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Diastereoselective Synthesis of the HIV Protease Inhibitor Darunavir and Related Derivatives via a Titanium Tetrachloride-Mediated Asymmetric Glycolate Aldol Addition Reaction.
Witte, Jordan M; Ayim, Emmanuel; Sams, Christopher J; Service, Jasmine B; Kant, Caitlyn C; Bambalas, Lillian; Wright, Daniel; Carter, Austin; Moran, Kelly; Rohrig, Isabella G; Ferrence, Gregory M; Hitchcock, Shawn R.
Afiliação
  • Witte JM; Department of Chemistry, Illinois State University, Normal, Illinois 61790-4160, United States.
  • Ayim E; Department of Chemistry, Illinois State University, Normal, Illinois 61790-4160, United States.
  • Sams CJ; Department of Chemistry, Illinois State University, Normal, Illinois 61790-4160, United States.
  • Service JB; Department of Chemistry, Illinois State University, Normal, Illinois 61790-4160, United States.
  • Kant CC; Department of Chemistry, Illinois State University, Normal, Illinois 61790-4160, United States.
  • Bambalas L; Department of Chemistry, Illinois State University, Normal, Illinois 61790-4160, United States.
  • Wright D; Department of Chemistry, Illinois State University, Normal, Illinois 61790-4160, United States.
  • Carter A; Department of Chemistry, Illinois State University, Normal, Illinois 61790-4160, United States.
  • Moran K; Department of Chemistry, Illinois State University, Normal, Illinois 61790-4160, United States.
  • Rohrig IG; Department of Chemistry, Illinois State University, Normal, Illinois 61790-4160, United States.
  • Ferrence GM; Department of Chemistry, Illinois State University, Normal, Illinois 61790-4160, United States.
  • Hitchcock SR; Department of Chemistry, Illinois State University, Normal, Illinois 61790-4160, United States.
J Org Chem ; 89(13): 9569-9585, 2024 07 05.
Article em En | MEDLINE | ID: mdl-38916048
ABSTRACT
Darunavir is a potent HIV protease inhibitor that has been established as an effective tool in the fight against the progression of HIV/AIDS in the global community. The successful application of this drug has spurred the development of derivatives wherein strategic regions (e.g., P1, P1', P2, and P2') of the darunavir framework have been structurally modified. An alternate route for the synthesis of darunavir and three related P1 and P1' derivatives has been developed. This synthetic pathway involves the use of a Crimmins titanium tetrachloride-mediated oxazolidine-2-thione-guided asymmetric glycolate aldol addition reaction. The resultant aldol adduct introduces the P1 fragment of darunavir via an aldehyde. Transamidation with a selected amine (isobutylamine or 2-ethyl-1-butylamine) to cleave the auxiliary yields an amide wherein the P1' component is introduced. From this stage, the amide is reduced to the corresponding ß-amino alcohol and the substrate is then bis-nosylated to introduce the requisite p-nitrobenzenesulfonamide component and activate the secondary alcohol for nucleophilic substitution. Treatment with sodium azide yielded the desired azides, and the deprotection of the p-methoxyphenoxy group is achieved with the use of ceric ammonium nitrate. Finally, hydrogenation to reduce both the aniline and azide functionalities with concurrent acylation yields darunavir and its derivatives.
Assuntos

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Titânio / Inibidores da Protease de HIV / Aldeídos / Darunavir Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Titânio / Inibidores da Protease de HIV / Aldeídos / Darunavir Idioma: En Ano de publicação: 2024 Tipo de documento: Article