Palladium-catalyzed asymmetric allylation of prochiral nucleophiles: Synthesis of 3-allyl-3-aryl oxindoles
Palladium-catalyzed asymmetric allylation of prochiral nucleophiles: Synthesis of 3-allyl-3-aryl oxindoles
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DOI:
10.1002/anie.200460335
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发表时间:
2005-01-01
影响因子:
16.6
通讯作者:
Frederiksen, MU
中科院分区:
文献类型:
--
作者:
Trost, BM;Frederiksen, MU
The generation of quaternary centers with control of absolute stereochemistry represents a fundamental challenge in synthetic organic chemistry.[1] In this area, we have examined the ability of asymmetric allylic alkylation (AAA) to control stereochemistry at prochiral nucleophiles, a particularly daunting challenge given its direct attack at the face of the allyl fragment opposite to that bound to the metal. Our success with a few classes of nucleophiles exemplified by β-ketoesters,[2] ketones,[3] among others,[4–6] encouraged us to examine new classes of nucleophiles of particular significance such as lactam enolates. The 3-alkyl-3-aryl oxindole structural motif is a prominent feature in a number of biologically active natural products, for example, diazonamide A [7] and leptosin D,[8] as well as several pharmaceutically active compounds.[9] In spite of the importance of this structural motif, few general methods exist for its construction. Aside from the elegant asymmetric intramolecular Heck reaction developed by Overman and co-workers,[10] only scattered examples based on Pd-catalyzed α arylation [11] and asymmetric acyl transfer have been reported.[12] Pdcatalyzed AAA represents a conceptually novel and flexible approach to this important structural class, especially when combined with the powerful Pd-catalyzed α-arylation protocols for the synthesis of 3-aryl oxindoles developed by Hartwig and co-workers.[11, 13] When used in concert, these processes would readily give access to structurally complex oxindoles endowed with a quaternary stereocenter from simple and readily available starting materials [Eq (1)]. Herein we report the successful development of this strategy. Our studies commenced with a comprehensive matrix screen of bases in the presence of our standard set of ligands 5–7 in the Pd-catalyzed AAA reaction of oxindole 8 to form 9 (Table 1).[14] These experiments revealed large variations in yield and enantioselectivity, for example, the use of potassium carbonate in conjunction with ligands 5–7 showed a dramatic increase in both yield and ee values (Table 1, entries 1–3) relative to other counterions (results not shown). Weaker bases showed better compatibility with this reaction (Table 1, entries 4 and 5). Interestingly, 10 mol% KF gave essentially identical results to the stoichiometric reaction (Table1, entries 5 and 6). This trend was also observed when nonmetal bases such as Et3N (Table 1, entries 7 and 8) were used. When BSA was utilized, a spectacular increase in the ee value by 36%(from 40 to 76% ee) was observed when the base loading was lowered from 1 to 0.1 equivalent (Table1, entries 9 and 10).These observations combined with the proficiency of AcOK in this reaction suggested that the addition of only a catalytic amount of base was necessary to initiate the enolization, as ionization of allyl acetate maintained the catalytic concentration of base. However, either the enolate or enol may function as the nucleophile. As oxindoles tautomerize to hydroxyindoles, it seemed reasonable to probe whether it was in fact the latter that acted as the