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April 17, 2026ACS Catalysis0 citations

Enantioselective Synthesis of Chiral 1-Amino-3-silatetralins via Palladium-Catalyzed 4 + 2 Annulation of Benzosilacyclobutenes with N -Allenamides

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YSYu SunRLRundong LuHZHang Zhou

Key Points

  • The aim is to develop an efficient method for synthesizing chiral 1-amino-3-silatetralins for medicinal applications.
  • Utilized palladium-catalyzed asymmetric [4 + 2] annulation technique.
  • Employed benzosilacyclobutenes and N-allenamides as key reactants.
  • Implemented a chiral phosphoramidite ligand to achieve enantioselectivity.
  • Conducted DFT calculations to support regioselectivity findings.
  • Achieved good yields and high enantioselectivity for diverse chiral 1-amino-3-silatetralins.
  • Demonstrated exclusive proximal C═C bond insertion and selective Si−C(sp2) bond cleavage.
  • Showed broad functional group tolerance, enhancing the method's versatility.

Abstract

While silicon incorporation is a compelling strategy in drug discovery due to its bioisosteric properties and the chiral 1-aminotetralin is a privileged scaffold, the synthesis of enantiopure silicon-bridged 1-aminotetralin analogues poses significant challenges and has thus far hampered their medicinal exploration. Herein, we present the strategy for the enantioselective synthesis of 1-amino-3-silatetralins via a palladium-catalyzed asymmetric 4 + 2 annulation of benzosilacyclobutenes with N-allenamides by employing a chiral phosphoramidite ligand. Notably, this protocol leverages the dual role of N-allenamides as both a two-carbon synthon and a nitrogen donor, enabling efficient assembly of structurally diverse chiral 1-amino-3-silatetralins in good yields and high enantioselectivity with broad functional group tolerance. The reaction proceeds with exclusive proximal C═C bond insertion of N-allenamides and selective Si−C(sp2) bond cleavage of benzosilacyclobutenes, a regioselectivity well supported by DFT calculations. This methodology thereby provides access to inaccessible three-dimensional architectures, facilitating drug discovery efforts focused on silicon-based bioisosteres.

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Cite This Study

Sun et al. (2026) studied this question.

synapsesocial.com/papers/69e1cdc45cdc762e9d85715bhttps://doi.org/10.1021/acscatal.5c08823
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