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Bicyclic molecule

About: Bicyclic molecule is a research topic. Over the lifetime, 29587 publications have been published within this topic receiving 451252 citations. The topic is also known as: bicyclic molecule.


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Journal ArticleDOI
TL;DR: Acyclic and cyclic, aliphatic or aromatic, 4- or 5-alkenoic acids cyclize in high yield to 5- or 6-membered unsaturated lactones using 5 mol % Pd(OAc) 2, 2 equiv of NaOAc, and 1 atm of O 2 as discussed by the authors.
Abstract: Acyclic and cyclic, aliphatic or aromatic, 4- or 5-alkenoic acids cyclize in high yield to 5- or 6-membered unsaturated lactones using 5 mol % Pd(OAc) 2 , 2 equiv of NaOAc, and 1 atm of O 2

165 citations

Journal ArticleDOI
TL;DR: It is hypothesized that coordination of cationic phosphinegold(I) complexes to a vinyl allene might mimic these reaction pathways through similar back-bonding, leading to metal–carbenoid intermediate 3 (X=R3PAu ).
Abstract: mechanistic pathways: a concerted rearrangement (path a) involving direct addition of the olefin on the epoxide or a stepwise mechanism (path b) through a Nazarov cyclization of an oxypentadienyl cation (2, X=O ). The regioselectivity of the cyclization is dictated by donation of the oxyanion into the resulting cation leading to the formation of a ketone. Recently, stabilization of developing positive charge through back-bonding from phosphinegold(I) complexes has been implicated in a number of rearrangement reactions. Therefore, we hypothesized that coordination of cationic phosphinegold(I) complexes to a vinyl allene might mimic these reaction pathways through similar back-bonding, leading to metal–carbenoid intermediate 3 (X=R3PAu ). These intermediates would further rearrange into substituted cyclopentadienes, important building blocks in organic and organometallic chemistry. 7] In light of our recent success in using [Ph3PAuCl] with AgSbF6 in dichloromethane for carbon–carbon bond-forming reactions, we chose this system for preliminary studies of the proposed cycloisomerization (Table 1). Treatment of vinyl allene 4 with 2 mol% cationic triphenylphosphinegold(I) afforded the desired cyclopentadiene 5 as a single regioisomer in 97% yield after 1 min at 0 8C (Table 1, entry 1). Similar results were obtained when a lower temperature or lower catalyst loading were used (Table 1, entries 2 and 3). Control experiments employing either 5 mol% [Ph3PAuCl] or 5 mol% AgSbF6 as the sole catalyst did not lead to any conversion of 4 into 5 (Table 1, entries 4 and 5). Other transition-metal complexes showed no catalytic activity; however, gold(III) chloride rapidly consumed 4 to afford a small amount of 5 (Table 1, entry 6). With optimal conditions in hand, the scope of the gold(I)catalyzed cycloisomerization of vinyl allenes was examined. We were pleased to find that the reaction allowed for the regiospecific synthesis of functionalized cyclopentadienes in high yields with a variety of substitution patterns (Table 2). Substitution at the allene terminus was well tolerated, encompassing linear alkyl (Table 2, entries 8 and 9), oxygenated (entries 3–7), secondary benzyl (entry 1), and phenyl substituents (entry 2). Notably, the gold(I)-catalyzed reaction can be easily carried out on a gram scale albeit with a slightly diminished yield (Table 2, entry 1). Furthermore, the stability of acid-labile protecting groups, such as tetrahydropyranyl (Table 2, entry 9) and silyl ethers (entries 3, 4, 6, and 7), isopropylidene acetal (entry 5), and an N-Boc amine (entry 6), is a testament to the mildness of the reaction conditions. Bicyclic cyclopentadienes are readily produced from the cycloisomerization of vinyl allenes containing cyclic alkenes (Table 2, entries 1–6). Additionally, the gold(I)catalyzed reaction can be employed for the synthesis of cyclopentadienes with a quaternary carbon center (Table 2, entries 2 and 3). The use of a more electron-rich gold(I) complex, [tBu3PAuCl], as a catalyst gave improved yields for some vinyl allenes (Table 2, entries 5, 6, 8, and 9). For example, switching the gold catalyst from [Ph3PAuCl] to [tBu3PAuCl] resulted in an improved yield for the formation of cyclopentadiene 21 (Table 2, entry 8). Table 1: Catalyst optimization.

164 citations

Patent
26 Apr 2001
TL;DR: In this paper, the authors present compositions which are useful as PI3K inhibitors and anticancer agents; and novel bicyclic or tricyclic condensed heteroaryl derivatives or salts thereof having favorable effects of inhibiting PI3k and suppressing the proliferation of cancer cells.
Abstract: Medicinal compositions which are useful as phosphatidylinositol 3-kinase (PI3K) inhibitors and anticancer agents; and novel bicyclic or tricyclic condensed heteroaryl derivatives or salts thereof having favorable effects of inhibiting PI3K and suppressing the proliferation of cancer cells.

163 citations

Journal ArticleDOI
TL;DR: Mechanistic studies show that addition of aniline-d2 occurs in a syn fashion and suggest that the catalytic cycle comprises oxidative addition ofAniline to form a bis-anilide hydride complex, followed by migratory insertion of olefin and reductive elimination of product in a series of steps involving iridium complexes containing ancillary bisphosphine and arylamide ligands.
Abstract: A set of catalytic, intermolecular hydroaminations of strained bicyclic olefins and dienes are reported that occur in both high yield and high enantioselectivity. These reactions occur with a catalyst generated from [Ir(cyclooctene)Cl]2, sterically hindered and electron-rich derivatives of the Segphos and BIPHEP family of ligands, and a soluble base. This system catalyzes the addition of various anilines to norbornene, norbornadiene, and other bicyclic olefins. The products from addition of p-anisidine can be transformed to BOC-protected norbornylamine and to substituted cyclopentanes in nearly enantiopure form. Mechanistic studies show that addition of aniline-d2 occurs in a syn fashion and suggest that the catalytic cycle comprises oxidative addition of aniline to form a bis-anilide hydride complex, followed by migratory insertion of olefin and reductive elimination of product in a series of steps involving iridium complexes containing ancillary bisphosphine and arylamide ligands.

162 citations


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Performance
Metrics
No. of papers in the topic in previous years
YearPapers
2023206
2022476
2021237
2020259
2019304
2018283