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Pyridines Tetrahydropyridines

Dihydro- and 1,4-dihydro derivatives are formed as intermediates in the reduction of quaternary pyridine salts and their homologues with sodium borohydride or formic acid. A proton is added to the present enamine grouping and the formed immonium salts are reduced to the l-methyl-l,2,5,6-tetrahydropyridine derivatives (157) and to completely saturated compounds (158) (254) (Scheme 14). [Pg.288]

Quatemization of pyridine derivatives 271 with methyl iodide in acetone gave salts, which were reduced with sodium borohydride to tetrahydropyridines 272... [Pg.153]

Alkyl-1,4-dihydropyridines on reaction with peracids undergo either extensive decomposition or biomimetic oxidation to A-alkylpyridinum salts (98JOC10001). However, A-methoxycarbonyl derivatives of 1,4- and 1,2-dihydro-pyridines (74) and (8a) react with m-CPBA to give the methyl tmns-2- 2>-chlorobenzoyloxy)-3-hydroxy-1,2,3,4-tetrahydropyridine-l-carboxylate (75) and methyl rran.s-2-(3-chlorobenzoyloxy)-3-hydroxy-l,2,3,6-tetrahydropyridine-l-carboxylate (76) in 65% and 66% yield, respectively (nonbiomimetic oxidation). The reaction is related to the interaction of peracids with enol ethers and involves the initial formation of an aminoepoxide, which is opened in situ by m-chlorobenzoic acid regio- and stereoselectively (57JA3234, 93JA7593). [Pg.285]

A different set of tautomeric tetrahydropyridines was obtained on partial hydrogenation of 2-alkoxy-3-acylpyridines 25 on PtOa or Pd/C catalyst (Scheme 9) (79JHC939). The tetrahydropyridines 26 formed exist exclusively as single tautomers, the type of tautomer, however, being determined by the substitution in the pyridine ring. [Pg.260]

Azadienes undergo Diels-Alder reactions to form pyridine, dihydro- and tetrahydropyridine derivatives. N-Vinyl lactim ethers undergo Diels-Alder reactions with a limited set of dienophiles. " Thioketones react with dienes to give Diels-Alder cycloadducts. The carbonyl group of lactams have also been shown to be a dienophile. Certain heterocyclic aromatic rings (among them furans) can also behave as dienes in the Diels-Alder reaction. Some hetero dienes that give the reaction are -C=C-C=0, 0=C-C=0, and N=C-C=N. ... [Pg.1075]

The combination of PhMeSiH2 (or Ph2SiH2) and Cp2TiMe2 (10 mol%) reduces pyridines to N-silylated-di- or tetrahydropyridines or the N-silylated piperidines.264,265 With quinoline, only the pyridine ring is reduced preferentially to the benzene ring (Eq. 121). [Pg.49]

Michael addition of (benzotriazol-l-yl)acetonitrile 557 to a,[)-unsatu rated ketones followed by heterocyclization provides new means for preparation of 2,4,5-trisubstituted pyridines. The reaction is catalyzed by bases. In the presence of secondary amines, a nucleophilic attack of amine on the CN group in adduct 556 initiates the cyclization to tetrahydropyridine 558 that subsequently eliminates water and benzotriazole to give pyridine 559. Analogously, in the presence of NaOH, pyridone 560 forms, via intermediate 561 (Scheme 88) <1997JOC6210>. [Pg.66]

The direct preparation of pyridinium salts (35) from acyclic starting materials 33 and 34 was reported by Adamczyk and co-workers <00TA2289>. Pyridinium salts have also been used to form other heterocyclic ring systems such as imidazolo[l,2-a]pyridines as reported by Katritzky <00JOC9201>. A final report worthy of comment is the preparation of chiral 2,6-disubstituted tetrahydropyridines via chiral pyridinium salts . [Pg.243]

As six-membered heterocycles are present in a number of natural products and biologically important molecules, solid-phase synthesis of these has been reported very often (Fig. 3.9). Solid-phase synthesis for nearly every six-membered ring including one nitrogen atom are known piperidines (272) [376], tetrahydropyridines (273) [377, 378], dihydropyridines (274) [219, 379, 380], pyridines (275) [349, 381-386], (Scheme 3.37), piperidinones (276) [387], dihydropyridones (277-279) [313, 378, 388-390], pyridinones (280-281) [328, 329] and piperidindiones (282) [391] derivatives. In contrast, the synthesis of six-membered rings with one single oxygen is rarely described. Nevertheless, solid-phase synthesis of dihydropyrans (283-284) [392-394] and tetrahydropyrans (285) [335, 336] has been reported. [Pg.181]

Pyridine and its homologs can be reduced completely to hexahydro derivatives, or partially to dihydro- and tetrahydropyridines. Catalytic hydrogenation is faster than with the corresponding benzene derivatives and gives only completely hydrogenated products. Partial reduction can be achieved by different methods (pp. 55, 56). [Pg.54]

Electrolytic reduction using a lead cathode in 20% sulfuric acid converted pyridine a-carboxaldehyde to a mixture of 41% of a-picoline, 25% of a-pipecoline and 11% of 2-methyl-1,2,3,6-tetrahydropyridine [443]. [Pg.101]

Electron transfer reduction of pyridines in both acid and alkaline solution generates the protonated radical-anion. This rapidly accepts a further electron and a proton to give a mixture of dihydropyridines. Enamine structures in these dihydro-pyridines can tautomerise to the imine, which is more readily reduced than the original pyridine molecule. Further reaction of the 1,4-dihydropyridine leads to piperidine while reduction of the t, 2-dihydropyridine leads to a tetrahydropyridine in which the alkene group cannot tautomerise to the imine and which is not therefore reduced to the piperidine stage. The reaction sequence is illustrated for 2,6-dimethyl-pyridine 18 which yields the thermodynamically favoured cis-2,6-dimethylpiperidine in which the two alkyl substituents occupy equatorial conformations. [Pg.248]


See other pages where Pyridines Tetrahydropyridines is mentioned: [Pg.303]    [Pg.320]    [Pg.303]    [Pg.320]    [Pg.207]    [Pg.692]    [Pg.43]    [Pg.10]    [Pg.186]    [Pg.260]    [Pg.278]    [Pg.286]    [Pg.290]    [Pg.308]    [Pg.19]    [Pg.828]    [Pg.118]    [Pg.189]    [Pg.797]    [Pg.321]    [Pg.342]    [Pg.144]    [Pg.126]    [Pg.755]    [Pg.610]    [Pg.124]    [Pg.290]    [Pg.1527]    [Pg.55]    [Pg.110]    [Pg.113]    [Pg.248]    [Pg.98]    [Pg.333]    [Pg.593]    [Pg.44]   
See also in sourсe #XX -- [ Pg.204 , Pg.207 ]




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6- -2,3,4,5-tetrahydropyridin

Tetrahydropyridines

Tetrahydropyridines, from pyridine

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