Light‐Driven Competitive Selection in a Protein‐Catalyzed Dissipative Peptide Replication

Éva Bartus (Department of Medical Chemistry University of Szeged Szeged Hungary) E Edit Wéber (Department of Medical Chemistry University of Szeged Szeged Hungary) A Attila Tököli (Department of Medical Chemistry University of Szeged Szeged Hungary) F Ferenc Bogár (Department of Medical Chemistry University of Szeged Szeged Hungary) M Momen R. F. Mohamed (Department of Medical Chemistry University of Szeged Szeged Hungary) G Gábor Kecskeméti (Department of Medical Chemistry University of Szeged Szeged Hungary) Z Zoltán Szabó (Department of Medical Chemistry University of Szeged Szeged Hungary) Z Zoltán Kele (Department of Medical Chemistry University of Szeged Szeged Hungary) A András Perczel M Márton Gadanecz (Laboratory of Structural Chemistry and Biology Institute of Chemistry Eötvös Loránd University Budapest Hungary) Z Zoltán Orgován (HUN‐REN Research Centre For Natural Sciences Drug Innovation Centre and National Drug Discovery and Development Laboratory Budapest Hungary) G György M. Keserű T Tamás A. Martinek (Department of Medical Chemistry University of Szeged Szeged Hungary)

Abstract

ABSTRACT Theoretical models of prebiotic evolution propose that catalytic modulation can influence autocatalytic replication cycles. We hypothesized that a protein catalyst could create a favorable environment for proximity‐controlled, dissipative replication of primitive peptides. This setup, in principle, allows competitive selection by making the catalyst a limited resource. Here, we show that a structurally flexible and promiscuous protein, calmodulin, catalyzes UVA light‐driven replication in a helical foldamer‐based replicator system. The protein accelerates both non‐autocatalytic synthesis and autocatalytic replication, with autocatalysis being the dominant pathway. The system demonstrates light‐intensity‐dependent competitive selection, where replicators compete for scarce binding sites on the catalyst. This mechanism enables efficient selection even within a large replicator pool. Our results provide evidence that the specific catalyst–replicator interactions envisioned in Eigen's hypercycle model can be approximated under dissipative conditions in catalyzed primitive replicator systems.

Article Details

Volume / Issue Vol. 65, Issue 18
Published April 27, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

Éva Bartus

Department of Medical Chemistry University of Szeged Szeged Hungary

E

Edit Wéber

Department of Medical Chemistry University of Szeged Szeged Hungary

A

Attila Tököli

Department of Medical Chemistry University of Szeged Szeged Hungary

F

Ferenc Bogár

Department of Medical Chemistry University of Szeged Szeged Hungary

M

Momen R. F. Mohamed

Department of Medical Chemistry University of Szeged Szeged Hungary

G

Gábor Kecskeméti

Department of Medical Chemistry University of Szeged Szeged Hungary

Z

Zoltán Szabó

Department of Medical Chemistry University of Szeged Szeged Hungary

Z

Zoltán Kele

Department of Medical Chemistry University of Szeged Szeged Hungary

A

András Perczel

M

Márton Gadanecz

Laboratory of Structural Chemistry and Biology Institute of Chemistry Eötvös Loránd University Budapest Hungary

Z

Zoltán Orgován

HUN‐REN Research Centre For Natural Sciences Drug Innovation Centre and National Drug Discovery and Development Laboratory Budapest Hungary

G

György M. Keserű

T

Tamás A. Martinek

Department of Medical Chemistry University of Szeged Szeged Hungary