Automated Iterative N─C and C─C Bond Formation

T Theodore Tyrikos‐Ergas (Department of Chemistry University of Illinois Urbana IL 61820 USA) S Sevasti Agiakloglou (Department of Chemistry University of Illinois Urbana IL 61820 USA) A Antonio J. LaPorte (Department of Chemistry University of Illinois Urbana IL 61820 USA) W Wesley Wang (Department of Chemistry University of Illinois Urbana IL 61820 USA) C Chieh‐Kai Chan (Department of Chemistry University of Illinois Urbana IL 61820 USA) C Clare E. Wells (Department of Chemistry University of Illinois Urbana IL 61820 USA) C Christopher K. Rakowski (Department of Chemistry University of Illinois Urbana IL 61820 USA) R Rachel I. Hammond (Department of Chemistry University of Illinois Urbana IL 61820 USA) J Jia Qiu J Jonathan D. Raymond (Department of Chemistry University of Illinois Urbana IL 61820 USA) T Tiago Vieira (Deerfield Discovery & Development LLC a subsidiary of Deerfield Management Company 345 Park Ave S New York NY 10010 USA) J John Limanto (Deerfield Discovery & Development LLC a subsidiary of Deerfield Management Company 345 Park Ave S New York NY 10010 USA) M Marc N. Feiglin (Deerfield Discovery & Development LLC a subsidiary of Deerfield Management Company 345 Park Ave S New York NY 10010 USA) D Daniel J. Blair M Martin D. Burke

Abstract

Abstract Small molecule solutions to many contemporary societal challenges await discovery, but the artisanal and manual process via which this class of chemical matter is typically accessed limits the discovery of new functions. Automated assembly of (N‐methyl iminodiacetic acid) MIDA or (tetramethyl N‐methyl iminodiacetic acid) TIDA boronate building blocks via iterative C─C bond formation, an approach we call “block chemistry”, alternatively enables generalized and automated preparation of many different types of small molecules in a modular fashion. But in its current form, this engine cannot also leverage nitrogen atoms as iteration handles. Here, we disclose a new iteration‐enabling group, CbzT ( p‐ TIDA boronate‐substituted carboxybenzyl), that reversibly attenuates the reactivity of nitrogen atoms and enables generalized catch‐and‐release purification. CbzT is leveraged to achieve the automated modular synthesis of Imatinib (Gleevec), an archetypical clinically approved kinase inhibitor, in which building blocks are iteratively linked by both N─C and C─C bonds. This work substantially expands the types of small molecules that can be iteratively assembled in an automated modular fashion. It also advances the concept of intentionally developing chemistry that machines can do.

Article Details

Volume / Issue Vol. 64, Issue 33
Published August 11, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (15)

T

Theodore Tyrikos‐Ergas

Department of Chemistry University of Illinois Urbana IL 61820 USA

S

Sevasti Agiakloglou

Department of Chemistry University of Illinois Urbana IL 61820 USA

A

Antonio J. LaPorte

Department of Chemistry University of Illinois Urbana IL 61820 USA

W

Wesley Wang

Department of Chemistry University of Illinois Urbana IL 61820 USA

C

Chieh‐Kai Chan

Department of Chemistry University of Illinois Urbana IL 61820 USA

C

Clare E. Wells

Department of Chemistry University of Illinois Urbana IL 61820 USA

C

Christopher K. Rakowski

Department of Chemistry University of Illinois Urbana IL 61820 USA

R

Rachel I. Hammond

Department of Chemistry University of Illinois Urbana IL 61820 USA

J

Jia Qiu

J

Jonathan D. Raymond

Department of Chemistry University of Illinois Urbana IL 61820 USA

T

Tiago Vieira

Deerfield Discovery & Development LLC a subsidiary of Deerfield Management Company 345 Park Ave S New York NY 10010 USA

J

John Limanto

Deerfield Discovery & Development LLC a subsidiary of Deerfield Management Company 345 Park Ave S New York NY 10010 USA

M

Marc N. Feiglin

Deerfield Discovery & Development LLC a subsidiary of Deerfield Management Company 345 Park Ave S New York NY 10010 USA

D

Daniel J. Blair

M

Martin D. Burke