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Mutarotation ester, synthesis

Koenigs-Knorr reaction of, 990 molecular model of, 119, 126, 985 mutarotation of, 985-986 pentnacetyl ester of, 988 pentamethyl ether of, 988 pyranose form of, 984-985 pyruvate from. 1143-1150 reaction with acetic anhydride, 988 reaction with ATP, 1129 reaction with iodomethane, 988 sweetness of. 1005 Williamson ether synthesis with. 988... [Pg.1299]

The enhanced reactivity of chelated amino acid esters towards attack by other nucleophiles has been used to advantage in the sequential synthesis of small peptides equation (4l).225 Formation of the amide bond takes only seconds to minutes at room temperature in DMSO as solvent, and the peptide can be easily recovered by reducing the metal to the Co" state. Recent studies have shown that the A and A diastereoisomeric reactants are selective in their couplings to (2 ) and (S) amino acid esters and that mutarotation at the asymmetric centre of the chelated ester reactant varies from 0-6%.226 Isied and coworkers have described the use of the Co(NH3)3+ as a C-terminal protecting group for the sequential synthesis of peptides (equation 42).227 This procedure has advantages over other methods in some cases. [Pg.683]

Bifunctional catalysis. Some time ago Swain and Brown1 observed that 2-hydroxypyridine catalyzed the mutarotation of tetramethylglucose by a concerted base-acid catalysis and that it is more effective than pyridine plus phenol. A few years later Beyerman and van den Brink2 showed that 2-hydroxypyridine and other bifunctional compounds catalyze the reaction of amines with cyano-methyl esters (reactive esters) as well as low-energy esters in peptide synthesis. Pyrazole and 1,2,4-triazole (1,1188), were equally effective. [Pg.284]


See other pages where Mutarotation ester, synthesis is mentioned: [Pg.93]    [Pg.69]   
See also in sourсe #XX -- [ Pg.70 ]




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Mutarotation

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