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1.
Nature ; 632(8026): 795-801, 2024 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-39085607

RESUMO

Polyene cyclizations are among the most complex and challenging transformations in biology. In a single reaction step, multiple carbon-carbon bonds, ring systems and stereogenic centres are constituted from simple, acyclic precursors1-3. Simultaneously achieving this kind of precise control over product distribution and stereochemistry poses a formidable task for chemists. In particular, the polyene cyclization of (3E,7E)-homofarnesol to the valuable naturally occurring ambergris odorant (-)-ambrox is recognized as a longstanding challenge in chemical synthesis1,4-7. Here we report a diastereoselective and enantioselective synthesis of (-)-ambrox and the sesquiterpene lactone natural product (+)-sclareolide by a catalytic asymmetric polyene cyclization by using a highly Brønsted-acidic and confined imidodiphosphorimidate catalyst in the presence of fluorinated alcohols. Several experiments, including deuterium-labelling studies, suggest that the reaction predominantly proceeds through a concerted pathway in line with the Stork-Eschenmoser hypothesis8-10. Mechanistic studies show the importance of the enzyme-like microenvironment of the imidodiphosphorimidate catalyst for attaining exceptionally high selectivities, previously thought to be achievable only in enzyme-catalysed polyene cyclizations.


Assuntos
Polienos , Sesquiterpenos , Ciclização , Catálise , Estereoisomerismo , Polienos/química , Polienos/síntese química , Sesquiterpenos/síntese química , Sesquiterpenos/química , Álcoois/química , Álcoois/síntese química , Halogenação , Lactonas/química , Lactonas/síntese química , Produtos Biológicos/síntese química , Produtos Biológicos/química
2.
Macromol Rapid Commun ; 45(8): e2300675, 2024 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-38163327

RESUMO

Despite their industrial ubiquity, polyolefin-polyacrylate block copolymers are challenging to synthesize due to the distinct polymerization pathways necessary for respective blocks. This study utilizes MILRad, metal-organic insertion light-initiated radical polymerization, to synthesize polyolefin-b-poly(methyl acrylate) copolymer by combining palladium-catalyzed insertion-coordination polymerization and atom transfer radical polymerization (ATRP). Brookhart-type Pd complexes used for the living polymerization of olefins are homolytically cleaved by blue-light irradiation, generating polyolefin-based macroradicals, which are trapped with functional nitroxide derivatives forming ATRP macroinitiators. ATRP in the presence of Cu(0), that is, supplemental activators and reducing agents , is used to polymerize methyl acrylate. An increase in the functionalization efficiency of up to 71% is demonstrated in this study by modifying the light source and optimizing the radical trapping condition. Regardless of the radical trapping efficiency, essentially quantitative chain extension of polyolefin-Br macroinitiator with acrylates is consistently demonstrated, indicating successful second block formation.


Assuntos
Resinas Acrílicas , Polienos , Polimerização , Polienos/química , Polienos/síntese química , Resinas Acrílicas/química , Resinas Acrílicas/síntese química , Catálise , Polímeros/química , Polímeros/síntese química , Paládio/química , Estrutura Molecular , Acrilatos/química , Luz
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