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Dienyl silyl ethers

The synthesis of the C1-C9 fragment 120 began with an auxiliary controlled aldol reaction of the chloroacetimide 121, where chlorine is present as a removable group to ensure high diastereoselectivity in what would otherwise have been a non-selective addition (Scheme 9-39). The Lewis acid-catalyzed, Mukaiyama aldol reaction of dienyl silyl ether 122 with / -chiral aldehyde 123 proceeded with 94%ds, giving the 3-anti product 124, as predicted by the opposed dipoles model [3]. Anti reduction of the aldol product and further manipulation then provided the C1-C9 fragment 120 of the bryostatins. [Pg.271]

In the previous synthesis, two asymmetric aldol reactions using dienyl silyl ethers were described, one using a chiral Lewis acid for stereoinduction while the other used substrate control from a chiral aldehyde. This can be compared with the use of chiral dienolate 131 in the synthesis of a Ci-Cie fragment of the bryo-statins (Scheme 9-41) [59J. Here, the menthyl-derived auxiliary is covalently attached to the enolate, and again an excellent level of asymmetric induction was achieved on addition to aldehyde 132 to give adduct 133. [Pg.272]

Dichlorocarbene addition of dienyl silyl ether 3 gave 4, which upon treatment with acid rearranged to a-chlorodienone 5 in 73% yield. ... [Pg.2348]

As mentioned earlier, metal complexation not only allows isolation of the QM derivatives but can also dramatically modify their reactivity patterns.29o-QMs are important intermediates in numerous synthetic and biological processes, in which the exocyclic carbon exhibits an electrophilic character.30-33 In contrast, a metal-stabilized o-QM can react as a base or nucleophile (Scheme 3.16).29 For instance, protonation of the Ir-T 4-QM complex 24 by one equivalent of HBF4 gave the initial oxo-dienyl complex 25, while in the presence of an excess of acid the dicationic complex 26 was obtained. Reaction of 24 with I2 led to the formation of new oxo-dienyl complex 27, instead of the expected oxidation of the complex and elimination of the free o-QM. Such reactivity of the exocyclic methylene group can be compared with the reactivity of electron-rich enol acetates or enol silyl ethers, which undergo electrophilic iodination.34... [Pg.78]

By 1903, Emil Fischer had already appreciated that a proximate nucleophile can accelerate the rate of cleavage of an otherwise unreactive amide. Adaptation of such neighbouring group participation to relay deprotection is easy all that is required is a protecting group with a latent hydroxyl or amino function within easy bonding distance of the amide carbonyl, as illustrated in Scheme 8.27 by the reduction of the o-nitrophenylacetamide 27,1. The theme is capable of extensive variation. For example, 2-((/er/-butyldiphenylsilyloxy)methyl]benz-amides (27.2), 2-(acetoxymethyl)benzamides (273) and 3-methyl-3-(2,4,5-tri-methyl-3,6-dioxo-cycIohexa-l,4-dienyl) butyramides (27.4) all have latent hydroxyl nucleophiles that are released by silyl ether cleavage, ester hydrolysis and quinone reduction, respectively. [Pg.501]

The tricarbonylcyclohexadienyliumiron salts (32) are synthetically equivalent to substituted phenyl cations/ and react with silyl enol ethers to give, after decomplexation, the a-(cyclohexa-l,3-dienyl) ketones, which are readily oxidized to a-aryl ketones. 2-Substituted cyclopent-2-enones can be prepared from the salts and l,2-bis(trimethyIsilyloxy)cyclopentene (Scheme 52).A... [Pg.93]

Addition of nucleophiles to alkene ligands of cationic dicarbonyl(cyclopenta-dienyl)iron complexes provides access to alkyl-Fp complexes (Scheme 4-20). Nucleophilic reagents may be enolates, silyl enol ethers, or organocuprates. ... [Pg.568]


See other pages where Dienyl silyl ethers is mentioned: [Pg.281]    [Pg.323]    [Pg.177]    [Pg.281]    [Pg.323]    [Pg.177]    [Pg.459]    [Pg.995]    [Pg.670]    [Pg.284]   
See also in sourсe #XX -- [ Pg.281 , Pg.284 ]




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