Semi‐Reduction of Allenes to Access Deuterated Allylic Isotopomers, Isotopologs and Enantioisotopomers

L Lihan Qi (Department of Chemistry University of Tennessee Knoxville Tennessee USA) R Raviraj Ananda Thorat (Department of Chemistry University of Tennessee Knoxville Tennessee USA) B Brad D. Maxwell (Process Chemistry Vertex Pharmaceuticals Incorporated Boston Massachusetts USA) J Jeffery A. Gladding (Process Chemistry Vertex Pharmaceuticals Incorporated Boston Massachusetts USA) A Aniel J. Rivera Arzola (Department of Chemistry University of Tennessee Knoxville Tennessee USA) S Shashank P. Sancheti (Department of Chemistry University of Tennessee Knoxville Tennessee USA) R Reilly E. Sonstrom (Department of Chemistry) X Xulin Tang (Department of Chemistry University of Tennessee Knoxville Tennessee USA) I Isaac J. Anderson (Department of Chemistry Marquette University Milwaukee Wisconsin USA) B Brooks H. Pate (Department of Chemistry) J Joseph R. Clark (Department of Chemistry University of Tennessee Knoxville Tennessee USA)

Abstract

ABSTRACT Selectively deuterated compounds represent high value synthetic targets with applications across many scientific disciplines. Despite their importance, reactions that enable access to products precisely deuterated at an allylic position with complete control over the degree of deuteration are extremely rare. In fact, the high enantiopurity synthesis of enantioisotopomers owing their chirality solely to hydrogen isotopes at an allylic position has remained elusive to date. Herein, we report a modular Cu‐catalyzed semi‐reductive deuteration of allenes to access a broad scope of small molecules, drug analogs, and natural product analogs precisely deuterated at allylic positions. The semi‐reduction strategy has been applied to access a range of precisely labeled d1 ‐, d2 ‐, d3 ‐, d5 ‐, and d7 ‐isotopologs. In this work, we disclose the first high enantiopurity synthesis of allylic‐ d1 enantioisotopomers, along with a highly accurate and precise analysis for enantiomeric excess (EE) determination and assignment of absolute configuration (AC) using molecular rotational resonance (MRR) spectroscopy.

Article Details

Volume / Issue Vol. 65, Issue 13
Published March 23, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

L

Lihan Qi

Department of Chemistry University of Tennessee Knoxville Tennessee USA

R

Raviraj Ananda Thorat

Department of Chemistry University of Tennessee Knoxville Tennessee USA

B

Brad D. Maxwell

Process Chemistry Vertex Pharmaceuticals Incorporated Boston Massachusetts USA

J

Jeffery A. Gladding

Process Chemistry Vertex Pharmaceuticals Incorporated Boston Massachusetts USA

A

Aniel J. Rivera Arzola

Department of Chemistry University of Tennessee Knoxville Tennessee USA

S

Shashank P. Sancheti

Department of Chemistry University of Tennessee Knoxville Tennessee USA

R

Reilly E. Sonstrom

Department of Chemistry

X

Xulin Tang

Department of Chemistry University of Tennessee Knoxville Tennessee USA

I

Isaac J. Anderson

Department of Chemistry Marquette University Milwaukee Wisconsin USA

B

Brooks H. Pate

Department of Chemistry

J

Joseph R. Clark

Department of Chemistry University of Tennessee Knoxville Tennessee USA