Reprogramming ThDP Enzymes for <i>Z</i> -Alkenes: Overriding Thermodynamic Preference via Noncovalent Controls

H Huangong Li (East China University of Science and Technology , , ,) T Tairan Yang (East China University of Science and Technology , , ,) Y Yilong Zhao (East China University of Science and Technology , , ,) R Rui Pan J Jinmin Peng (East China University of Science and Technology , , ,) Y Yinhong Lai (East China University of Science and Technology , , ,) J Jingyu Zhang (East China University of Science and Technology , , ,) X Xueting Liu (East China University of Science and Technology , , ,) G Guoliang Zhu (East China University of Science and Technology , , ,) L Lixin Zhang Y Yonggui Robin Chi (State Key Laboratory of Green Pesticide, Center for R&D of Fine Chemicals of Guizhou University) Y Yongtao Xie (East China University of Science and Technology , , ,)

Abstract

Abstract Most conventional alkene synthesis reactions (e.g., elimination et al.) inherently favor the formation of thermodynamically more stable E-isomers, posing a long-standing challenge for direct access to Z-alkenes. Here, we report the reprogramming of a thiamine diphosphate (ThDP)-dependent enzyme to catalyze a formal dehalogenative elimination that overrides this intrinsic thermodynamic bias, enabling the direct and selective synthesis of Z-α,β-unsaturated carboxylic acids. In contrast to classical approaches that rely on substrate control, directing groups, or complex ligand architectures, our strategy harnesses the enzyme’s confined active site to achieve kinetic control exclusively via noncovalent interactions─representing a fundamentally distinct and more sustainable approach to stereochemical programming. This transformation diverts the enzyme from its native function in C–C bond formation by channeling the Breslow intermediate toward a homoenolate-mediated pathway, wherein specific noncovalent interactions stabilize the syn-periplanar geometry required for Z-selective dehalogenative elimination. Through rational active-site engineering, the stereochemical trajectory can be inverted to furnish the complementary E-isomer, enabling stereodivergent synthesis from a common scaffold. This work establishes a biocatalytic platform that addresses a critical gap in Z-alkene synthesis, expands the catalytic repertoire of ThDP-dependent enzymes, and provides a sustainable alternative to conventional methodologies.

Article Details

Volume / Issue Vol. 148, Issue 29
Published July 29, 2026
Pages 31120-31129
ISSN 0002-7863
Publisher American Chemical Society

Journal Info

Journal of the American Chemical Society

American Chemical Society

ISSN: 0002-7863 Physical Sciences

Authors (12)

H

Huangong Li

East China University of Science and Technology , , ,

T

Tairan Yang

East China University of Science and Technology , , ,

Y

Yilong Zhao

East China University of Science and Technology , , ,

R

Rui Pan

J

Jinmin Peng

East China University of Science and Technology , , ,

Y

Yinhong Lai

East China University of Science and Technology , , ,

J

Jingyu Zhang

East China University of Science and Technology , , ,

X

Xueting Liu

East China University of Science and Technology , , ,

G

Guoliang Zhu

East China University of Science and Technology , , ,

L

Lixin Zhang

Y

Yonggui Robin Chi

State Key Laboratory of Green Pesticide, Center for R&D of Fine Chemicals of Guizhou University

Y

Yongtao Xie

East China University of Science and Technology , , ,