4.8 Article

A bifunctional iminophosphorane squaramide catalyzed enantioselective synthesis of hydroquinazolines via intramolecular aza-Michael reaction to α,β-unsaturated esters

Journal

CHEMICAL SCIENCE
Volume 12, Issue 17, Pages 6064-6072

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1sc00856k

Keywords

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Funding

  1. Bayer AG
  2. Honjo International Scholarship Foundation
  3. EPSRC Centre for Doctoral Training in Synthesis for Biology and Medicine [EP/L015838/1]
  4. AstraZeneca
  5. Diamond Light Source
  6. Defence Science and Technology Laboratory
  7. Evotec
  8. GlaxoSmithKline
  9. Janssen
  10. Novartis
  11. Pfizer
  12. Syngenta
  13. Takeda
  14. UCB
  15. Vertex
  16. Netherlands Organization for Scientific Research (NWO)
  17. SURF Cooperative

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This study presents an efficient synthesis of enantioenriched hydroquinazoline cores using a novel catalyst, with high yields and enantioselectivities, demonstrating potential industrial applicability. The origin of the enantioselectivity and reactivity enhancement provided by the catalyst has been computationally uncovered.
An efficient synthesis of enantioenriched hydroquinazoline cores via a novel bifunctional iminophosphorane squaramide catalyzed intramolecular aza-Michael reaction of urea-linked alpha,beta-unsaturated esters is described. The methodology exhibits a high degree of functional group tolerance around the forming hydroquinazoline aryl core and wide structural variance on the nucleophilic N atom of the urea moiety. Excellent yields (up to 99%) and high enantioselectivities (up to 97 : 3 er) using both aromatic and less acidic aliphatic ureas were realized. The potential industrial applicability of the transformation was demonstrated in a 20 mmol scale-up experiment using an adjusted catalyst loading of 2 mol%. The origin of enantioselectivity and reactivity enhancement provided by the squaramide motif has been uncovered computationally using density functional theory (DFT) calculations, combined with the activation strain model (ASM) and energy decomposition analysis (EDA).

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