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Addition reactions ester enolates

There are a number of variations of the condensation reaction of acid derivatives. The reaction between a cyclic ketone having a pendant alkynyl ester unit and tetra-butylammonium fluoride leads to cyclization to a bicyclic alcohol with an exocyclic allene moiety. A chain-extension reaction culminates in acyl addition of an ester enolate. The reaction of a p-keto ester, such as methyl 3-oxobutanote and EtZnCH2k leads to chain extension via a carbenoid-like insertion reaction (p. 803), which reacts with an aldehyde in a second step to give a methyl 3-oxopentanoate derivative with a —CH(OH)R group at C-2 relative to the ester carbonyl. ... [Pg.1355]

With anions such as ester enolate anions, reaction occurs within minutes at -78 °C and the intermediate cyclohexadienyl complex can be observed spectroscopically [103]. The intermediates are exceedingly air sensitive and are generally quenched directly, without purification. In one case, from the addition of 2-lithio-l,3-dithiane, the adduct has been crystallized and fully characterized by X-ray diffraction analysis [103]. Oxidation with excess iodine (at least 2.5 mol-... [Pg.56]

Arylation and vinylation of lithium ester enolates. Addition of -butyllithium lo suspensions of nickeKlI) bromide in THF produces a species that catalyzes substitution of lithium e.ster enolates (prepared with LDA in THF at -78°) by aryl and vinyl halides with retention of configuration. Lithium enolates of a./j-unsaturated esters undergo substitution in this reaction at the y-position (last example). The mechanism of this reaction is not certain. ... [Pg.38]

Because of thetr electron deficient nature, fluoroolefms are often nucleophihcally attacked by alcohols and alkoxides Ethers are commonly produced by these addition and addition-elimination reactions The wide availability of alcohols and fliioroolefins has established the generality of the nucleophilic addition reactions The mechanism of the addition reaction is generally believed to proceed by attack at a vinylic carbon to produce an intermediate fluorocarbanion as the rate-determining slow step The intermediate carbanion may react with a proton source to yield the saturated addition product Alternatively, the intermediate carbanion may, by elimination of P-halogen, lead to an unsaturated ether, often an enol or vinylic ether These addition and addition-elimination reactions have been previously reviewed [1, 2] The intermediate carbanions resulting from nucleophilic attack on fluoroolefins have also been trapped in situ with carbon dioxide, carbonates, and esters of fluorinated acids [3, 4, 5] (equations 1 and 2)... [Pg.729]

The mechanism of the Fiesselmann reaction between methylthioglycolate and a,P-acetylenic esters proceeds via consecutive base-catalyzed 1,4-conjugate addition reactions to form thioacetal Enolate formation, as a result of treatment with a stronger base, causes a Dieckmann condensation to occur providing ketone 8. Elimination of methylthioglycolate and tautomerization driven by aromaticity provides the 3-hydroxy thiophene dicarboxylate 9. [Pg.185]

Tire mechanism of the Claisen condensation is similar to that of the aldol condensation and involves the nucleophilic addition of an ester enolate ion to the carbonyl group of a second ester molecule. The only difference between the aldol condensation of an aldeiwde or ketone and the Claisen condensation of an ester involves the fate of the initially formed tetrahedral intermediate. The tetrahedral intermediate in the aldol reaction is protonated to give an alcohol product—exactly the behavior previously seen for aldehydes and ketones (Section 19.4). The tetrahedral intermediate in the Claisen reaction, however, expels an alkoxide leaving group to yield an acyl substitution product—exactly the behavior previously seen for esters (Section 21.6). The mechanism of the Claisen condensation reaction is shown in Figure 23.5. [Pg.888]

The enolate ion adds in a nucleophilic addition reaction to a second ester molecule, giving a tetrahedral alkoxide intermediate. [Pg.889]

Diels-Alder reaction, 493 El reaction, 391-392 ElcB reaction, 393 E2 reaction, 386 Edman degradation, 1032 electrophilic addition reaction, 147-148. 188-189 electrophilic aromatic substitution, 548-549 enamine formation, 713 enol formation, 843-844 ester hydrolysis, 809-811 ester reduction, 812 FAD reactions. 1134-1135 fat catabolism, 1133-1136 fat hydrolysis, 1130-1132 Fischer esterification reaction, 796 Friedel-Crafts acylation reaction, 557-558... [Pg.1305]

Addition Reactions of Metal Enolates of Non-stabilized Esters, Amides, and Ketones to Epoxides... [Pg.295]

In spite of their intrinsic synthetic potential, addition reactions of metal enolates of non-stabilized esters, amides, and ketones to epoxides are not widely used in the synthesis of complex molecules. Following the seminal work of Danishefsky [64], who introduced the use of Et2AlCl as an efficient catalyst for the reaction, Taylor obtained valuable spiro lactones through the addition reaction of the lithium eno-late of tert-butyl acetate to spiro-epoxides, upon treatment of the corresponding y-... [Pg.295]

The use of nonstabilized carbon nucleophiles in this reaction has been rare. Recently, however, it was shown that lithium ester enolates participate in Pd-cata-lyzed 1,4-additions to cyclic and acyclic vinyloxiranes, affording the corresponding 6-hydroxy-4-enoates in good yields and with complete regioselectivity [117, 118]. [Pg.335]

Ester enolates which contain the chiral information in the acid moiety have been widely used in alkylations (see Section D.1.1.1,3.) as well as in additions to carbon-nitrogen double bonds (sec Section D.1.4.2.). Below are examples of the reaction of this type of enolate with aldehydes720. The (Z)-enolate generated from benzyl cinnamate (benzyl 3-phenylpropcnoate) and lithium (dimethylphenylsilyl)cuprate affords the /h/-carboxylic acid on addition to acetaldehyde and subsequent hydrogenolysis, The diastereoselectivity is 90 10. [Pg.486]

Since /1-lactams can be prepared via reactions of ester enolates with imines, these reactions are of great interest for synthetic and medicinal chemists. The synthesis of naturally occurring antibiotics and other physiologically active //-lactams is an objective of much current work. Though the stereocenters in those reactions are often established by addition of enolates to imines, they are discussed in Section D.1.6.1.3. In this section, only some basic results concerning //-lactams are presented. [Pg.758]

Although the methodology described so far produces <5-oxo esters via diastereoselective enolate additions to enones, the same product may be obtained via an alternate sequence, i.e., addition of ketone or aldehyde enolates to a,j3-unsaturated esters or amides. Enolates of ketones are known to react with a,/ -unsaturated esters to give the Michael adducts50, however, the study of simple diastcrcoselectivity has, so far, been limited to special cases (MIMIRC reactions, Section 1.5.2.4.4.). [Pg.959]

Closely related to enolate additions to enones is the diastereoselective 1,4-addition of lithium enolates of esters, thioesters and amides to a,/ -unsaturated esters. These reactions provide syn-or ar /-2,3-disubstituted glutarates (pentanedioates). [Pg.960]


See other pages where Addition reactions ester enolates is mentioned: [Pg.532]    [Pg.59]    [Pg.70]    [Pg.3320]    [Pg.136]    [Pg.136]    [Pg.3319]    [Pg.136]    [Pg.385]    [Pg.525]    [Pg.261]    [Pg.199]    [Pg.87]    [Pg.304]    [Pg.32]    [Pg.34]    [Pg.454]    [Pg.472]    [Pg.478]    [Pg.995]    [Pg.73]   
See also in sourсe #XX -- [ Pg.4 , Pg.106 , Pg.107 , Pg.108 , Pg.109 , Pg.110 ]




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Additives esters

Butyric acid, 2-amino-4-phosphonosynthesis via intramolecular ester enolate addition reactions

Enol esters

Enol esters reaction

Enolate Additions

Enolates addition reactions

Enolates enol esters

Enols addition reactions

Ester enolate

Esters addition reactions

Esters enolates

Esters enolization

Phosphinothricin via intramolecular ester enolate addition reactions

Y-Keto esters via ester enolate addition reactions

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