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Functionally substituted dihydropyran

Aiming at the pyranose form of sugars, normal type hetero-Diels-Alder reactions were extensively used for the synthesis of functionally substituted dihydropyran and tetrahydropyran systems (5-10) (see routes A - D in the general Scheme 1) which are also important targets in the "Chiron approach" to natural product syntheses (2.) Hetero-Diels-Alder reactions with inverse electron demand such as a, p-unsaturated carbonyl compounds (l-oxa-1,3-dienes) as heterodienes and enol ethers as hetero-dienophiles, are an attractive route for the synthesis of 3,4-dihydro-2H-pyrans (11). [Pg.183]

In the case of terminal alkynes having oxygenated functions in the linear chain (Scheme 10, route D), Martin, Padron, and coworkers found that homopropargylic alcohols reacted properly, yielding 2-substituted dihydropyrans as sole products, probably via a Prins-type cyclization. This cyclization provides a new approach toward 2-alkyM-halo-5,6-dihydro-2//-pyrans through a concomitant C-C and C-O bond formation (Scheme 21) [35]. [Pg.16]

Fig. 7. Oxepine isomers 134-136 that vary as to which ring C—C bond is unsaturated the substituted dihydropyran 137 possesses the enol ether functionality of a glycal, akin to oxepine 136. Fig. 7. Oxepine isomers 134-136 that vary as to which ring C—C bond is unsaturated the substituted dihydropyran 137 possesses the enol ether functionality of a glycal, akin to oxepine 136.
Cyclobutenes possessing an angular O-functionality, obtained from a Lewis acid-mediated [2+2] cycloaddition of cyclic silyl enol ethers to ethyl propynoate and subsequent reduction and butenylation, undergo a ring-opening metathesis that produces a substituted dihydropyran that forms part of a c -diene. After desilylation, an oxy-Cope rearrangement leads to the fused tetrahydropyran 4 <03JA14901>. [Pg.407]

The 6-substituted 1,4-dioxocins can be used to prepare other 6-substituted derivatives by simple functional group transformations.4,8,9 Especially interesting is the synthesis of the 4/7-4-oxo-2,3-dihydropyran-2-yl-substituted derivative 16 from l,4-dioxocin-6-carbaldehyde (15) by a cyclocondcnsation with Danishefsky s diene.9 Dehydrogenation of 16 yields 2 which can be isomerized to the corresponding isomeric. sr/i-benzene dioxide 3 (X = 4/f-4-oxopyran-2-yl), which is identical with and proved the structure of the naturally occurring antibiotic LL-Z 1220.10... [Pg.564]

Unsaturated tetrahydropyran derivatives have received only cursory attention in the literature as heterocyclic monomers. 2,3-Dihydropyran and several of its substituted derivatives apparently undergo cationic polymerization in a manner typical of vinyl ethers (72MI11103), while tetrahydropyranyl esters of methacrylic acid (123) are fairly typical free radically polymerizable monomers (Scheme 35) (74MI11105). The THP group was used in this study as a protecting group for the acid functionality, and it was found that deprotection of polymers (124) could be accomplished under extremely mild conditions. [Pg.287]

The /S-bromodihydropyran (652) on halogen-metal exchange with f-butyllithium affords a useful organometallic (653) that can function as the equivalent of a 5-hydroxy aldehyde enolate (Scheme 151) (79TL67). The vinyllithium species adds to ketones and aldehydes at -110 °C in good yield and also reacts in a conjugate mode with a,/S-unsaturated carbonyl compounds in the presence of copper(I) ions. On hydrolysis and oxidation, the dihydropyran component (654) can be transformed into a substituted 5-lactone (655). [Pg.474]

A nickel catalyst allows reaction between (1) and an enol phosphate, silyl enol ether, or substituted dihydrofurans and dihydropyrans to afford allylsilanes. Additional functionality can be tolerated in the substrate. ... [Pg.668]


See other pages where Functionally substituted dihydropyran is mentioned: [Pg.346]    [Pg.75]    [Pg.288]    [Pg.72]    [Pg.787]    [Pg.13]    [Pg.125]    [Pg.30]    [Pg.70]    [Pg.787]    [Pg.249]    [Pg.959]    [Pg.345]   


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