Chemically Fueled Active Transport

C Christine M. E. Kriebisch (School of Natural Sciences, Department of Chemistry Technical University of Munich Lichtenbergstraße 4 85748 Garching Germany) B Brigitte A. K. Kriebisch (Department of Bioscience, School of Natural Sciences, Technical University of Munich, Lichtenbergstrasse 4, Garching 85748, Germany) G Gregor Häfner (Institute for Theoretical Physics, Georg August University Göttingen 1 , Friedrich-Hund-Platz 1, Göttingen 37077,) H Héctor Soria‐Carrera (School of Natural Sciences, Department of Chemistry Technical University of Munich Lichtenbergstraße 4 85748 Garching Germany) Y Yanyan Fei (School of Natural Sciences, Department of Chemistry Technical University of Munich Lichtenbergstraße 4 85748 Garching Germany) M Marcus Müller J Job Boekhoven (Max Planck School Matter to Life, Jahnstraße 29, D-69120 Heidelberg, Germany)

Abstract

Abstract Biology uses chemical potential differences from molecules like ATP to drive membrane pumps, transporting molecules across membranes even against concentration gradients. Here, we report a synthetic system that transports small molecules from an aqueous phase (the sender) to an aqueous receiver across a centimeter‐sized immiscible solvent at the expense of chemical energy. Molecules with high chemical potential (fuels) in the sender phase transiently activate the transporter molecules, which enter the immiscible solvent and exit on the receiver phase side, thus allowing transport from sender to receiver against a concentration gradient. Importantly, we show this active transport mechanism transports molecules across a hydrophobic barrier without complex pumping machinery. Using a reaction‐diffusion model, we identify the critical parameters that determine the efficiency of active transport. Selective transport enables the sorting of a mixture of different molecules. In future work, we will use these design criteria to actively transport molecules across membranes, e.g., of vesicles, at the expense of chemical fuel, thereby mimicking biological processes and enabling the feeding of synthetic cells.

Article Details

Volume / Issue Vol. 64, Issue 27
Published July 01, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

C

Christine M. E. Kriebisch

School of Natural Sciences, Department of Chemistry Technical University of Munich Lichtenbergstraße 4 85748 Garching Germany

B

Brigitte A. K. Kriebisch

Department of Bioscience, School of Natural Sciences, Technical University of Munich, Lichtenbergstrasse 4, Garching 85748, Germany

G

Gregor Häfner

Institute for Theoretical Physics, Georg August University Göttingen 1 , Friedrich-Hund-Platz 1, Göttingen 37077,

H

Héctor Soria‐Carrera

School of Natural Sciences, Department of Chemistry Technical University of Munich Lichtenbergstraße 4 85748 Garching Germany

Y

Yanyan Fei

School of Natural Sciences, Department of Chemistry Technical University of Munich Lichtenbergstraße 4 85748 Garching Germany

M

Marcus Müller

J

Job Boekhoven

Max Planck School Matter to Life, Jahnstraße 29, D-69120 Heidelberg, Germany