Iron and copper complexes cooperatively catalyzed the arylmagnesiation of unfunctionalized alkynes including dialkylacetylenes, where the presence of both iron and copper catalysts is essential for high yields of 2-aryl-1-alkenylmagnesium bromides.
[reaction: see text] The first catalytic asymmetric synthesis of 2-aryl-2,3-dihydro-4-quinolones has been developed by way of a rhodium-catalyzed 1,4-addition of arylzinc reagents to 4-quinolones. These 1,4-adducts can be obtained with high enantioselectivity by the use of (R)-binap as a ligand, and high yields are realized by conducting the reactions in the presence of chlorotrimethylsilane.
[reaction: see text] A rhodium-catalyzed multicomponent-coupling reaction has been developed that involves a cross-coupling with organohalides as part of the reaction sequence. Through several experiments toward mechanistic investigations, it has also been demonstrated that the reaction most likely proceeds via a carborhodation-oxidative addition-reductive elimination pathway, which clearly contrasts to the corresponding palladium-catalyzed processes.
Addition of arylmagnesium bromides to aryl(alkyl)acetylenes proceeded in the presence of an iron catalyst and a N-heterocyclic carbene ligand to give high yields of the corresponding alkenylmagnesium reagents, which were transformed into tetrasubstituted alkenes by subsequent treatment with electrophiles. [reaction: see text]
Process research and development
for a synthesis of the chiral
carboxylic acid (
R
)-2 as
a key intermediate of the glucokinase activator (
R
)-1 is described. The construction of the stereocenter
at the α-carbon is a key point for the synthesis of (
R
)-2. The proposed process utilizes
desymmetrization of a ketene in situ generated from the corresponding
racemic carboxylic acid
Rac
-2 with (R)-pantolactone as a chiral auxiliary followed
by hydrolysis of the resulting ester. This key step has been successfully
scaled up to 20 kg, which demonstrates that this synthetic approach
is comparable with a previously reported approach via enantioselective
hydrogenation.
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