A novel recyclable organocatalyst for the gram-scale enantioselective synthesis of ( S )-baclofen

Dargó, Gyula [Dargó, Gyula (szerves kémia), author] Department of Organic Chemistry and Technology (BUTE / FCTB); Erdélyi, Dóra [Erdélyi, Dóra (szerves kémia), author] Department of Organic Chemistry and Technology (BUTE / FCTB); Molnár, Balázs; Kisszékelyi, Péter [Kisszékelyi, Péter (szerves kémia), author] Department of Organic Chemistry and Technology (BUTE / FCTB); Garádi, Zsófia [Garádi, Zsófia (NMR spektroszkópia), author] Department of Pharmacognosy (SU / FP); Kupai, József ✉ [Kupai, József (Szerves kémia), author] Department of Organic Chemistry and Technology (BUTE / FCTB)

English Article (Journal Article) Scientific
  • SJR Scopus - Organic Chemistry: Q2
Identifiers
Fundings:
  • (FK138037)
  • National Laboratory of Translational Neuroscience(RRF-2.3.1-21-2022-00015)
  • (UNKP-22-3-I-BME-125)
  • Nemzeti Gyógyszerkutatási és Fejlesztési Laboratórium(PharmaLab) Funder: NRDIO
Subjects:
  • Chemical sciences
  • Organic chemistry
  • Synthetic Organic chemistry
  • NATURAL SCIENCES
  • Science
Synthesizing organocatalysts is often a long and cost-intensive process, therefore, the recovery and reuse of the catalysts are particularly important to establish sustainable organocatalytic transformations. In this work, we demonstrate the synthesis, application, and recycling of a new lipophilic cinchona squaramide organocatalyst. The synthesized lipophilic organocatalyst was applied in Michael additions. The catalyst was utilized to promote the Michael addition of cyclohexyl Meldrum’s acid to 4-chloro- trans -β-nitrostyrene (quantitative yield, up to 96% ee). Moreover, 1 mol % of the catalyst was feasible to conduct the gram-scale preparation of baclofen precursor (89% yield, 96% ee). Finally, thanks to the lipophilic character of the catalyst, it was easily recycled after the reaction by replacing the non-polar reaction solvent with a polar solvent, acetonitrile, with 91–100% efficiency, and the catalyst was reused in five reaction cycles without the loss of activity and selectivity.
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2025-04-25 06:29