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Michael Mukaiyama

Methyl 1-phenylthiovinyl ketones can also be used as enones in kinetically controlled Robinson annulation reactions, as illustrated by Entry 6. Entry 7 shows a annulation using silyl enol ether as the enolate equivalent. These reactions are called Mukaiyama-Michael reactions (see Section 2.6.3). [Pg.138]

Conditions for effecting conjugate addition of neutral enolate equivalents such as silyl enol ethers in the presence of Lewis acids have been developed and are called Mukaiyama-Michael reactions. Trimethylsilyl enol ethers can be caused to react with electrophilic alkenes by use of TiCl4. These reactions proceed rapidly even at -78° C.308... [Pg.190]

Initial stereochemical studies suggested that the Mukaiyama-Michael reaction proceeds through an open TS, since there was a tendency to favor anti diastereoselec-tivity, regardless of the silyl enol ether configuration.312... [Pg.191]

Scheme 2.7. Domino Mukaiyama/Michael/aldol reactions catalyzed by Sml2(THF)2. Scheme 2.7. Domino Mukaiyama/Michael/aldol reactions catalyzed by Sml2(THF)2.
Sc(OTf)3 is effective for Mukaiyama-Michael reactions under extremely mild conditions to give the corresponding 1,5-dicarbonyl compounds in high yields after acidic work-up (Scheme 10). 8... [Pg.403]

Many examples of asymmetric reactions catalyzed by copper complexes with chiral ligand systems have been reported. In particular, various copper-bis(oxazoline) catalysts (e.g., complexes (H) to (L), Scheme 48) are effective for carbon-carbon bond-forming reactions such as aldol,204 Mukaiyama-Michael, Diels-Alder,206 hetero Diels-Alder,207,208 dipolar cycloaddition,209,210... [Pg.420]

In SiCl4-mediated Mukaiyama-Michael reactions, an electron-transfer mechanism is proposed for the case in which ketene silyl acetals bearing less hindered silyl substituent are used as substrates.342-344 As shown in Scheme 82, ketene silyl acetals having more substituents at the /3-position are much more reactive. [Pg.435]

L2909>. An organocatalytic addition of 2-trimethylsilyloxyfuran to aldehydes using 10 mol% of l,3-bis(3-(trifluoromethyl)phenyl)urea provided adducts with modest threo selectivity <06TL8507>. A syn-selective, enantioselective, organocatalytic vinylogous Mukaiyama-Michael addition of 2-trimethylsilyloxyfuran to (E)-3-... [Pg.178]

Silylketene acetals and enolsilanes can also undergo conjugate addition to a,/ -unsaturated carbonyl derivatives. This reaction is referred to as the Mukaiyama-Michael addition and can also be used as a mild and versatile method for C-C bond formation. As shown in Scheme 8-34, in the presence of C2-symmetric Cu(II) Lewis acid 94, asymmetric conjugate addition proceeds readily, giving product with high yield and enantioselectivity.75... [Pg.478]

An impressive example for the successful use of domino reactions for the synthesis of pharmacological lead structures was described by Paulsen et al1241 Recently, the difluoro compound 57 has been identified as highly potent inhibitor of the cholesterin-ester-transferprotein (CETP), which is responsible for a transfer of cholesterin from high-density lipoprotein (HDL) to low-density lipoprotein (LDL). This clearly results in an increase of LDL and a decrease of HDL which raise the risk of coronary heart desea-ses. The core structure of 57 is now accessible efficiently by a combination of a Mukaiyama-MichaeL... [Pg.46]

Mukaiyama Michael reactions of alkylidene malonates and enolsilanes have also been examined (244). The stoichiometric reaction between enolsilane (342a) and alkylidene malonate (383) proceeds in high selectivity however, catalyst turnover is not observed under these conditions. The addition of HFIP effectively promotes catalyst turnover, presumably by protonation and silyl transfer from the putative copper malonyl enolate generated in this reaction. The reaction proved general for bulky P-substituents (aryl, branched alkyl), Eq. 209. [Pg.124]

A catalytic asymmetric amination reaction has been developed using Cu(2+) catalysts (246). The azodicarboxylate derivative 392 reacts with enolsilanes in the presence of catalyst 269c to provide the adducts in high enantioselectivity, Eq. 213. As observed in the Mukaiyama Michael reactions, alcoholic addends proved competent in increasing the rate of this reaction. Indeed, in the presence of tri-fluoroethanol as additive, the reaction time decreases from 24 to 3 h. [Pg.127]

Similar to the Mukaiyama Michael reaction, the amination is believed to proceed through a hetero-Diels-Alder manifold. The dihydrooxadiazene 397 intermediate is observed by in situ IR spectroscopy and assigned its structure based on a characteristic C=N stretch at 1687 cm-1 (246). This intermediate decomposes in the presence of the alcohol providing the amination adduct. [Pg.127]

It is significant to note that this reaction is highly unusual since the prochiral element resides entirely on the nucleophile. The chiral Lewis acid exerts control of en-antiofacial selectivity by proctor through tight control of the presumed heterocycloaddition transition state, Scheme 27. In effect, extremely high fidelity is necessary to orient the 2n component with respect to the 4ji component coordinated to the chiral Lewis acid. The factors that control the diastereoselectivity in the Mukaiyama Michael reaction of crotonylimides could also control enantioselectivity in the amination reaction. That selectivities on the order of 99% ee are observed in this reaction is testament to the level of control exerted by these catalysts. [Pg.127]

The elfectiveness of imidazolidinone of type 11 was confirmed by successful application to a broad range of chemical transformations, including cycloadditions, conjugate additions, Friedel-Crafts alkylations, Mukaiyama-Michael additions, hydrogenations, cyclopropanations, and epoxidations. A summary of these enantio-selective iminium catalyzed processes is provided by reaction subclass. [Pg.321]

Friedel-Crafts Alkylations and Mukaiyama-Michael Reactions The metal-catalyzed addition of aromatic substrates to electron-deficient a- and 7i-systems, commonly known as Friedel-Crafts alkylation, has long been established as a powerful strategy for C-C bond formation. Surprisingly, however, relatively... [Pg.322]

MacMillan reported a short and effective synthesis of spiculisporic acid which elegantly exemplified his Mukaiyama-Michael addition of silyloxyfurans to a,P-unsatu-rated aldehydes [88], Robichaud and Tremblay augmented this in a formal synthesis of compactin [224], Within this report it was shown that low enantioselectivities were obtained in the conjugate addition to aCTolein. Use of p-silyl acrolein 177 circumvented this and gave butenohde 178 in 95% yield and 82% ee. Conversion of adduct 178 to the decaUn (179) in eight steps resulted in a formal synthesis (Scheme 71). [Pg.335]

Scheme 71 Iminium ion catalysed Mukaiyama-Michael reaction in the synthesis of compactin... Scheme 71 Iminium ion catalysed Mukaiyama-Michael reaction in the synthesis of compactin...
Figure 9.73. Enantioselective Mukaiyama-Michael addition of enolsilanes. TABLE 9.39. CYCLOPROPANATIONS WITH SULEUR YLIDES"... Figure 9.73. Enantioselective Mukaiyama-Michael addition of enolsilanes. TABLE 9.39. CYCLOPROPANATIONS WITH SULEUR YLIDES"...
The titanium(IV) chloride-catalyzed conjugate addition of enol silyl ethers (182) to (184) and (189 Scheme 30), and silyl ketene acetals, (191) to (194), to ot, 3-enones is die key feature in various synthetic strategies (Mukaiyama-Michael) (Scheme 31).78 79 In contrast to the earlier described enolate addition... [Pg.158]

Mukaiyama-Michael addition of a chiral ketene acetal to nonprochiral vinyl ketones gives products of 72-75% ee.145 A chirally modified glycine derivative (Schiff-base) adds to vinylic phosphorus compounds to yield, after hydrolysis, products with 54-85% ee.146 Another chiral glycine equivalent was used for the preparation of homochiral proline derivatives via diastereoselective addition to a,3-unsatu-rated aldehydes and ketones.147-148... [Pg.218]

The chiral imidazolidinone 45 also catalyzes the Mukaiyama-Michael reaction between 2-silyloxy furans and a,/ -unsaturated aldehydes, affording enantiomeri-cally highly enriched y-butenolides (Scheme 4.18) [33]. For optimum catalytic performance, hydroxyl additives are necessary, and addition of 2 equiv. water proved best. [Pg.60]

Paulsen, H., Antons, S., Brandes, A., et al. (1999) Stereoselective Mukaiyama-Michael/Michael/Aldol domino cyclization as the key step in the synthesis of penta-substituted arenes an efficient access to highly active inhibitors of cholesteryl ester transfer protein (CETP). Angew. Chem. Int. Ed. 38, 3373-3375. [Pg.23]

A highly enantioselective Mukaiyama-Michael addition of silyl ethers, CH2= C(OSiMe3)R1, to a,/9-unsaturated aldehydes, R2CH=CHCHO, catalysed by MacMillan s chiral imidazolidinone (150), in the presence of 2,4-(N02)2C6H3C02H as an acid... [Pg.323]

Mukaiyama-Michael reaction1 (13, 339-340 14, 344-345). The conjugate addition of enol silyl ethers of optically active ketones to a,(i-enones catalyzed by trityl perchlorate can proceed with high diastereoselectivity. Thus the (Z)-enol silyl ether (2) of the ketone (R)-l reacts with enone 3 to give the 1,5-ketone 4 with high... [Pg.375]


See other pages where Michael Mukaiyama is mentioned: [Pg.401]    [Pg.123]    [Pg.5]    [Pg.405]    [Pg.322]    [Pg.585]    [Pg.254]    [Pg.306]    [Pg.61]   
See also in sourсe #XX -- [ Pg.561 ]




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Conjugate additions Mukaiyama Michael addition

Enantioselective reactions Mukaiyama Michael addition

Enol ethers Mukaiyama Michael reaction

Ethers silyl, Mukaiyama-Michael

Imidazolidinones Mukaiyama-Michael-reactions

Mukaiyama

Mukaiyama Michael addition

Mukaiyama Michael reaction alkylidene malonates

Mukaiyama Michael reaction enolsilanes

Mukaiyama-Michael addition silyl ether

Mukaiyama-Michael aldol condensation

Mukaiyama-Michael aldol reaction

Mukaiyama-Michael lactonization

Mukaiyama-Michael reaction

Mukaiyama-Michael reaction silyl ethers

Mukaiyama-Michael reaction, iminium

Mukaiyama-Michael reactions 2- trimethylsilyloxyfuran

Mukaiyama-Michael reactions mechanisms

Mukaiyama-Michael reactions silylated reagents

Mukaiyama-type Michael addition

Mukaiyama-type Michael reaction

Vinylogous Mukaiyama-Michael addition

Vinylogous Mukaiyama-Michael reaction

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