl thereby avoiding the formation of peroxidic intermediates. With the successful total syntheses of peroxyacarnoates A and D by Dr. Chunping Xu, the asymmetric total synthesis of peroxyplakorate A3 was investigated. The peroxyplakoric acids are cyclic peroxide natural products isolated from the Plakortis species of marine sponge that have been found to exhibit activity against malaria, cancer and fungi. Even though the peroxyplakorates differ from the peroxyacarnoates in the polyunsaturated tail and the head group, the lessons learned from the syntheses of the peroxyacarnoates have proven to be valuable in the asymmetric synthesis of peroxyplakorate A3. The challenges for the asymmetric synthesis of peroxyplakorate A3 include the stereospecific formation of the 3-methoxy-1,2-dioxane core with a propionate head group and the introduction of oxidation sensitive dienyl tail in the presence of a reduction sensitive 1,2-dioxane core. It was found that the stereochemistry of two of the chiral centers could be controlled by an anti-aldol reaction of a chiral propionate followed by the stereospecific intramolecular cyclization of a hydroperoxyacetal. The regioselective ozonolysis of a 1,2-disubstituted alkene in the presence of a terminal alkyne forms the required hydroperoxyacetal as a mixture of diastereomers. Finally, the dienyl tail is introduced by a hydrometallation/iodination of the alkyne to produce a vinyl iodide followed by a palladium catalyzed coupling reaction. While the coupling reaction was unsuccessful in these attempts, it is still believed that the intramolecular cyclization to introduce the 1,2-dioxane core could prove to be a general solution to many other cyclic peroxides natural products.

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Rhodium-catalyzed asymmetric hydroboration in conjunction with directing groups can be used control relative and absolute stereochemistry. Hydroboration has the potential to create new C–C, C–O, and C–N bonds from an intermediate C–B bond with retention of stereochemistry. Desymmetrization resulting in the loss of one or more symmetry elements can give rise to molecular chirality, i.e., the conversion of a prochiral molecule to one that is chiral. Unsaturated amides and esters hold the potential for two-point binding to the rhodium catalyst and have been shown to direct the regiochemistry and impact stereochemistry in asymmetric hydroborations of acyclic β,γ-unsaturated substrates. In the present study, the pendant amide functionality directs the hydroboration cis in the cyclic substrates studied; the corresponding ester substrates do so to a lesser extent. The enantioselectivity is determined by regioselective addition to the re or si site of the rhodium-complexed alkene. The effect of catalyst, ligand and borane on the observed diastereoselectivity and enantioselectivity for a variety of cyclopentenyl ester and amide substrates is discussed.

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Much effort has been devoted in the recent years to the investigation of optically active polythiophenes characterized by the presence of a chiral moiety linked to the 3-position of the aromatic ring. In addition to their potential technological applications as materials for enantioselective electrodes and membranes, chiral poly(thiophene)s offer the possibility of studying the structural changes accompanying the transition from the disordered state by following the variation of their chiroptical properties by circular dichroism (CD). In solution of a good solvent, that kind of polythiophenes doesn’t display any optical activity arising from the presence of dissymmetric conformation of the backbone, as shown by circular dichroism (CD) spectra. When the macromolecules begin to aggregate, as it occurs e.g. by addition of a poor solvent, or lowering the solution temperature, or when the macromolecules are assembled in the solid state as thin films obtained by solution casting or spin coating, significant CD bands are observed in the spectral region related to the electronic absorptions of the aromatic polythiophene chromophore. These CD bands are indicative of a chiral macromolecule arrangement of one prevailing chirality. The synthesis of -substituted polythiophenes can be carried out starting from the corresponding -substituted mono- or oligomeric thiophenic monomers under regioselective or regiospecific conditions in order to minimize or avoid the formation of head-to-head dyads unfavourably affecting the presence of coplanar conformations of thiophene rings as a consequence of steric interactions between the side-chain substituents, both in solution and in the solid state. To this regard, non-symmetrically substituted monomers require therefore to perform the polymerization in the presence of highly demanding catalysts and reaction condition, whereas with symmetrically substituted oligothiophenic monomers containing the -substituents located far apart from the reacting sites, it is instead possible to obtain regioregular macromolecules by adopting more simple and economic polymerization methods, such as, e. g., the chemical oxidative polymerization with iron (III) trichloride. In order to verify how the polymer structure affects its optical activity, further poly-3-alkylthiophenes, substituted by an enantiomerically pure chiral alkyl group, namely poli[3,3”-di[2((S)-(+)-2-methylbutoxy)ethyl]-2,2’:5’,2”-terthiophene] (PDMBOETT), poli[3,3’di[2((S)-(+)-2-methylbutoxy)ethyl]-2,2’-bitiofene] (PDMBOEBT), poli[3,3””-didodecyl-4’,3”’-di(S)-(+)-2-methylbutyl-2,2’:5’,2”:5”,2”’:5”’,2””-quinquethiophene (PDDDMBQT) have been synthesized and characterized by instrumental techniques. The spectroscopic behaviour of thin films of poly(DDDMBQT) has been investigated in the solid state under different sample preparation procedures. It was also compared with the behaviour of polymers previously made. The experimental results are interpreted in terms of influence of the side-chain substituents on the extent of planarity of the polymeric chains and the formation of optically active chiral aggregates. In recent years conjugated block copolymers have received considerable attention. It is well known that conjugated block copolymers composed of two electronically different blocks can have morphologic and optical properties, that differ from those of their homopolymers. A recent study has also shown that the electronic properties and the supramolecular organization of one conjugated block can also be influenced by the other block. In order to study better this behavior, a new conjugated block copolymers, composed of a regioregular hydrophylic block and a regioregular hydrophobic block namely poli[3[2-(2-metossietossi)etossi]metiltiofene]-co- poli[3(1-octilossi)tiofene], has been synthesized and characterized.

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We have elaborated a multistep strategy to synthesize ABAB-type tetraureas. There are overall nine steps but they involve very simple chemistry. The sequence starts with a 1,3-dialkylation and this is the step in which a difference between distal phenolic units is introduced. The selective ipso-nitration in the next step is based on the difference in reactivity between free phenolic units and alkylated ones. The direct reaction of tetraamino calixarene with tolylisocyanate appears not to be an appropriate method to synthesize 1,3-ditolylurea calixarenes but can be used to get tetraureas of ABBB- and AABB-types in two steps with yields of about 60%. A complete regioselective dimerization was obtained with mono-loop derivatives in which two adjacent urea residues are covalently connected. As predicted/expected the loop prevents the formation of one regioisomer, and only the dimer in which the open-chain residue slips through the loop is formed. To synthesize mono-loop tetraureas 1,2-diBoc protected tetraamino calixarene was acylated with activated di-urethanes under high dilution conditions. Di-loop compounds were synthesized by two different ways. In the reaction of tetraamine and di-urethanes the yield is about 30-40%. The second method is based on the metathesis reaction within a suitable heterodimer. For this strategy, tetraurea derivatives with residues which have terminal double bonds were prepared. The exclusive formation of the heterodimer with tetratosylurea as template is the key point in this strategy. Metathesis followed by hydrogenation give exceptionally good yields (> 80%) of the loop compounds. All the NMR data for di-loop compounds confirm that the loops prevent the interaction of the urea residues which are connected and thus, as expected, the di-loop derivatives do not form homodimers. The heterodimer between di-loop compounds and tetratolylurea (open-chain tetraureas) was the only species observed for a 1:1 mixture in benzene or chloroform. The rational synthesis of bis-[2]catenanes was a consequence of the selective formation of one regioisomer of mono-loop derivatives and the exclusive formation of heterodimers by di-loop derivatives. The formation of interlocking-ring in the synthesis of bis-[2]catenanes is an additional evidence that one open-chain residue slips through the loop in mono- or di-loop derivatives. Exceptionally good yields in the synthesis of bis-[2]catenanes are due to the high preorganization in the dimer which undergoes the metathesis. This preorganization decreases the number of the wrong connections and favors the new connections to be formed. Although the procedure for working up the reaction mixture should be still improved, these results are promising. A C2-symmetrical bis-[2]catenane was successfully resolved by column chromatography using a chiral stationary phase. Thus it should be possible to separate a larger amount to obtain pure enantiomers for further studies.

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In dieser Arbeit wurden durch Verwendung eines stereodifferenzierenden Kohlenhydrat-Auxiliars chirale Stickstoffheterocyclen und enantiomerenreine Piperidin-Alkaloide synthetisiert. Alkaloide mit einer Piperidin-Grundstruktur sind in der Natur weit verbreitet und weisen vielfältige biologische Aktivitäten auf. Zusammen mit synthetischen Derivaten sind sie daher von großem Interesse für die Wirkstoffforschung. Mit dem aus D-Arabinose zugänglichen 2,3,4-Tri-O-pivaloyl-D-arabinosylamin wurden mit hoher Stereoselektivität N-Glycosyl-dehydropiperidinone aufgebaut, die vielfältig modifizierbare Ausgangsverbindungen zur Synthese unterschiedlich substituierter Stickstoffheterocyclen darstellen. In einer Vielzahl vor allem metallorganischer Reaktionen waren regio- und stereoselektive Derivatisierungen an allen Positionen der N-glycosidisch gebundenen Dehydropiperidinone möglich. Durchgeführt wurden z. B. die Addition aktivierter Cuprate, elektrophile Substitutionen, Reduktionen, Iod-Magnesium-Austausch sowie palladium- und kupferkatalysierte Kupplungen. Die Kombination dieser Methoden führte zu mehrfach substituierten Piperidinen. In einer Ringschlussmetathese wurde zudem ein Zugang zu bicyclischen Heterocyclen geschaffen. Das Kohlenhydrat-Auxiliar steuert den stereochemischen Verlauf der Bildung der Dehydropiperidinone und der daran durchgeführten Funktionalisierungen. Die Konfigurationen der neu gebildeten Stereozentren wurden mittels Röntgenstrukturanalysen und NMR-Spektroskopie sowie durch die Überführung der Piperidin-Derivate in Alkaloide mit bekanntem Drehwert ermittelt. Die Stickstoffheterocyclen können nach Entfernen der Enamin-Doppelbindung durch milde Acidolyse vom Kohlenhydrat-Auxiliar abgespalten werden, wodurch man die enantiomerenreinen Alkaloide erhält.

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Selektine sind eine Gruppe von Transmembranglycoproteinen, welche als Adhäsionsmoleküle innerhalb des vaskulären Systems Zelladhäsionsprozesse zwischen Leukozyten und Endothelzellen vermitteln. Das Sialyl-Lewisa Epitop und verwandte Kohlenhydratstrukturen wurden als Liganden der E- und P-Selektine identifiziert. Durch die chemische Synthese verwandter Strukturen verspricht man sich, die im Laufe inflammatorischer Prozesse exprimierten Rezeptoren gezielt blockieren zu können und dadurch pathologische Abläufe wie hämatogene Metastasierungen oder Abstoßungsreaktionen zu bekämpfen. Einige Bereiche der Aminosäuresequenz des E-Selektin-Ligand-1 (ESL-1) treten hochkonservativ auch in anderen Selektinliganden wie MG160 oder PSGL-1 auf und wurden deshalb für die N-Glycosylierung mit einem sulfatierten Oligosaccharid ausgewählt (11). -Val665-Glu-Cys-Arg-Asp-Ile-Val-Gly-Asn(Sulfo-Lea)-Leu-Tyr-Glu-Leu-Glu-Ser-Glu-Asp-Ile682- 11 Im ersten Teil der Arbeit wurde eine Strategie ausgearbeitet, das sulfatierte Trisaccharid 60 im Multigrammaßstab zu synthetisieren. Der endogene Ligand 2 wurde an drei Positionen modifiziert: Austausch der α-L-Fucose gegen die biologisch stabilere α-D-Arabinose, Einführung einer Sulfatgruppe anstelle der N-Acetylneuraminsäure sowie Übergang von O- zu N-glykosidischer Verknüpfung. Die hochregioselektive Einführung der Sulfatgruppe gelingt in sehr guten Ausbeuten durch Vorkomplexierung mit Dibutylzinnoxid und anschließende Umsetzung mit Schwefeltrioxid/Trimethylamin. Durch die Verwendung des anomeren Azids als permanente Schutzgruppe kann das Trisaccharid nach schonender Reduktion zum Amin an ein Asparaginsäurederivat angekuppelt und in einer linearen Synthese nach Fmoc-Strategie als N-Glycosylaminosäure in die Synthese eingebracht werden. Das in der Arbeitsgruppe Kunz entwickelte PTMSEL-Ankersystem 20a erlaubt sowohl die problemlose Synthese als auch die Abspaltung vom polymeren Träger unter sehr milden Bedingungen. Nach dem Entfernen der Benzylester und -ether durch Pd(0) – katalysierte Hydrierung können sulfatierte Glycopeptidsequenzen des Typs 11 über NMR-Spektroskopie (korrelierte Spektren) und Massenspektroskopie (ESI, MALDI) identifiziert werden.

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Es wurden drei Ansätze zur Totalsynthese von Fungerin verfolgt, dessen charakteristisches Strukturmerkmal ein N-methylierter in 4,5-Position disubstituierter Imidazolkern ist. Zunächst wurde ein Syntheseweg eingeschlagen, bei dem die Bildung des Imidazolrings nach Marckwald erfolgte. Das hierfür benötigte α-Aminoketon wurde in einer konvergenten Synthesesequenz aus zwei Bausteinen zusammengesetzt. Die anschließende Ringschlussreaktion mit Kaliumthiocyanat lieferte ein Thioimidazolderivat, welches erfolgreich zum angestrebten Zielmolekül entschwefelt werden konnte. Die Gesamtausbeute betrug 8,1 % über sieben Stufen. In einem zweiten Syntheseweg wurde ein in 4- und 5-Position orthogonal geschütztes Imidazolderivat synthetisiert, um eine höhere Flexibilität bei geplanten Strukturvariationen der Seitenketten zu erreichen. Nach sequentieller Entschützung und Funktionalisierung sollten verschiedene Substituenten angebracht werden. Die Bildung des Imidazolkerns erfolge über eine Kondensationsreaktion von Methylamin mit einem N-formylierten α-Aminoketon, welches über eine Claisen-Kondensation erhalten wurde. Die zur Einführung der C5-Seitenkette geplante Grignard- bzw. Schlosser-Fouquet-Kupplung erwies sich als nicht zuverlässig reproduzierbar. In der Folge wurde in einer dritten Synthesesequenz ein Imidazolderivat mit zwei unterschiedlichen Anknüpfungspunkten in 4- und 5-Position synthetisiert. Dadurch war es möglich über Julia-Kocienski Olefinierungen verschiedene Seitenketten in 5-Position anzubringen. In 4-Position erfolgte die Einführung über Heck-Kupplungen. Insgesamt konnten so, neben Fungerin, noch sieben weitere Fungerinderivate erhalten werden.

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The development of procedures for the iridium catalyzed C-H borylation of 1-aryl pyrazolopyrimidines and 1-aryl indazoles is reported. Investigation on the activity of the catalyst revealed the combination of an iridium (I) precursor and tetramethylphenantroline as the best catalytic system. Moreover, the procedures are regioselective resulting in the selective borylation of different C-H bonds within the substrates. The application of C-H borylation to late stage functionalization is demonstrated: a biologically active compound in AstraZeneca's project underwent tandem borylation/oxidation reaction, in order to obtain a functionalized product containing an OH group.

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NSC686288 [aminoflavone (AF)], a candidate chemotherapeutic agent, possesses a unique antiproliferative profile against tumor cells. Metabolic bioactivation of AF by drug-metabolizing enzymes, especially CYP1A monooxygenases, has been implicated as an underlying mechanism for its selective cytotoxicity in several cell culture-based studies. However, in vivo metabolism of AF has not been investigated in detail. In this study, the structural identities of 13 AF metabolites (12 of which are novel) in mouse urine or from microsomal incubations, including three monohydroxy-AFs, two dihydroxy-AFs and their sulfate and glucuronide conjugates, as well as one N-glucuronide, were determined by accurate mass measurements and liquid chromatography-tandem mass spectrometry fragmentation patterns, and a comprehensive map of the AF metabolic pathways was constructed. Significant differences between wild-type and Cyp1a2-null mice, within the relative composition of urinary metabolites of AF, demonstrated that CYP1A2-mediated regioselective oxidation was a major contributor to the metabolism of AF. Comparisons between wild-type and CYP1A2-humanized mice further revealed interspecies differences in CYP1A2-mediated catalytic activity. Incubation of AF with liver microsomes from all three mouse lines and with pooled human liver microsomes confirmed the observations from urinary metabolite profiling. Results from enzyme kinetic analysis further indicated that in addition to CYP1A P450s, CYP2C P450s may also play some role in the metabolism of AF.

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An alternate approach to densely substituted quinolines from the products of SN2 nucleophilic substitution reaction between the acetyl derivatives of the Baylis-Hillman adducts obtained from 2-nitrobenzaldehydes and the carbonyl group containing carbon nucleophiles is described. Treatment of these compounds with SnCl2, trigger a tandem reaction wherein reduction of the nitro group is followed by a remarkably regioselective intramolecular cyclization and subsequent dehydrogenation to afford 4-(substituted vinyl)-quinolines.

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A novel and efficient regioselective synthesis of various arylated highly congested 7-aryl-5-methylsulfanylindan-4-carbonitriles (3a-(), methyl 7-aryl-5-methylsulfanylindan-4-carboxylates (lOa-e) and 7-aryl-5-methylsulfanylindan-4-carboxylic acids (lla-e) through base-catalyzed reaction of 6-aryl-4-methylsulfanyl-2-oxo-2H-pyran-3-carbonitriles (la-() and methyl 6-aryl-4-methylsulfanyl-2-oxo-2Hpyran-3-carboxylates (9a-e) by cyclopentanone (2) has been delineated. The synthetic potential of 2-pyranone was explored further to generate mo'iecular diversity using 6-aryl-4-secamino- 2-oxo-2H-pyran-3-carbonitriles (7a-h), 5,6-diaryl-4-methylsulfanyl-2-oxo2H-pyran-3-carbonitriles (Sa,b) and methyl 5,6-diaryl-4- methylsulfanyl-2-oxo-2H-pyran-3-carboxylates (12a,b) as precursors for the ring transformation by cyclopentanone to assess the effects of substituents on the course of the reaction to obtain highly congested indans, 6,7diaryl-5-methylsulfanylindan-4-carbonitriles (6a,b), 7-aryl-5-(piperidin-I-yl)indancarbonitriles (8a-h) and methyl 6,7-4- diaryl-5-methylsulfanylindan-4-carboxylate 13a,b).

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The fluorinated olefinic peptide nucleic acid (F-OPA) system was designed as a peptide nucleic acid (PNA) analogue in which the base carrying amide moiety was replaced by an isostructural and isoelectrostatic fluorinated C-C double bond, locking the nucleobases in one of the two possible rotameric forms. By comparison of the base-pairing properties of this analogue with its nonfluorinated analogue OPA and PNA, we aimed at a closer understanding of the role of this amide function in complementary DNA recognition. Here we present the synthesis of the F-OPA monomer building blocks containing the nucleobases A, T, and G according to the MMTr/Acyl protecting group scheme. Key steps are a selective desymmetrization of the double bond in the monomer precursor via lactonization as well as a highly regioselective Mitsunobu reaction for the introduction of the bases. PNA decamers containing single F-OPA mutations and fully modified F-OPA decamers and pentadecamers containing the bases A and T were synthesized by solid-phase peptide chemistry, and their hybridization properties with complementary parallel and antiparallel DNA were assessed by UV melting curves and CD spectroscopic methods. The stability of the duplexes formed by the decamers containing single (Z)-F-OPA modifications with parallel and antiparallel DNA was found to be strongly dependent on their position in the sequence with T(m) values ranging from +2.4 to -8.1 degrees C/modification as compared to PNA. Fully modified F-OPA decamers and pentadecamers were found to form parallel duplexes with complementary DNA with reduced stability compared to PNA or OPA. An asymmetric F-OPA pentadecamer was found to form a stable self-complex (T(m) approximately 65 degrees C) of unknown structure. The generally reduced affinity to DNA may therefore be due to an increased propensity for self-aggregation

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We describe the synthesis of (5 S )-5- C -butylthymidine ( 5a ), of the (5 S )-5- C -butyl- and the (5 S )-5- C -isopentyl derivatives 16a and 16b of 2-deoxy-5-methylcytidine, as well as of the corresponding cyanoethyl phosphoramidites 9a , b and 14a , b , respectively. Starting from thymidin-5-al 1 , the alkyl chain at C(5) is introduced via Wittig chemistry to selectively yield the ( Z )-olefin derivatives 3a and 3b ( Scheme 2 ). The secondary OH function at C(5) is then introduced by epoxidation followed by regioselective reduction of the epoxy derivatives 4a and 4b with diisobutylaluminium hydride. In the latter step, a kinetic resolution of the diastereoisomer mixture 4a and 4b occurs, yielding the alkylated nucleoside 2a and 2b , respectively, with (5 S )-configuration in high diastereoisomer purity (de=94%). The corresponding 2-deoxy-5-methylcytidine derivatives are obtained from the protected 5-alkylated thymidine derivatives 7a and 7b via known base interconversion processes in excellent yields ( Scheme 3 ). Application of the same strategy to the purine nucleoside 2-deoxyadenine to obtain 5- C -butyl-2-deoxyadenosine 25 proved to be difficult due to the sensitivity of the purine base to hydride-based reducing agents ( Scheme 4 ).