Is a Malleable Active Site Loop the Key to High Substrate Promiscuity? Hybrid, Biocatalytic Route to Structurally Diverse Taxoid Side Chains with Remarkable Dual Stereocontrol

G Gaurav P. Kudalkar (Department of Chemistry University of Nebraska Lincoln NE 68588‐0304 USA) F Florian Leidner N Nivesh Kumar (Department of Chemistry University of Nebraska Lincoln NE 68588‐0304 USA) J Jared L. Hass (Department of Chemistry University of Nebraska Lincoln NE 68588‐0304 USA) P Peter Madzelan (Department of Biochemistry University of Nebraska Lincoln NE 68588‐0664 USA) D Douglas R. Powell (Department of Chemistry and Biochemistry University of Oklahoma Norman OK 73019 USA) V Victor W. Day (X‐Ray Crystallography Facility University of Kansas Lawrence KS 66045 USA) P Pierre Le Magueres (Rigaku Americas Corporation The Woodlands TX 77381 USA) J Joseph D. Ferrara (Rigaku Americas) L Lee M. Daniels (Rigaku Americas Corporation The Woodlands TX 77381 USA) A Akihito Yamano (Rigaku Corporation Tokyo 196‐866 Japan) S Sho Ito W Wei Niu H Helmut Grubmüller (Department of Theoretical and Computational Biophysics, Max Planck Institute for Multidisciplinary Sciences) M Mark A. Wilson D David B. Berkowitz (Department of Chemistry University of Nebraska Lincoln NE 68588‐0304 USA)

Abstract

Abstract These studies reveal the first structure of Clostridium acetobutylicum alcohol dehydrogenase (CaADH), a protein exhibiting remarkable substrate promiscuity and stereochemical fidelity. The CaADH enzyme is utilized here for synthesizing 20 potential aryl isoserine side chains for the Taxotere family of tubulin‐binding chemotherapeutics. The approach involves dynamic reductive kinetic resolution (DYRKR) upon the corresponding α‐chloro‐β‐keto esters, showing high D‐ syn stereoselectivity, including those leading to the clinically relevant milataxel (Ar = 2‐furyl) and simotaxel (Ar = 2‐thienyl) side chains. Furthermore, various cross‐coupling chemistries performed on the p ‐bromophenyl isoserine side chain significantly enhance the structural diversity of the taxoid side chain library obtained (16 additional taxoid side chains). The CaADH structure is notable: (i) the nicotinamide cofactor is bound in an anti‐ conformation, with the amide carbonyl occupying the ketone binding pocket, and (ii) a flexible loop near the active site likely contributes to the remarkable substrate promiscuity observed in CaADH. We present our perspective on the dynamic nature of the CaADH active site through molecular dynamics simulation, proposing a halogen bonding model as a potential mechanism for the remarkable selectivity for an ( S )‐configured C─Cl bond, in addition to the D‐facial selectivity, demonstrated across 20 diverse substrates by this remarkable short‐chain dehydrogenase enzyme.

Article Details

Volume / Issue Vol. 64, Issue 36
Published September 01, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (16)

G

Gaurav P. Kudalkar

Department of Chemistry University of Nebraska Lincoln NE 68588‐0304 USA

F

Florian Leidner

N

Nivesh Kumar

Department of Chemistry University of Nebraska Lincoln NE 68588‐0304 USA

J

Jared L. Hass

Department of Chemistry University of Nebraska Lincoln NE 68588‐0304 USA

P

Peter Madzelan

Department of Biochemistry University of Nebraska Lincoln NE 68588‐0664 USA

D

Douglas R. Powell

Department of Chemistry and Biochemistry University of Oklahoma Norman OK 73019 USA

V

Victor W. Day

X‐Ray Crystallography Facility University of Kansas Lawrence KS 66045 USA

P

Pierre Le Magueres

Rigaku Americas Corporation The Woodlands TX 77381 USA

J

Joseph D. Ferrara

Rigaku Americas

L

Lee M. Daniels

Rigaku Americas Corporation The Woodlands TX 77381 USA

A

Akihito Yamano

Rigaku Corporation Tokyo 196‐866 Japan

S

Sho Ito

W

Wei Niu

H

Helmut Grubmüller

Department of Theoretical and Computational Biophysics, Max Planck Institute for Multidisciplinary Sciences

M

Mark A. Wilson

D

David B. Berkowitz

Department of Chemistry University of Nebraska Lincoln NE 68588‐0304 USA