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Imine reaction with boronic acid derivative

In their synthesis of the pyrimidine segment of the potent antitumor antibiotic bleomycin, Umezawa, Ohno and coworkers have described the reaction of highly functionalized imine (96) with malonic acid monoethyl ester to afford 3-amino ester (97 equation 16)." The low yield of (97) is largely due to elimination of the amino side chain, giving the corresponding acrylate derivative. A subsequent modification of this reaction using a boron enolate overcomes this problem and will be discussed in Section 4.1.3.2.2.ii. [Pg.917]

Diones are normally synthesized from /3-hydroxy acids in two steps first, conversion into carbamates by reaction with sodium cyanate, and then cyclization with thionyl chloride (Scheme 103) (54JCS839). Alternative preparations utilize oxetanes, which may be combined either with isocyanates in the presence of boron trifluoride (68JAP6808278) or with S-alkylthioureas (Scheme 104) (69ZOR1844). In the last example the initial products are imines (224) which may readily be hydrolyzed to the required diones. Similar methods can be applied to the synthesis of tetrahydro-l,3-thiazine-2,4-diones, and, for instance, the 4-oxo-2-thioxo derivative (225) is obtained from /3-propiolactone and dithiocarbamic acid (Scheme 105) (48JA1001). [Pg.1030]

Diphenyl-BINOL-derived chiral aluminum reagents are prepared in situ by addition of Ethylaluminum Dichloride or Diethylaluminum Chloride to 3,3 -diphenyl-BINOL. These chiral aluminum reagents promote the enantioselective Diels-Alder reaction of cyclopentadiene with the oxazolidone dienophile (eq 14). Endo products are obtained with a high level of asymmetric induction (>90% ee) however, a stoichiometric amount of the Lewis acid is required. The preparation and use of a C3 symmetric BINOL-derived boronate has been reported (eq 15). BINOL-B(OAr)3 complexes have recently been developed for the asymmetric Diels-Alder reaction with imines (eq 16). ... [Pg.88]

Alternative routes to pyrimidines, that avoid the later hydrogenation steps, were developed at Hoffmann-La Roche [46]. This alternative synthetic strategy is shown in Fig. 36. An amino-imine can be prepared in the same way, but this time it is not reacted with a substituted phenylmalonate. Instead an alkoxybenzaldehyde is subjected to a Wittig reaction with the phosphorus ylide of chloromethoxymethane to yield l-(4-al-koxyphenyl)-2-methoxyethane. Treatment with triethoxymethane in the presence of a Lewis acid such as boron trifluoride ether-ate gives the tetraethoxy derivative. Hydrolysis produces 2-(4-alkoxyphenyl)-3-me-thoxypropenal, reaction of this material with the imine results in the pyrimidine being formed directly. [Pg.1412]

Chiral imines derived from 1-phenylethanone and (I. Sj-exo-l, 7,7-trimethyIbicyclo-[2.2.1]heptan-2-amine [(S)-isobornylamine], (.S>1-phenylethanamine or (R)-l-(1-naphthyl) ethanamine are transformed into the corresponding (vinylamino)dichloroboranes (e.g., 3) by treatment with trichloroborane and triethylamine in dichloromethane. Reaction of the chiral boron azaenolates with aromatic aldehydes at 25 "C, and subsequent acidic hydrolysis, furnishes aldol adducts with enantiomeric excesses in the range of 2.5 to 47.7%. Significantly lower asymmetric inductions are obtained from additions of the corresponding lithium and magnesium azaenolates. Best results arc achieved using (.S )-isobornylamine as the chiral auxiliary 3. [Pg.599]

While aromatic aldimines of amino acid esters are readily accessible from benzaldehyde or related derivatives and amino acid esters with concomitant removal of water,the corresponding ketimines require harsher reaction conditions, e.g. the benzophenone imine of glycine methyl ester is formed in boiling xylene in the presence of boron trifluoride-diethyl ether complex as a Lewis acid in 82% yield.P l These or similar reaction conditions lead also to piperazine-2,5-dione (DKP) formation therefore milder reaction conditions have been developed such as the transimination with benzophenone imine in dichloromethane, which occurs at room temperature overnight in 80-95% yield (Scheme The N -diphen-... [Pg.137]

In recent years, catalytic asymmetric Mukaiyama aldol reactions have emerged as one of the most important C—C bond-forming reactions [35]. Among the various types of chiral Lewis acid catalysts used for the Mukaiyama aldol reactions, chirally modified boron derived from N-sulfonyl-fS)-tryptophan was effective for the reaction between aldehyde and silyl enol ether [36, 37]. By using polymer-supported N-sulfonyl-fS)-tryptophan synthesized by polymerization of the chiral monomer, the polymeric version of Yamamoto s oxazaborohdinone catalyst was prepared by treatment with 3,5-bis(trifluoromethyl)phenyl boron dichloride ]38]. The polymeric chiral Lewis acid catalyst 55 worked well in the asymmetric aldol reaction of benzaldehyde with silyl enol ether derived from acetophenone to give [i-hydroxyketone with up to 95% ee, as shown in Scheme 3.16. In addition to the Mukaiyama aldol reaction, a Mannich-type reaction and an allylation reaction of imine 58 were also asymmetrically catalyzed by the same polymeric catalyst ]38]. [Pg.84]


See other pages where Imine reaction with boronic acid derivative is mentioned: [Pg.302]    [Pg.421]    [Pg.123]    [Pg.309]    [Pg.302]    [Pg.302]    [Pg.181]    [Pg.369]    [Pg.920]    [Pg.926]    [Pg.1059]    [Pg.920]    [Pg.926]    [Pg.1059]    [Pg.68]    [Pg.229]    [Pg.279]    [Pg.302]    [Pg.568]    [Pg.68]    [Pg.252]    [Pg.27]    [Pg.920]    [Pg.926]    [Pg.1059]    [Pg.65]    [Pg.330]    [Pg.359]    [Pg.685]    [Pg.33]    [Pg.7]    [Pg.584]    [Pg.168]    [Pg.426]    [Pg.157]    [Pg.110]    [Pg.235]    [Pg.20]    [Pg.144]    [Pg.20]   
See also in sourсe #XX -- [ Pg.73 , Pg.279 ]




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Boron acid derivatives

Boron reaction with

Boronate derivatives

Boronation reaction

Boronic acid derivatives

Boronic acid derivatives reactions

Boronic acids imines

Imine derivatives

Imine reaction

Imines acids

Imines derivatives

Imines, reactions

Reaction with imines

Reactions Boron

With imines

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